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<ui>1750-2187-5-10</ui>
<ji>1750-2187</ji>
<fm>
<dochead>Research article</dochead>
<bibl>
<title><p>Inhibition of PI3K/AKT and MAPK/ERK pathways causes activation of FOXO transcription factor, leading to cell cycle arrest and apoptosis in pancreatic cancer</p></title>
<aug><au id="A1"><snm>Roy</snm><mi>K</mi><fnm>Sanjit</fnm><insr iid="I1"/><email>skroy@gmail.com</email></au>
<au id="A2"><snm>Srivastava</snm><mi>K</mi><fnm>Rakesh</fnm><insr iid="I1"/><email>rsrivastava@kumc.edu</email></au>
<au ca="yes" id="A3"><snm>Shankar</snm><fnm>Sharmila</fnm><insr iid="I2"/><email>sshankar@kumc.edu</email></au>
</aug>
<insg>
<ins id="I1"><p>Department of Pharmacology, Toxicology and Therapeutics, and Medicine, The University of Kansas Cancer Center, The University of Kansas Medical Center, 3901 Rainbow Boulevard, Kansas City, KS, 66160, USA</p></ins>
<ins id="I2"><p>Department of Pathology and Laboratory Medicine, The University of Kansas Cancer Center, The University of Kansas Medical Center, 3901 Rainbow Boulevard, Kansas City, KS, 66160, USA</p></ins>
</insg>
<source>Journal of Molecular Signaling</source>
<issn>1750-2187</issn>
<pubdate>2010</pubdate>
<volume>5</volume>
<issue>1</issue>
<fpage>10</fpage>
<url>http://www.jmolecularsignaling.com/content/5/1/10</url>
<xrefbib><pubidlist><pubid idtype="doi">10.1186/1750-2187-5-10</pubid><pubid idtype="pmpid">20642839</pubid></pubidlist></xrefbib></bibl>
<history><rec><date><day>22</day><month>6</month><year>2010</year></date></rec><acc><date><day>19</day><month>7</month><year>2010</year></date></acc><pub><date><day>19</day><month>7</month><year>2010</year></date></pub></history><cpyrt><year>2010</year><collab>Roy et al; licensee BioMed Central Ltd.</collab><note>This is an Open Access article distributed under the terms of the Creative Commons Attribution License (<url>http://creativecommons.org/licenses/by/2.0</url>), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.</note></cpyrt>
<abs>
<sec><st><p>Abstract</p></st>
<sec><st><p>Background</p></st>
<p>Mammalian forkhead members of the class O (FOXO) transcription factors, including FOXO1, FOXO3a, and FOXO4, are implicated in the regulation of several biological processes, including the stress resistance, metabolism, cell cycle, apoptosis and DNA repair. The objectives of this study were to examine the molecular mechanisms by which FOXO transcription factors induced cell cycle arrest and apoptosis and enhanced anti-proliferative effects of sulforaphane (SFN, an active compound in cruciferous vegetables) in pancreatic cancer cells.</p>
</sec>
<sec><st><p>Results</p></st>
<p>Our data demonstrated that SFN inhibited cell proliferation and colony formation, and induced apoptosis through caspase-3 activation in pancreatic cancer cells. The inhibition of PI3K/AKT and MEK/ERK pathways activated FOXO transcription factors. SFN inhibited phosphorylation of AKT and ERK, and activated FOXO transcription factors, leading to cell cycle arrest and apoptosis. Phosphorylation deficient mutants of FOXO proteins enhanced FOXO transcriptional activity, and further enhanced SFN-induced FOXO activity and apoptosis. SFN induced the expression of p21<sup>/CIP1 </sup>and p27<sup>/KIP1</sup>, and inhibited the expression of cyclin D1.</p>
</sec>
<sec><st><p>Conclusion</p></st>
<p>These data suggest that inhibition of PI3K/AKT and ERK pathways acts together to activate FOXO transcription factor and enhances SFN-induced FOXO transcriptional activity, leading to cell cycle arrest and apoptosis.</p>
</sec>
</sec>
</abs>
</fm>
<bdy>
<sec><st><p>Background</p></st>
<p>Cancer of the pancreas is the fourth leading cause of cancer death in the United States. This year approximately 32,000 Americans will die from cancer of the pancreas. With an overall 5-year survival rate of 3% <abbrgrp><abbr bid="B1">1</abbr></abbrgrp>, pancreatic cancer has one of the poorest prognoses among all cancers <abbrgrp><abbr bid="B2">2</abbr></abbrgrp>. Only 20% of pancreatic cancer patients are eligible for surgical resection, which currently remains the only potentially curative therapy <abbrgrp><abbr bid="B3">3</abbr></abbrgrp>. Unfortunately, many cancers of the pancreas are not resectable at the time of diagnosis. There are limited treatment options available for this disease because chemo- and radio-therapies are largely ineffective, and metastatic disease frequently redevelops even after surgery <abbrgrp><abbr bid="B1">1</abbr><abbr bid="B2">2</abbr></abbrgrp>. Therefore, developing effective strategies to prevent pancreatic neoplasms are of paramount importance.</p>
<p>Sulforaphane (SFN), a constituent of cruciferous vegetables, is a naturally occurring isothiocyanate with promising chemopreventive activity <abbrgrp><abbr bid="B4">4</abbr></abbrgrp>. Epidemiological studies have shown that people who eat cruciferous vegetables have reduced incidence of breast and prostate cancer. SFN possesses anti-oxidant, anti-proliferative and anti-carcinogenic properties <abbrgrp><abbr bid="B5">5</abbr><abbr bid="B6">6</abbr><abbr bid="B7">7</abbr></abbrgrp>. SFN is effective in preventing chemically induced breast <abbrgrp><abbr bid="B8">8</abbr><abbr bid="B9">9</abbr></abbrgrp>, stomach <abbrgrp><abbr bid="B5">5</abbr></abbrgrp> and colon <abbrgrp><abbr bid="B10">10</abbr></abbrgrp> cancers in rats. We and others have shown that SFN inhibited the growth of prostate, breast, oral and squamous carcinoma xenografts <abbrgrp><abbr bid="B11">11</abbr><abbr bid="B12">12</abbr><abbr bid="B13">13</abbr><abbr bid="B14">14</abbr><abbr bid="B15">15</abbr></abbrgrp>. SFN enhanced radiosensitivity of tumor cells <it>in vitro </it>and <it>in vivo </it><abbrgrp><abbr bid="B16">16</abbr></abbrgrp>. Furthermore, a pharmacokinetic study has demonstrated that it is rapidly absorbed and 82% bioavailable <abbrgrp><abbr bid="B17">17</abbr></abbrgrp>. SFN induces a phase 2 enzyme, thereby neutralizing carcinogens before they can damage DNA <abbrgrp><abbr bid="B18">18</abbr><abbr bid="B19">19</abbr></abbrgrp>. SFN inhibits benzo[a]pyrene-DNA and 1,6-dinitropyrene-DNA adducts formation <abbrgrp><abbr bid="B20">20</abbr><abbr bid="B21">21</abbr><abbr bid="B22">22</abbr><abbr bid="B23">23</abbr></abbrgrp>, and downregulates PI3K/AKT <abbrgrp><abbr bid="B24">24</abbr><abbr bid="B25">25</abbr></abbrgrp> and NF&#954;B <abbrgrp><abbr bid="B12">12</abbr><abbr bid="B26">26</abbr><abbr bid="B27">27</abbr></abbrgrp> pathways. We have recently demonstrated that SFN induces death receptors (DR4 and DR5) and proapoptotic members of Bcl-2 family, inhibits antiapoptotic Bcl-2 proteins, activates caspase(s), and enhances apoptosis-inducing potential of TRAIL in vitro <abbrgrp><abbr bid="B12">12</abbr></abbrgrp>. <it>In vivo</it>, SFN inhibits growth of PC-3 cells orthotopically implanted in nude mice by inducing apoptosis and inhibiting tumor cell proliferation, metastasis and angiogenesis <abbrgrp><abbr bid="B12">12</abbr></abbrgrp>. These studies strongly suggest that SFN can be developed as a cancer preventive agent.</p>
<p>PTEN (phosphatase and tensin homolog deleted on chromosome 10, also called MMAC1 or TEP1) is a tumor suppressor gene <abbrgrp><abbr bid="B28">28</abbr><abbr bid="B29">29</abbr><abbr bid="B30">30</abbr></abbrgrp>, which is frequently deleted or mutated in a wide range of human cancers, including glioblastoma <abbrgrp><abbr bid="B31">31</abbr></abbrgrp>, melanoma <abbrgrp><abbr bid="B32">32</abbr></abbrgrp>, and prostate <abbrgrp><abbr bid="B33">33</abbr></abbrgrp>, breast <abbrgrp><abbr bid="B34">34</abbr></abbrgrp>, and endometrial cancers <abbrgrp><abbr bid="B35">35</abbr></abbrgrp>. While point mutations in PTEN rarely occur in pancreatic cancer <abbrgrp><abbr bid="B36">36</abbr><abbr bid="B37">37</abbr></abbrgrp>, functional inactivation of PTEN through promoter methylation <abbrgrp><abbr bid="B38">38</abbr></abbrgrp>, loss of protein expression <abbrgrp><abbr bid="B39">39</abbr></abbrgrp>, reduction of mRNA levels <abbrgrp><abbr bid="B40">40</abbr></abbrgrp>, or loss of heterozygocity (LOH) of linked markers <abbrgrp><abbr bid="B37">37</abbr><abbr bid="B41">41</abbr></abbrgrp> occur with high frequency. Phosphatidylinositol 3,4,5-trisphosphate (PIP<sub>3</sub>) is a substrate of PTEN <abbrgrp><abbr bid="B42">42</abbr><abbr bid="B43">43</abbr><abbr bid="B44">44</abbr></abbrgrp>. AKT is a serine-threonine protein kinase regulated by PIP<sub>3 </sub>that is implicated in survival signaling in a wide a variety of cells, including fibroblastic, epithelial, and neuronal cells <abbrgrp><abbr bid="B45">45</abbr></abbrgrp>. PTEN increases sensitivity to cell death in response to several apoptotic stimuli by negatively regulating the PI3K/AKT pathway <abbrgrp><abbr bid="B43">43</abbr></abbrgrp>. In addition to its role in regulating the PI3K/AKT cell survival pathway, PTEN also inhibits growth factor-induced Shc phosphorylation and suppresses the MAP kinase signaling pathway <abbrgrp><abbr bid="B46">46</abbr></abbrgrp>, suggesting that PTEN has roles in independent of PI3K/AKT signaling pathway. Hyperactivation of AKT is associated with resistance to apoptosis, increased cell growth, cell proliferation, metastasis, angiogenesis, and cellular energy metabolism <abbrgrp><abbr bid="B45">45</abbr><abbr bid="B47">47</abbr><abbr bid="B48">48</abbr><abbr bid="B49">49</abbr><abbr bid="B50">50</abbr><abbr bid="B51">51</abbr><abbr bid="B52">52</abbr><abbr bid="B53">53</abbr><abbr bid="B54">54</abbr></abbrgrp>. Overexpression of AKT has been reported in a variety of human cancers, including pancreatic cancer, and cells expressing elevated levels of AKT are less sensitive to apoptosis stimuli <abbrgrp><abbr bid="B38">38</abbr><abbr bid="B55">55</abbr><abbr bid="B56">56</abbr><abbr bid="B57">57</abbr></abbrgrp>. Antagonizing PI3K activity negatively regulates AKT activity. Once activated, however, AKT exerts antiapoptotic effects through phosphorylation of substrates such as Bad <abbrgrp><abbr bid="B58">58</abbr><abbr bid="B59">59</abbr></abbrgrp> and caspase-9 <abbrgrp><abbr bid="B60">60</abbr></abbrgrp> that directly regulate the apoptotic machinery, or human telomerase reverse transcriptase subunit <abbrgrp><abbr bid="B61">61</abbr></abbrgrp>, forkhead transcription family members <abbrgrp><abbr bid="B62">62</abbr><abbr bid="B63">63</abbr></abbrgrp> and IB kinases <abbrgrp><abbr bid="B64">64</abbr></abbrgrp> that indirectly inhibit apoptosis <abbrgrp><abbr bid="B65">65</abbr></abbrgrp>. Studies in pancreatic cancer cell lines have demonstrated that PI3K is required for growth and survival of tumor cells <abbrgrp><abbr bid="B66">66</abbr><abbr bid="B67">67</abbr><abbr bid="B68">68</abbr></abbrgrp>. Furthermore, amplification or activation of AKT2 occurs in up to 60% of pancreatic cancer <abbrgrp><abbr bid="B39">39</abbr><abbr bid="B69">69</abbr><abbr bid="B70">70</abbr><abbr bid="B71">71</abbr></abbrgrp>, supporting the participation of an activated PI3K-AKT axis in this disease.</p>
<p>FOXO subfamily of forkhead transcription factors include FOXO1a/FKHR, FOXO3a/FKHRL1, and FOXO4/AFX <abbrgrp><abbr bid="B72">72</abbr><abbr bid="B73">73</abbr><abbr bid="B74">74</abbr><abbr bid="B75">75</abbr></abbrgrp>. The PI3K pathway, via activation of its downstream kinase AKT, phosphorylates each of the FOXO proteins <abbrgrp><abbr bid="B62">62</abbr><abbr bid="B76">76</abbr><abbr bid="B77">77</abbr></abbrgrp>. These phosphorylations result in impairment of DNA binding ability and increased binding affinity for the 14-3-3 protein <abbrgrp><abbr bid="B62">62</abbr><abbr bid="B77">77</abbr></abbrgrp>. Newly formed 14-3-3-FOXO complexes are then exported from the nucleus <abbrgrp><abbr bid="B78">78</abbr></abbrgrp>, thereby inhibiting FOXO-dependent transcription. Inhibition of the PI3K pathway leads to dephosphorylation and nuclear translocation of active FKHRL1, FKHR, and AFX; which induce cells cycle arrest and apoptosis <abbrgrp><abbr bid="B79">79</abbr></abbrgrp>. Conversely, loss of PTEN activity results in increased AKT activity leading to inhibition of FOXO protein activity through phosphorylation and cytoplasmic sequestration. In addition, the data demonstrate that FOXO transcriptional activity controls cellular proliferation and apoptosis downstream of PTEN <abbrgrp><abbr bid="B80">80</abbr><abbr bid="B81">81</abbr></abbrgrp>. FOXO regulates cell cycle and apoptotic genes such as cyclin-dependent kinase inhibitor (CKI) p27<sup>KIP1 </sup><abbrgrp><abbr bid="B78">78</abbr><abbr bid="B80">80</abbr><abbr bid="B82">82</abbr><abbr bid="B83">83</abbr></abbrgrp>, Bim <abbrgrp><abbr bid="B84">84</abbr><abbr bid="B85">85</abbr></abbrgrp>, Fas ligand <abbrgrp><abbr bid="B62">62</abbr></abbrgrp>, and Bcl-6 <abbrgrp><abbr bid="B86">86</abbr></abbrgrp>. Consequently, activation of the PI3K pathway serves to repress FOXO-mediated growth arrest and apoptosis. However, regulation of FOXO target genes is multifactorial, and therefore other transcription factors and post-translation regulatory events will influence the final level of protein expression. Interestingly, overexpression of AKT, and inactivation and loss of PTEN are frequently observed in pancreatic cancer <abbrgrp><abbr bid="B39">39</abbr><abbr bid="B66">66</abbr><abbr bid="B67">67</abbr><abbr bid="B68">68</abbr><abbr bid="B69">69</abbr><abbr bid="B70">70</abbr><abbr bid="B71">71</abbr></abbrgrp>, indicating a potential role for FOXOs in modulating both cell cycle and apoptosis during tumorigenesis and treatment. Together, these results indicate that FOXO proteins are important downstream effectors of PTEN tumor suppressive activity; however, their molecular targets and mechanisms of action in pancreatic cancer are not well understood.</p>
<p>The Ras proteins are small (21 kDa) GTP-binding, membrane-associated proteins <abbrgrp><abbr bid="B87">87</abbr></abbrgrp>. The Ras proteins transduce signals from ligand-activated tyrosine kinase receptors to downstream effectors <abbrgrp><abbr bid="B88">88</abbr></abbrgrp>. Activating mutations can impair GTP hydrolysis and lead to constitutively activated Ras that impacts the cellular phenotype <abbrgrp><abbr bid="B89">89</abbr></abbrgrp>. Oncogenic Ras can lead to cellular transformation <abbrgrp><abbr bid="B90">90</abbr></abbrgrp>, presumably by perturbing its signal transduction pathways. Ras regulates multiple signaling pathways <abbrgrp><abbr bid="B91">91</abbr></abbrgrp>. Three major groups of MAP kinases are found in mammalian cells: extracellular signal-regulated protein kinase (ERK) <abbrgrp><abbr bid="B92">92</abbr></abbrgrp>, p38 MAP kinase <abbrgrp><abbr bid="B93">93</abbr></abbrgrp>, and c-Jun N-terminal kinase (JNK) <abbrgrp><abbr bid="B94">94</abbr><abbr bid="B95">95</abbr><abbr bid="B96">96</abbr></abbrgrp>. MAP kinases regulate many cellular activities, which range from gene expression to mitosis, movement, metabolism, and apoptosis. These MAP kinases are activated by the dual phosphorylations of neighboring threonine and tyrosine residues in response to various extracellular stimuli <abbrgrp><abbr bid="B97">97</abbr><abbr bid="B98">98</abbr></abbrgrp>. Specifically, p38 and JNK have been implicated in stress-responsive signaling leading to the initiation of adaptive events such as gene expression, differentiation, metabolism, and apoptosis <abbrgrp><abbr bid="B94">94</abbr><abbr bid="B95">95</abbr><abbr bid="B99">99</abbr></abbrgrp>. ERKs are often activated by growth signals, such as epidermal growth factor (EGF) or platelet-derived growth factor <abbrgrp><abbr bid="B100">100</abbr></abbrgrp>. We have recently demonstrated that inhibition of PI3K/AKT and MEK/ERK pathways act synergistically to regulate antiangiogenic effects of EGCG and SFN through activation of FOXO transcription factors <abbrgrp><abbr bid="B24">24</abbr><abbr bid="B101">101</abbr></abbrgrp>.</p>
<p>Furthermore, FOXO transcription factors play a crucial role in the regulation of tissue homeostasis in organs such as the pancreas, and complex diseases such as diabetes and cancer. Unfortunately, the intracellular mechanisms by which SFN inhibits growth and induces apoptosis in pancreatic cancer cells through regulation of FOXO transcription factors have never been examined. The objectives of our study were to examine the molecular mechanisms by which FOXO transcription factors induce cell cycle arrest and apoptosis and enhances the anti-proliferative effects of SFN in pancreatic cancer cells. Our results demonstrate that inhibition of PI3K/AKT and ERK pathways activates FOXO transcription factors. SFN inhibited phosphorylation of AKT and ERK, and dephosphorylated FOXO transcription factors, leading to cell cycle arrest and apoptosis. Phosphorylation deficient mutants of FOXO proteins enhanced FOXO transcriptional activity, and further enhanced SFN-induced FOXO activity.</p>
</sec>
<sec><st><p>Results</p></st>
<sec><st><p>Sulforaphane (SFN) inhibits cell growth in human pancreatic cancer cells</p></st>
<p>We first examined the effects of SFN on cell proliferation in four pancreatic cancer cell lines by XTT assay. We have selected four pancreatic cancer cell lines (MIA PaCa-2, AsPC-1, PANC-1 and Hs766T) because they have been derived from different pathological stages and may thus respond differently to SFN <abbrgrp><abbr bid="B102">102</abbr><abbr bid="B103">103</abbr></abbrgrp>. MIA PaCa-2 harbors a point mutation on Kras gene resulting in amino acid sunbstitution from the wild-type glycine to a valine at codon 12. AsPC-1 and PANC-1 harbor a point mutation on Kras gene resulting in amino acid substitution from glycine to aspartate. Hs766T cell line does not possess a point mutation in codon 12 of the Kras gene. SFN inhibited cell viability in a dose dependent manner (Fig. <figr fid="F1">1</figr>). PANC-1 and MIA PaCa-2 cell lines were most sensitive, AsPC-1 cell line was moderately sensitive, and Hs 766T cell line was least sensitive. These data suggest that SFN can be a viable agent for inhibiting pancreatic cancer cell proliferation.</p>
<fig id="F1"><title><p>Figure 1</p></title><caption><p>Effect of sulforaphane (SFN) on viability of pancreatic cancer cells</p></caption><text>
   <p><b>Effect of sulforaphane (SFN) on viability of pancreatic cancer cells</b>. Pancreatic cancer (PANC-1, MIA PaCa-2, Hs766T and AsPC-1) cells were treated with SFN (0-30 &#956;M) for 48 h. Cell viability was measured by XTT assay. Data represent the mean &#177; S.D. * = significantly different from respective controls, P &lt; 0.05.</p>
</text><graphic file="1750-2187-5-10-1"/></fig>
</sec>
<sec><st><p>Sulforaphane inhibits colony formation in human pancreatic cancer cells</p></st>
<p>We next examined the effects of SFN on colony formation (a characteristic of cancer) on four pancreatic cancer cell lines by soft agar assay. SFN inhibited colony formation in a dose dependent manner (Fig. <figr fid="F2">2</figr>). Colonies formed by PANC-1 and MIA PaCa-2 cells were most sensitive, AsPC-1 cell line was moderately sensitive, and Hs 766T cell line was least sensitive. These data suggest that SFN can be used as a potent chemopreventive agent for pancreatic cancer.</p>
<fig id="F2"><title><p>Figure 2</p></title><caption><p>Effect of sulforaphane (SFN) on colony formation</p></caption><text>
   <p><b>Effect of sulforaphane (SFN) on colony formation</b>. Pancreatic cancer (PANC-1, MIA PaCa-2, Hs766T and AsPC-1) cells were treated with SFN (0-20 &#956;M), and number of colonies were counted. Data represent the mean &#177; S.D. * = significantly different from respective controls, P &lt; 0.05.</p>
</text><graphic file="1750-2187-5-10-2"/></fig>
</sec>
<sec><st><p>Sulforaphane induces caspase-3 activation in human pancreatic cancer cell</p></st>
<p>Most chemopreventive agents induce apoptosis through mitochondrial pathway, which activates caspase-3 <abbrgrp><abbr bid="B104">104</abbr></abbrgrp>. We therefore examined whether SFN-induced apoptosis through caspase-3 activation in pancreatic cancer cell lines (Fig. <figr fid="F3">3</figr>). SFN induced caspase-3 activity in PANC-1, MIA PaCa-2, Hs 766T and AsPC-1 cells. However, a relatively high dose of SFN was required to activate caspase-3 in Hs 766T cells compared to other pancreatic cancer cell lines. These data suggest that SFN induced apoptosis through caspase-3 activation and may engage the mitochondria.</p>
<fig id="F3"><title><p>Figure 3</p></title><caption><p>Effect of sulforaphane (SFN) on caspase-3 activity</p></caption><text>
   <p><b>Effect of sulforaphane (SFN) on caspase-3 activity</b>. Pancreatic cancer PANC-1, MIA PaCa-2, Hs 766T and AsPC-1 cells were treated with SFN (0-30 &#956;M) for 12 h and caspase-3 activity was measured as per manufacturer's instructions (EMD Biosciences). Data represent the mean &#177; S.D. * = significantly different from respective controls, P &lt; 0.05.</p>
</text><graphic file="1750-2187-5-10-3"/></fig>
</sec>
<sec><st><p>Regulation and function of PI3K/AKT and MAP kinase pathways by sulforaphane</p></st>
<p>In most cancer cells, AKT is constitutively active and enhances cell proliferation <abbrgrp><abbr bid="B105">105</abbr></abbrgrp>. In order to understand a relationship between PTEN and AKT in SFN-induced apoptosis, we measured the expression of PTEN and phosphorylation status of AKT in cells treated with SFN (Fig. <figr fid="F4">4A</figr>). SFN induces PTEN expression and inhibits AKT phosphorylation in pancreatic cancer PANC-1 cells. By comparison, SFN has no effect on total AKT expression. These data suggest that SFN inhibits cell proliferation by regulating PI3K/AKT pathway.</p>
<fig id="F4"><title><p>Figure 4</p></title><caption><p>Effects of sulforaphane (SFN) on the expression of PTEN, AKT, and MAP kinases; and the effects of PI3K/AKT and MAPK pathways on SFN-induced apoptosis</p></caption><text>
   <p><b>Effects of sulforaphane (SFN) on the expression of PTEN, AKT, and MAP kinases; and the effects of PI3K/AKT and MAPK pathways on SFN-induced apoptosis</b>. (A), PANC-1 cells were treated with or without SFN (0-20 &#956;M) for 24 h. The cells were harvested and the expression of PTEN, phospho-AKT, AKT, Ras, phospho-ERK, ERK, phospho-JNK, JNK, phospho-p38 and p38 was measured by Western blotting. (B), PTEN and dominant negative AKT enhance SFN-induced apoptosis. AsPC-1 and PANC-1 cells were transiently transfected with empty vector (pcDNA3.1), PTEN wild type (PTEN-WT) or dominant negative AKT (AKT-DN) along with pCMV-LacZ vector (as transfection control) for 24 h. After medium replacement, cells were treated with SFN (10 &#956;M) for 48 h and, apoptosis was measured by Live Dead Assay. Data represent the mean &#177; S.D. *, # = significantly different from respective controls, P &lt; 0.05. (C), MEK inhibitor PD98059 enhances SFN-induced apoptosis. AsPC-1 and PANC-1 cells were pretreated with PD98059 (1 &#956;M) followed by treatment with SFN (10 &#956;M) for 48 h and, apoptosis was measured by Live Dead Assay. Data represent the mean &#177; S.D. *, # = significantly different from respective controls, P &lt; 0.05.</p>
</text><graphic file="1750-2187-5-10-4"/></fig>
<p>Ras/Raf/MAP kinase pathway regulates many cellular activities, which range from gene expression to mitosis, movement, metabolism, and apoptosis <abbrgrp><abbr bid="B94">94</abbr><abbr bid="B106">106</abbr><abbr bid="B107">107</abbr><abbr bid="B108">108</abbr><abbr bid="B109">109</abbr></abbrgrp>. We therefore examined the effects of SFN on the expression of Ras, and activation of ERK, JNK and p38 MAP kinases. SFN inhibited Ras expression in PANC-1 cells (Fig. <figr fid="F4">4A</figr>). Treatment of PANC-1 cells with SFN caused a decrease in ERK phosphorylation, and an increase in JNK phosphorylation. SFN has no significant effect on p38 MAP kinase activity in PANC-1 cells. These data suggest that SFN inhibits growth and induces apoptosis through regulation of Ras/Raf/MAP kinase pathway.</p>
<p>We next examined whether SFN induces apoptosis through PI3K/AKT pathway (Fig. <figr fid="F4">4B</figr>). Pancreatic cancer cells were transfected with empty vector, wild type PTEN, dominant negative AKT (DN-AKT), and apoptosis was measured. Overexpression of wild type PTEN or DN-AKT induced apoptosis in AsPC-1 and PANC-1 cells. Treatment of transfected cells with SFN further enhanced apoptosis. These data suggest that inhibition of PI3K/AKT pathway enhances SFN-induced apoptosis in pancreatic cancer cells.</p>
<p>We next examined whether inhibition of MEK/ERK pathway enhances SFN-induced apoptosis in pancreatic cancer cells. MEK1/2 inhibitor (PD98059) induced apoptosis in PANC-1 and AsPC-1 cells (Fig. <figr fid="F4">4C</figr>). PD98059 enhanced SFN-induced apoptosis. Overall, these data suggest that inhibition of PI3K/AKT and MEK/ERK pathways enhanced SFN-induced apoptosis.</p>
</sec>
<sec><st><p>Sulforaphane induces p21<sup>/WAF1/CIP1</sup>, and p27<sup>/KIP1 </sup>and inhibits cyclin D1</p></st>
<p>PI3K/AKT signaling pathway may be involved in the control of the cell cycle progression most likely through mechanisms involving the activation of FOXO transcription factors <abbrgrp><abbr bid="B82">82</abbr></abbrgrp>. We next examined the effects of SFN on cell cycle regulatory genes. SFN induced the expression cell cycle inhibitors p21<sup>/WAF1/CIP1 </sup>and p27<sup>/KIP1</sup>, and inhibited the expression of cyclin D1 in PANC-1 cells (Fig. <figr fid="F5">5</figr>). These data suggest that SFN causes growth arrest by regulating expression of cell cycle genes.</p>
<fig id="F5"><title><p>Figure 5</p></title><caption><p>Effects of sulforaphane (SFN) on cell cycle regulatory genes</p></caption><text>
   <p><b>Effects of sulforaphane (SFN) on cell cycle regulatory genes</b>. PANC-1 cells were treated with SFN (0-20 &#956;M) for 24 h. The expression of p21<sup>/CIP1</sup>, p27<sup>/KIP1 </sup>and cyclin D1 was measured by Western blotting. Anti &#946;-actin antibody was used as a loading control.</p>
</text><graphic file="1750-2187-5-10-5"/></fig>
</sec>
<sec><st><p>Overexpression of FOXO transcription factors inhibits cell viability and enhances FOXO transcriptional activity in pancreatic cancer cells</p></st>
<p>In order to examine whether FOXO transcription factors affect the ability of SFN to inhibit cell viability, pancreatic cancer cells were transfected with FOXO1, FOXO3a or FOXO4 (Fig. <figr fid="F6">6A</figr> and <figr fid="F6">6B</figr>). FOXO expression plasmids and FOXO-luciferase construct (pGL3-6X DBE) have previously been described <abbrgrp><abbr bid="B101">101</abbr></abbrgrp>. Overexpression of FOXO1, FOXO3a, and FOXO4 inhibited cell viability in PANC-1 and AsPC-1 cells. The inhibitory effects of SFN on cell viability were further enhanced when pancreatic cancer cells were transfected with FOXO1, FOXO3a, and FOXO4. These data suggest that FOXO transcription factors can enhance the antiproliferative effects of SFN.</p>
<fig id="F6"><title><p>Figure 6</p></title><caption><p>Effects of FOXO transcription factors on cell viability and FOXO transcriptional activity</p></caption><text>
   <p><b>Effects of FOXO transcription factors on cell viability and FOXO transcriptional activity</b>. (A and B), PANC-1 and AsPC-1 cells were transiently transfected with plasmids expressing neo (pcDNA3.1), FOXO1, FOXO3a, or FOXO4 along with pCMV-LacZ vector (as transfection control). After transfection, cells were treated with or without SFN (10 &#956;M) for 48 h, and cell viability was measured by XTT assay. Data represent the mean &#177; S.D. * = significantly different from respective controls, P &lt; 0.05. (C and D), Phosphorylation deficient mutants of FOXO enhance sulforaphane-induced FOXO transcriptional activity in pancreatic cancer. PANC-1 and AsPC-1 cells were transiently transfected with empty vector or constructs encoding FOXO1-TM, FOXO3a-TM, or FOXO4-TM together with 6X DBE-luciferase for 24 h. After transfection, cells were washed with RPMI, treated with SFN (10 &#956;M) for 24 h, and harvested for firefly/Renilla luciferase assays using the Dual-Luciferase Reporter Assay System (Promega). Luciferase counts were normalized using <it>Renilla </it>luciferase transfection control (pRL-TK; Promega). Data represent the mean &#177; S.D. * = significantly different from respective controls, P &lt; 0.05.</p>
</text><graphic file="1750-2187-5-10-6"/></fig>
<p>We next examined whether SFN induces transcriptional activation of FOXO in the presence or absence phosphorylation deficient triple mutants of FOXO proteins (FOXO1-TM, FOXO3a-TM, or FOXO4-TM). PANC-1 and AsPC-1 cells were transfected with wild type FOXO promoter linked to a luciferase reporter gene in the presence or absence of plasmids expressing FOXO1-TM, FOXO3a-TM, or FOXO4-TM (Fig. <figr fid="F6">6C</figr> and <figr fid="F6">6D</figr>). After transfection, cells were treated with SFN for 24 h, and luciferase activity was measured. Transfection of cells with plasmids expressing FOXO1-TM, FOXO3a-TM, or FOXO4-TM induced FOXO transcriptional activity compared with the empty vector (control). SFN-induced FOXO transcriptional activity was further enhanced in the presence of FOXO1-TM, FOXO3a-TM, and FOXO4-TM. These data indicate that FOXO transcription factor may play a major role in mediating biological effects of SFN in pancreatic cancer cells.</p>
</sec>
<sec><st><p>Inhibition of PI3K/AKT and MEK/ERK pathways synergistically/additively induces FOXO transcriptional activity and apoptosis in the presence or absence of sulforaphane</p></st>
<p>Since inhibition of PI3K/AKT and MEK/ERK pathways induce apoptosis in pancreatic cancer cells, we sought to examine whether these pathways act together to regulate SFN-induced apoptosis. AKT inhibitor (AKT Inh-IV) and MEK1/2 inhibitor (PD98059) synergistically/additively induced apoptosis in PANC-1 and AsPC-1 cells (Fig. <figr fid="F7">7A</figr> and <figr fid="F7">7B</figr>). AKT inhibitor and PD98059 alone enhanced SFN-induced apoptosis. Interestingly, the combination of AKT inhibitor and PD98059 with SFN induced more apoptosis than AKT inhibitor plus SFN or PD98059 plus SFN. These data suggest that inhibition of PI3K/AKT and MEK/ERK pathways act synergistically/additively to regulate apoptosis in the absence or presence of SFN.</p>
<fig id="F7"><title><p>Figure 7</p></title><caption><p>Inhibition of PI3K/AKT and MEK/ERK pathways synergistically/additively enhanced sulforaphane (SFN)-induced apoptosis and FOXO transcriptional activity in pancreatic cancer cells</p></caption><text>
   <p><b>Inhibition of PI3K/AKT and MEK/ERK pathways synergistically/additively enhanced sulforaphane (SFN)-induced apoptosis and FOXO transcriptional activity in pancreatic cancer cells</b>. (A and B), PANC-1 and AsPC-1 cells were pretreated with AKT inhibitor IV (1 &#956;M) and/or MEK1/2 inhibitor PD98059 (10 &#956;M) for 2 h, followed by treatment with SFN (10 &#956;M) or DMSO (control) for 48 h. At the end of incubation period, cells were harvested and apoptosis was measured by TUNEL assay. Data represent mean &#177; SD. * = significantly different from respective controls, P &lt; 0.05. (C and D), PANC-1 and AsPC-1 cells were transiently transfected with 6X DBE-luciferase construct for 24 h. After transfection, cells were pretreated with AKT inhibitor IV (1 &#956;M) and/or MEK1/2 inhibitor PD98059 (10 &#956;M) for 2 h, followed by treatment with SFN (10 &#956;M) or DMSO (control) for 24 h. Cells were harvested for firefly/Renilla luciferase assays using the Dual-Luciferase Reporter Assay System (Promega). Luciferase counts were normalized using <it>Renilla </it>luciferase transfection control (pRL-TK; Promega). Data represent the mean &#177; S.D. *, #, ** = significantly different from respective controls, P &lt; 0.05.</p>
</text><graphic file="1750-2187-5-10-7"/></fig>
<p>Since inhibition of PI3K/AKT and MEK/ERK pathways synergistically/additively induces apoptosis in pancreatic cancer cells, we sought to examine whether inhibition of these two pathways act together to regulate FOXO activity. AKT inhibitor (AKT Inh-IV) and MEK1/2 inhibitor (PD98059) synergistically induced FOXO transcriptional activity in AsPC-1 and PANC-1 cells (Fig. <figr fid="F7">7C</figr> and <figr fid="F7">7D</figr>). AKT inhibitor or PD98059 enhanced SFN-induced FOXO transcriptional activity. Interestingly, the combination of AKT Inh-IV and PD98059 with SFN induced greater FOXO transcriptional activity than AKT Inh-IV plus SFN or PD98059 plus SFN. These data suggest that inhibition of PI3K/AKT and MEK/ERK pathways acts synergistically/additively to regulate FOXO transcriptional activity in the absence or presence of SFN.</p>
</sec>
</sec>
<sec><st><p>Discussion</p></st>
<p>Our study demonstrates, for the first time, that cancer preventive effects of SFN are regulated through activation of FOXO transcription factors. Specifically, we have demonstrated that (i) SFN induces apoptosis through caspase-3 activation, and causes growth arrest through induction of p21 and p27 and inhibition of cyclin D1; (ii) SFN induces apoptosis through inhibition of both PI3K/AKT and MEK/ERK pathways, and activation of FOXO transcription factors; (iii) inhibition of PI3K/AKT and MEK/ERK pathways acts together to enhance the activation of FOXO transcription factors; and (iv) phosphorylation deficient mutants of FOXO proteins further enhance SFN-induced FOXO activity and apoptosis. Our data are in agreement with others who demonstrated the anticancer activity of SFN in pancreatic cancer <abbrgrp><abbr bid="B110">110</abbr><abbr bid="B111">111</abbr><abbr bid="B112">112</abbr></abbrgrp>.</p>
<p>FOXO transcription factors play a crucial role in the regulation of tissue homeostasis in organs such as the pancreas and the ovaries and complex diseases such as diabetes and cancer <abbrgrp><abbr bid="B113">113</abbr><abbr bid="B114">114</abbr><abbr bid="B115">115</abbr><abbr bid="B116">116</abbr><abbr bid="B117">117</abbr></abbrgrp>. FOXO transcription factors are emerging as critical transcriptional integrators among pathways regulating differentiation, proliferation, survival, and angiogenesis <abbrgrp><abbr bid="B118">118</abbr><abbr bid="B119">119</abbr><abbr bid="B120">120</abbr><abbr bid="B121">121</abbr></abbrgrp>. FOXO transcription factors regulate angiogenesis and postnatal neovascularization by regulation angiopoietin 2 (Ang2) and eNOS <abbrgrp><abbr bid="B121">121</abbr></abbrgrp>. Gene expression profiling showed that FOXO1 and FOXO3a specifically regulate a nonredundant but overlapping set of angiogenesis- and vascular remodeling-related genes <abbrgrp><abbr bid="B121">121</abbr></abbrgrp>. The FOXO1-deficient mice died around embryonic day 11 because of defects in the branchial arches and remarkably impaired vascular development of embryos and yolk sacs <abbrgrp><abbr bid="B118">118</abbr></abbrgrp>. We have recently demonstrated that inhibition of the MEK/ERK and PI3K/AKT pathways synergistically induced FOXO transcriptional activity and inhibited angiogenesis (cell migration and capillary tube formation); these events were further enhanced in the presence of SFN <abbrgrp><abbr bid="B24">24</abbr></abbrgrp>. Phosphorylation deficient mutants of FOXO enhanced antiangiogenic effects of SFN by activating the FOXO transcription factor. These studies suggest that activation of FOXO transcription factor by SFN could be an important physiological process to inhibit angiogenesis which may ultimately control tumor growth.</p>
<p>Activation of Kras has been shown to activate both PI3K/AKT and MAPK pathways <abbrgrp><abbr bid="B24">24</abbr><abbr bid="B101">101</abbr><abbr bid="B122">122</abbr><abbr bid="B123">123</abbr><abbr bid="B124">124</abbr></abbrgrp>. Oxidative stress and activation of the JNK pathway induce the nucleocytoplasmic translocation of the pancreatic transcription factor Pdx-1, which leads to pancreatic &#946;-cell dysfunction <abbrgrp><abbr bid="B125">125</abbr><abbr bid="B126">126</abbr></abbrgrp>. Furthermore, FOXO1/FKHR plays a role as a mediator between the JNK pathway and Pdx-1 <abbrgrp><abbr bid="B127">127</abbr></abbrgrp>. Under oxidative stress conditions, FOXO1 changed its intracellular localization from the cytoplasm to the nucleus in the pancreatic &#946;-cell line HIT-T15. The overexpression of JNK also induced the nuclear localization of FOXO1, but in contrast, suppression of JNK reduced the oxidative stress-induced nuclear localization of FOXO1, suggesting the involvement of the JNK pathway in FOXO1 translocation. In addition, oxidative stress or activation of the JNK pathway decreased the activity of AKT in HIT cells, leading to the decreased phosphorylation of FOXO1 following nuclear localization. Furthermore, adenovirus-mediated FOXO1 overexpression reduced the nuclear expression of Pdx-1, whereas repression of FOXO1 by FOXO1-specific small interfering RNA retained the nuclear expression of Pdx-1 under oxidative stress conditions. Activation of ERK has been shown to phosphorylate FOXO proteins, resulting in nuclear exclusion and transcriptional repression. In addition to ERK, direct phosphorylation of FOXO by AKT results in cytoplasmic retention and inactivation, inhibiting the expression of FOXO-regulated genes, which control the cell cycle, cell death, cell metabolism and oxidative stress <abbrgrp><abbr bid="B82">82</abbr><abbr bid="B128">128</abbr><abbr bid="B129">129</abbr></abbrgrp>. Taken together, these studies demonstrate that dephosphorylation and activation of FOXO by inhibition of PI3K/AKT and MEK/ERK pathways has significant implication for pancreatic cancer treatment and prevention, where Kras is activated in about 90% patients.</p>
<p>In addition to phosphorylation, the acetylation/deacetylation of FOXO can be regulated by p300, Cbp (CREB-binding protein) and Pcaf (p300/CBP-associated factors) in response to oxidative stress or DNA binding, followed by deacetylation by class I and II histone deacetylases <abbrgrp><abbr bid="B130">130</abbr><abbr bid="B131">131</abbr><abbr bid="B132">132</abbr></abbrgrp>, including Sirt1, the NAD<sup>+</sup>-dependent deacetylase encoded by the ortholog of yeast longevity gene Sir2 <abbrgrp><abbr bid="B133">133</abbr></abbrgrp>. Therefore, further studies are needed to examine the consequences of acetylation/deacetylation of FOXO transcription factors on anti-proliferative and anti-angiogenic effects of SFN.</p>
<p>In conclusion, we have demonstrated that SFN induces cell cycle arrest and apoptosis through regulation of FOXO transcription factors. Pharmacological and genetic inhibitions of PI3K/AKT and MEK/ERK pathways can have synergistic effects on the activation of FOXO transcription factors through dephosphorylation and nuclear retention. Thus, SFN appears to be as an attractive agent for pancreatic cancer prevention and treatment.</p>
</sec>
<sec><st><p>Methods</p></st>
<sec><st><p>Reagents</p></st>
<p>Antibodies against PTEN, phospho-AKT, AKT, phospho-ERK, ERK, phospho-p38, p38, p21/CIP1, p27/KIP1, cyclin D1, and &#946;-actin were purchased from Cell Signaling Technology, Inc. (Danvers, MA). Enhanced chemiluminescence (ECL) Western blot detection reagents were from Amersham Life Sciences Inc. (Arlington Heights, IL). Terminal Deoxynucleotidyl Transferase Biotin-dUTP Nick End Labeling (TUNEL) assay kit was purchased from EMD Biosciences/Calbiochem (San Diego, CA). Sulforaphane was purchased from LKT Laboratories, Inc. (St. Paul, MN). Kits for Terminal Deoxynucleotidyl Transferase Biotin-dUTP Nick End Labeling (TUNEL) and caspase-3 assays were purchased from EMD Biosciences/Calbiochem (San Diego, CA).</p>
</sec>
<sec><st><p>Cell Culture</p></st>
<p>PANC-1, MIA PaCa-2, AsPC-1 and Hs 766T cells were obtained from the American Type Culture Collection (Manassas, VA) and cultured in RPMI 1640 supplemented with 10% fetal bovine serum (FBS) and 1% antibiotic-antimycotic (Invitrogen) at 37&#176;C in a humidified atmosphere of 95% air and 5% CO<sub>2</sub><sup>.</sup></p>
</sec>
<sec><st><p>Western Blot Analysis</p></st>
<p>Western blots were performed as we described earlier <abbrgrp><abbr bid="B134">134</abbr><abbr bid="B135">135</abbr></abbrgrp>. In brief, cells <b>
</b>were lysed in RIPA buffer containing 1 &#215; protease inhibitor cocktail, and protein concentrations were determined using the Bradford assay (Bio-Rad, Philadelphia, PA). Proteins were separated by 12.5% SDS/PAGE and transferred to membranes (Millipore, Bedford, MA) in a Tris (20 mM), glycine (150 mM) and methanol (20%) buffer at 55 V for 4 h at 4&#176;C. After blocking in 5% nonfat dry milk in TBS, the membranes were incubated with primary antibodies at 1:1,000 dilution in TBS overnight at 4&#176;C, washed three times with TBS-Tween 20, and then incubated with secondary antibodies conjugated with horseradish peroxidase at 1:5,000 dilution in TBS for 1 hour at room temperature. Membranes were washed again in TBS-Tween 20 for three times at room temperature. Protein bands were visualized on X-ray film using an enhanced chemiluminescence detection system.</p>
</sec>
<sec><st><p>Caspase-3 Assay</p></st>
<p>Cells (3 &#215; 10<sup>4 </sup>per well) were seeded in a 96-well plate with 200 &#956;l culture medium. Approximately 16 h later, cells were treated with various doses of SFN to induce apoptosis. Casapse-3 activity was measured by a fluorometer as per manufacturer's instructions (EMD Biosciences).</p>
</sec>
<sec><st><p>Statistical Analysis</p></st>
<p>The mean and SD were calculated for each experimental group. Differences between groups were analyzed by one or two way ANOVA, followed by Bonferoni's multiple comparison tests using PRISM statistical analysis software (GrafPad Software, Inc., San Diego, CA). Significant differences among groups were calculated at P &lt; 0.05.</p>
</sec>
</sec>
<sec><st><p>List of abbreviations used</p></st>
<p>ANOVA: Analysis of Variance; PTEN: Phosphatase and Tensin Homolog Deleted on Chromosome 10; RIPA: Radio-Immunoprecipitation Assay; SDS-PAGE: Sodium Dodecyl Sulfate-Polyacrylamide Gel Electrophoresis; SFN: Sulforaphane; TBS: Tris Buffer Saline.</p>
</sec>
<sec><st><p>Competing interests</p></st>
<p>The authors declare that they have no competing interests.</p>
</sec>
<sec><st><p>Authors' contributions</p></st>
<p>SKR and SS performed the experiments. SS and RKS designed and wrote the manuscript. All the authors have read and approved the final manuscript.</p>
</sec>
</bdy>
<bm>
<ack><sec><st><p>Acknowledgements</p></st>
<p>We thank our lab members for critical reading of the manuscript. We also thank Dr. Noboru Motoyama (National Institute for Longevity Sciences, Obu, Aichi, Japan) and Dr. Tatsuo Furuyama (Sonoda Women's University, Amagasaki, Hyogo, Japan) for providing FOXO expression plasmids and FOXO-luciferase construct (pGL3-6X DBE), respectively. This work was supported in part by the grants from the National Institutes of Health (R01CA125262 and RO1CA114469).</p>
</sec>
</ack>
<refgrp><bibl id="B1"><title><p>Pancreatic carcinoma</p></title><aug><au><snm>Warshaw</snm><fnm>AL</fnm></au><au><snm>Fernandez-del Castillo</snm><fnm>C</fnm></au></aug><source>N Engl J Med</source><pubdate>1992</pubdate><volume>326</volume><fpage>455</fpage><lpage>465</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1056/NEJM199202133260706</pubid><pubid idtype="pmpid" link="fulltext">1732772</pubid></pubidlist></xrefbib></bibl><bibl id="B2"><title><p>Surgical and medical therapy for pancreatic carcinoma</p></title><aug><au><snm>Magee</snm><fnm>CJ</fnm></au><au><snm>Ghaneh</snm><fnm>P</fnm></au><au><snm>Neoptolemos</snm><fnm>JP</fnm></au></aug><source>Best Pract Res Clin Gastroenterol</source><pubdate>2002</pubdate><volume>16</volume><fpage>435</fpage><lpage>455</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1053/bega.2002.0317</pubid><pubid idtype="pmpid" link="fulltext">12079268</pubid></pubidlist></xrefbib></bibl><bibl id="B3"><title><p>Pancreatic cancer</p></title><aug><au><snm>Yeo</snm><fnm>TP</fnm></au><au><snm>Hruban</snm><fnm>RH</fnm></au><au><snm>Leach</snm><fnm>SD</fnm></au><au><snm>Wilentz</snm><fnm>RE</fnm></au><au><snm>Sohn</snm><fnm>TA</fnm></au><au><snm>Kern</snm><fnm>SE</fnm></au><au><snm>Iacobuzio-Donahue</snm><fnm>CA</fnm></au><au><snm>Maitra</snm><fnm>A</fnm></au><au><snm>Goggins</snm><fnm>M</fnm></au><au><snm>Canto</snm><fnm>MI</fnm></au><etal/></aug><source>Curr Probl Cancer</source><pubdate>2002</pubdate><volume>26</volume><fpage>176</fpage><lpage>275</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1067/mcn.2002.129579</pubid><pubid idtype="pmpid" link="fulltext">12399802</pubid></pubidlist></xrefbib></bibl><bibl id="B4"><title><p>Antioxidant functions of sulforaphane: a potent inducer of Phase II detoxication enzymes</p></title><aug><au><snm>Fahey</snm><fnm>JW</fnm></au><au><snm>Talalay</snm><fnm>P</fnm></au></aug><source>Food Chem Toxicol</source><pubdate>1999</pubdate><volume>37</volume><fpage>973</fpage><lpage>979</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0278-6915(99)00082-4</pubid><pubid idtype="pmpid" link="fulltext">10541453</pubid></pubidlist></xrefbib></bibl><bibl id="B5"><title><p>Sulforaphane inhibits extracellular, intracellular, and antibiotic-resistant strains of Helicobacter pylori and prevents benzo[a]pyrene-induced stomach tumors</p></title><aug><au><snm>Fahey</snm><fnm>JW</fnm></au><au><snm>Haristoy</snm><fnm>X</fnm></au><au><snm>Dolan</snm><fnm>PM</fnm></au><au><snm>Kensler</snm><fnm>TW</fnm></au><au><snm>Scholtus</snm><fnm>I</fnm></au><au><snm>Stephenson</snm><fnm>KK</fnm></au><au><snm>Talalay</snm><fnm>P</fnm></au><au><snm>Lozniewski</snm><fnm>A</fnm></au></aug><source>Proc Natl Acad Sci USA</source><pubdate>2002</pubdate><volume>99</volume><fpage>7610</fpage><lpage>7615</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1073/pnas.112203099</pubid><pubid idtype="pmcid">124299</pubid><pubid idtype="pmpid">12032331</pubid></pubidlist></xrefbib></bibl><bibl id="B6"><title><p>Botanicals in cancer chemoprevention</p></title><aug><au><snm>Park</snm><fnm>EJ</fnm></au><au><snm>Pezzuto</snm><fnm>JM</fnm></au></aug><source>Cancer Metastasis Rev</source><pubdate>2002</pubdate><volume>21</volume><fpage>231</fpage><lpage>255</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1023/A:1021254725842</pubid><pubid idtype="pmpid" link="fulltext">12549763</pubid></pubidlist></xrefbib></bibl><bibl id="B7"><title><p>Antimutagens, anticarcinogens, and effective worldwide cancer prevention</p></title><aug><au><snm>Weisburger</snm><fnm>JH</fnm></au></aug><source>J Environ Pathol Toxicol Oncol</source><pubdate>1999</pubdate><volume>18</volume><fpage>85</fpage><lpage>93</lpage><xrefbib><pubid idtype="pmpid">15281219</pubid></xrefbib></bibl><bibl id="B8"><title><p>Anticarcinogenic activities of sulforaphane and structurally related synthetic norbornyl isothiocyanates</p></title><aug><au><snm>Zhang</snm><fnm>Y</fnm></au><au><snm>Kensler</snm><fnm>TW</fnm></au><au><snm>Cho</snm><fnm>CG</fnm></au><au><snm>Posner</snm><fnm>GH</fnm></au><au><snm>Talalay</snm><fnm>P</fnm></au></aug><source>Proc Natl Acad Sci USA</source><pubdate>1994</pubdate><volume>91</volume><fpage>3147</fpage><lpage>3150</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1073/pnas.91.8.3147</pubid><pubid idtype="pmcid">43532</pubid><pubid idtype="pmpid">8159717</pubid></pubidlist></xrefbib></bibl><bibl id="B9"><title><p>Broccoli sprouts: an exceptionally rich source of inducers of enzymes that protect against chemical carcinogens</p></title><aug><au><snm>Fahey</snm><fnm>JW</fnm></au><au><snm>Zhang</snm><fnm>Y</fnm></au><au><snm>Talalay</snm><fnm>P</fnm></au></aug><source>Proc Natl Acad Sci USA</source><pubdate>1997</pubdate><volume>94</volume><fpage>10367</fpage><lpage>10372</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1073/pnas.94.19.10367</pubid><pubid idtype="pmcid">23369</pubid><pubid idtype="pmpid">9294217</pubid></pubidlist></xrefbib></bibl><bibl id="B10"><title><p>Chemoprevention of colonic aberrant crypt foci in Fischer rats by sulforaphane and phenethyl isothiocyanate</p></title><aug><au><snm>Chung</snm><fnm>FL</fnm></au><au><snm>Conaway</snm><fnm>CC</fnm></au><au><snm>Rao</snm><fnm>CV</fnm></au><au><snm>Reddy</snm><fnm>BS</fnm></au></aug><source>Carcinogenesis</source><pubdate>2000</pubdate><volume>21</volume><fpage>2287</fpage><lpage>2291</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1093/carcin/21.12.2287</pubid><pubid idtype="pmpid" link="fulltext">11133820</pubid></pubidlist></xrefbib></bibl><bibl id="B11"><title><p>Sulforaphane induces caspase-mediated apoptosis in cultured PC-3 human prostate cancer cells and retards growth of PC-3 xenografts in vivo</p></title><aug><au><snm>Singh</snm><fnm>AV</fnm></au><au><snm>Xiao</snm><fnm>D</fnm></au><au><snm>Lew</snm><fnm>KL</fnm></au><au><snm>Dhir</snm><fnm>R</fnm></au><au><snm>Singh</snm><fnm>SV</fnm></au></aug><source>Carcinogenesis</source><pubdate>2004</pubdate><volume>25</volume><fpage>83</fpage><lpage>90</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1093/carcin/bgg178</pubid><pubid idtype="pmpid" link="fulltext">14514658</pubid></pubidlist></xrefbib></bibl><bibl id="B12"><title><p>Sulforaphane enhances the therapeutic potential of TRAIL in prostate cancer orthotopic model through regulation of apoptosis, metastasis and angiogenesis</p></title><aug><au><snm>Shankar</snm><fnm>S</fnm></au><au><snm>Ganapathy</snm><fnm>S</fnm></au><au><snm>Srivastava</snm><fnm>RK</fnm></au></aug><source>Clinical Cancer Res</source><pubdate>2008</pubdate><volume>14</volume><fpage>1</fpage><lpage>16</lpage><xrefbib><pubid idtype="doi">10.1158/1078-0432.CCR-08-0903</pubid></xrefbib></bibl><bibl id="B13"><title><p>Sulforaphane inhibits human MCF-7 mammary cancer cell mitotic progression and tubulin polymerization</p></title><aug><au><snm>Jackson</snm><fnm>SJ</fnm></au><au><snm>Singletary</snm><fnm>KW</fnm></au></aug><source>J Nutr</source><pubdate>2004</pubdate><volume>134</volume><fpage>2229</fpage><lpage>2236</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">15333709</pubid></xrefbib></bibl><bibl id="B14"><title><p>Sulforaphane Increases Cyclin-Dependent Kinase Inhibitor, p21 Protein in Human Oral Carcinoma Cells and Nude Mouse Animal Model to Induce G(2)/M Cell Cycle Arrest</p></title><aug><au><snm>Kim</snm><fnm>JH</fnm></au><au><snm>Han Kwon</snm><fnm>K</fnm></au><au><snm>Jung</snm><fnm>JY</fnm></au><au><snm>Han</snm><fnm>HS</fnm></au><au><snm>Hyun Shim</snm><fnm>J</fnm></au><au><snm>Oh</snm><fnm>S</fnm></au><au><snm>Choi</snm><fnm>KH</fnm></au><au><snm>Choi</snm><fnm>ES</fnm></au><au><snm>Shin</snm><fnm>JA</fnm></au><au><snm>Leem</snm><fnm>DH</fnm></au><etal/></aug><source>J Clin Biochem Nutr</source><pubdate>2010</pubdate><volume>46</volume><fpage>60</fpage><lpage>67</lpage><xrefbib><pubidlist><pubid idtype="pmcid">2803134</pubid><pubid idtype="pmpid">20104266</pubid></pubidlist></xrefbib></bibl><bibl id="B15"><title><p>Sulforaphane enhances caspase-dependent apoptosis through inhibition of cyclooxygenase-2 expression in human oral squamous carcinoma cells and nude mouse xenograft model</p></title><aug><au><snm>Cho</snm><fnm>NP</fnm></au><au><snm>Han</snm><fnm>HS</fnm></au><au><snm>Leem</snm><fnm>DH</fnm></au><au><snm>Choi</snm><fnm>IS</fnm></au><au><snm>Jung</snm><fnm>JY</fnm></au><au><snm>Kim</snm><fnm>HJ</fnm></au><au><snm>Moon</snm><fnm>KS</fnm></au><au><snm>Choi</snm><fnm>KH</fnm></au><au><snm>Soh</snm><fnm>Y</fnm></au><au><snm>Kong</snm><fnm>G</fnm></au><etal/></aug><source>Oral Oncol</source><pubdate>2009</pubdate><volume>45</volume><fpage>654</fpage><lpage>660</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/j.oraloncology.2008.07.003</pubid><pubid idtype="pmpid" link="fulltext">18805045</pubid></pubidlist></xrefbib></bibl><bibl id="B16"><title><p>Chemopreventive agent sulforaphane enhances radiosensitivity in human tumor cells</p></title><aug><au><snm>Yu</snm><fnm>D</fnm></au><au><snm>Sekine-Suzuki</snm><fnm>E</fnm></au><au><snm>Xue</snm><fnm>L</fnm></au><au><snm>Fujimori</snm><fnm>A</fnm></au><au><snm>Kubota</snm><fnm>N</fnm></au><au><snm>Okayasu</snm><fnm>R</fnm></au></aug><source>Int J Cancer</source><pubdate>2009</pubdate><volume>125</volume><fpage>1205</fpage><lpage>1211</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1002/ijc.24480</pubid><pubid idtype="pmpid" link="fulltext">19452523</pubid></pubidlist></xrefbib></bibl><bibl id="B17"><title><p>Absolute bioavailability and dose-dependent pharmacokinetic behaviour of dietary doses of the chemopreventive isothiocyanate sulforaphane in rat</p></title><aug><au><snm>Hanlon</snm><fnm>N</fnm></au><au><snm>Coldham</snm><fnm>N</fnm></au><au><snm>Gielbert</snm><fnm>A</fnm></au><au><snm>Kuhnert</snm><fnm>N</fnm></au><au><snm>Sauer</snm><fnm>MJ</fnm></au><au><snm>King</snm><fnm>LJ</fnm></au><au><snm>Ioannides</snm><fnm>C</fnm></au></aug><source>Br J Nutr</source><pubdate>2008</pubdate><volume>99</volume><fpage>559</fpage><lpage>564</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1017/S0007114507824093</pubid><pubid idtype="pmpid" link="fulltext">17868493</pubid></pubidlist></xrefbib></bibl><bibl id="B18"><title><p>Pharmacogenomics, regulation and signaling pathways of phase I and II drug metabolizing enzymes</p></title><aug><au><snm>Rushmore</snm><fnm>TH</fnm></au><au><snm>Kong</snm><fnm>AN</fnm></au></aug><source>Curr Drug Metab</source><pubdate>2002</pubdate><volume>3</volume><fpage>481</fpage><lpage>490</lpage><xrefbib><pubidlist><pubid idtype="doi">10.2174/1389200023337171</pubid><pubid idtype="pmpid" link="fulltext">12369894</pubid></pubidlist></xrefbib></bibl><bibl id="B19"><title><p>Sulforaphane-mediated induction of a phase 2 detoxifying enzyme NAD(P)H:quinone reductase and apoptosis in human lymphoblastoid cells</p></title><aug><au><snm>Misiewicz</snm><fnm>I</fnm></au><au><snm>Skupinska</snm><fnm>K</fnm></au><au><snm>Kowalska</snm><fnm>E</fnm></au><au><snm>Lubinski</snm><fnm>J</fnm></au><au><snm>Kasprzycka-Guttman</snm><fnm>T</fnm></au></aug><source>Acta Biochim Pol</source><pubdate>2004</pubdate><volume>51</volume><fpage>711</fpage><lpage>721</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">15448733</pubid></xrefbib></bibl><bibl id="B20"><title><p>Sulforaphane and quercetin modulate PhIP-DNA adduct formation in human HepG2 cells and hepatocytes</p></title><aug><au><snm>Bacon</snm><fnm>JR</fnm></au><au><snm>Williamson</snm><fnm>G</fnm></au><au><snm>Garner</snm><fnm>RC</fnm></au><au><snm>Lappin</snm><fnm>G</fnm></au><au><snm>Langouet</snm><fnm>S</fnm></au><au><snm>Bao</snm><fnm>Y</fnm></au></aug><source>Carcinogenesis</source><pubdate>2003</pubdate><volume>24</volume><fpage>1903</fpage><lpage>1911</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1093/carcin/bgg157</pubid><pubid idtype="pmpid" link="fulltext">12949046</pubid></pubidlist></xrefbib></bibl><bibl id="B21"><title><p>Effects of glucosinolate-rich broccoli sprouts on urinary levels of aflatoxin-DNA adducts and phenanthrene tetraols in a randomized clinical trial in He Zuo township, Qidong, People's Republic of China</p></title><aug><au><snm>Kensler</snm><fnm>TW</fnm></au><au><snm>Chen</snm><fnm>JG</fnm></au><au><snm>Egner</snm><fnm>PA</fnm></au><au><snm>Fahey</snm><fnm>JW</fnm></au><au><snm>Jacobson</snm><fnm>LP</fnm></au><au><snm>Stephenson</snm><fnm>KK</fnm></au><au><snm>Ye</snm><fnm>L</fnm></au><au><snm>Coady</snm><fnm>JL</fnm></au><au><snm>Wang</snm><fnm>JB</fnm></au><au><snm>Wu</snm><fnm>Y</fnm></au><etal/></aug><source>Cancer Epidemiol Biomarkers Prev</source><pubdate>2005</pubdate><volume>14</volume><fpage>2605</fpage><lpage>2613</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1158/1055-9965.EPI-05-0368</pubid><pubid idtype="pmpid" link="fulltext">16284385</pubid></pubidlist></xrefbib></bibl><bibl id="B22"><title><p>Phenethyl isothiocyanate and sulforaphane and their N-acetylcysteine conjugates inhibit malignant progression of lung adenomas induced by tobacco carcinogens in A/J mice</p></title><aug><au><snm>Conaway</snm><fnm>CC</fnm></au><au><snm>Wang</snm><fnm>CX</fnm></au><au><snm>Pittman</snm><fnm>B</fnm></au><au><snm>Yang</snm><fnm>YM</fnm></au><au><snm>Schwartz</snm><fnm>JE</fnm></au><au><snm>Tian</snm><fnm>D</fnm></au><au><snm>McIntee</snm><fnm>EJ</fnm></au><au><snm>Hecht</snm><fnm>SS</fnm></au><au><snm>Chung</snm><fnm>FL</fnm></au></aug><source>Cancer Res</source><pubdate>2005</pubdate><volume>65</volume><fpage>8548</fpage><lpage>8557</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1158/0008-5472.CAN-05-0237</pubid><pubid idtype="pmpid" link="fulltext">16166336</pubid></pubidlist></xrefbib></bibl><bibl id="B23"><title><p>Inhibition of benzo[a]pyrene- and 1,6-dinitropyrene-DNA adduct formation in human mammary epithelial cells bydibenzoylmethane and sulforaphane</p></title><aug><au><snm>Singletary</snm><fnm>K</fnm></au><au><snm>MacDonald</snm><fnm>C</fnm></au></aug><source>Cancer Lett</source><pubdate>2000</pubdate><volume>155</volume><fpage>47</fpage><lpage>54</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0304-3835(00)00412-2</pubid><pubid idtype="pmpid" link="fulltext">10814878</pubid></pubidlist></xrefbib></bibl><bibl id="B24"><title><p>Sulforaphane inhibits angiogenesis through activation of FOXO transcription factors</p></title><aug><au><snm>Davis</snm><fnm>R</fnm></au><au><snm>Singh</snm><fnm>KP</fnm></au><au><snm>Kurzrock</snm><fnm>R</fnm></au><au><snm>Shankar</snm><fnm>S</fnm></au></aug><source>Oncol Rep</source><pubdate>2009</pubdate><volume>22</volume><fpage>1473</fpage><lpage>1478</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">19885601</pubid></xrefbib></bibl><bibl id="B25"><title><p>Role of PI3K/Akt and MEK/ERK signaling pathways in sulforaphane- and erucin-induced phase II enzymes and MRP2 transcription, G2/M arrest and cell death in Caco-2 cells</p></title><aug><au><snm>Jakubikova</snm><fnm>J</fnm></au><au><snm>Sedlak</snm><fnm>J</fnm></au><au><snm>Mithen</snm><fnm>R</fnm></au><au><snm>Bao</snm><fnm>Y</fnm></au></aug><source>Biochem Pharmacol</source><pubdate>2005</pubdate><volume>69</volume><fpage>1543</fpage><lpage>1552</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/j.bcp.2005.03.015</pubid><pubid idtype="pmpid" link="fulltext">15896333</pubid></pubidlist></xrefbib></bibl><bibl id="B26"><title><p>Molecular targets of dietary phenethyl isothiocyanate and sulforaphane for cancer chemoprevention</p></title><aug><au><snm>Cheung</snm><fnm>KL</fnm></au><au><snm>Kong</snm><fnm>AN</fnm></au></aug><source>AAPS J</source><pubdate>2010</pubdate><volume>12</volume><fpage>87</fpage><lpage>97</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1208/s12248-009-9162-8</pubid><pubid idtype="pmcid">2811646</pubid><pubid idtype="pmpid" link="fulltext">20013083</pubid></pubidlist></xrefbib></bibl><bibl id="B27"><title><p>D,L-Sulforaphane-induced cell death in human prostate cancer cells is regulated by inhibitor of apoptosis family proteins and Apaf-1</p></title><aug><au><snm>Choi</snm><fnm>S</fnm></au><au><snm>Lew</snm><fnm>KL</fnm></au><au><snm>Xiao</snm><fnm>H</fnm></au><au><snm>Herman-Antosiewicz</snm><fnm>A</fnm></au><au><snm>Xiao</snm><fnm>D</fnm></au><au><snm>Brown</snm><fnm>CK</fnm></au><au><snm>Singh</snm><fnm>SV</fnm></au></aug><source>Carcinogenesis</source><pubdate>2007</pubdate><volume>28</volume><fpage>151</fpage><lpage>162</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1093/carcin/bgl144</pubid><pubid idtype="pmpid" link="fulltext">16920735</pubid></pubidlist></xrefbib></bibl><bibl id="B28"><title><p>PTEN, a putative protein tyrosine phosphatase gene mutated in human brain, breast, and prostate cancer</p></title><aug><au><snm>Li</snm><fnm>J</fnm></au><au><snm>Yen</snm><fnm>C</fnm></au><au><snm>Liaw</snm><fnm>D</fnm></au><au><snm>Podsypanina</snm><fnm>K</fnm></au><au><snm>Bose</snm><fnm>S</fnm></au><au><snm>Wang</snm><fnm>SI</fnm></au><au><snm>Puc</snm><fnm>J</fnm></au><au><snm>Miliaresis</snm><fnm>C</fnm></au><au><snm>Rodgers</snm><fnm>L</fnm></au><au><snm>McCombie</snm><fnm>R</fnm></au><etal/></aug><source>Science</source><pubdate>1997</pubdate><volume>275</volume><fpage>1943</fpage><lpage>1947</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1126/science.275.5308.1943</pubid><pubid idtype="pmpid" link="fulltext">9072974</pubid></pubidlist></xrefbib></bibl><bibl id="B29"><title><p>Identification of a candidate tumour suppressor gene, MMAC1, at chromosome 10q23.3 that is mutated in multiple advanced cancers</p></title><aug><au><snm>Steck</snm><fnm>PA</fnm></au><au><snm>Pershouse</snm><fnm>MA</fnm></au><au><snm>Jasser</snm><fnm>SA</fnm></au><au><snm>Yung</snm><fnm>WK</fnm></au><au><snm>Lin</snm><fnm>H</fnm></au><au><snm>Ligon</snm><fnm>AH</fnm></au><au><snm>Langford</snm><fnm>LA</fnm></au><au><snm>Baumgard</snm><fnm>ML</fnm></au><au><snm>Hattier</snm><fnm>T</fnm></au><au><snm>Davis</snm><fnm>T</fnm></au><etal/></aug><source>Nat Genet</source><pubdate>1997</pubdate><volume>15</volume><fpage>356</fpage><lpage>362</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/ng0497-356</pubid><pubid idtype="pmpid" link="fulltext">9090379</pubid></pubidlist></xrefbib></bibl><bibl id="B30"><title><p>TEP1, encoded by a candidate tumor suppressor locus, is a novel protein tyrosine phosphatase regulated by transforming growth factor beta</p></title><aug><au><snm>Li</snm><fnm>DM</fnm></au><au><snm>Sun</snm><fnm>H</fnm></au></aug><source>Cancer Res</source><pubdate>1997</pubdate><volume>57</volume><fpage>2124</fpage><lpage>2129</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">9187108</pubid></xrefbib></bibl><bibl id="B31"><title><p>Somatic mutations of PTEN in glioblastoma multiforme</p></title><aug><au><snm>Wang</snm><fnm>SI</fnm></au><au><snm>Puc</snm><fnm>J</fnm></au><au><snm>Li</snm><fnm>J</fnm></au><au><snm>Bruce</snm><fnm>JN</fnm></au><au><snm>Cairns</snm><fnm>P</fnm></au><au><snm>Sidransky</snm><fnm>D</fnm></au><au><snm>Parsons</snm><fnm>R</fnm></au></aug><source>Cancer Res</source><pubdate>1997</pubdate><volume>57</volume><fpage>4183</fpage><lpage>4186</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">9331071</pubid></xrefbib></bibl><bibl id="B32"><title><p>Disruption of the MMAC1/PTEN gene by deletion or mutation is a frequent event in malignant melanoma</p></title><aug><au><snm>Guldberg</snm><fnm>P</fnm></au><au><snm>thor Straten</snm><fnm>P</fnm></au><au><snm>Birck</snm><fnm>A</fnm></au><au><snm>Ahrenkiel</snm><fnm>V</fnm></au><au><snm>Kirkin</snm><fnm>AF</fnm></au><au><snm>Zeuthen</snm><fnm>J</fnm></au></aug><source>Cancer Res</source><pubdate>1997</pubdate><volume>57</volume><fpage>3660</fpage><lpage>3663</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">9288767</pubid></xrefbib></bibl><bibl id="B33"><title><p>Frequent inactivation of PTEN/MMAC1 in primary prostate cancer</p></title><aug><au><snm>Cairns</snm><fnm>P</fnm></au><au><snm>Okami</snm><fnm>K</fnm></au><au><snm>Halachmi</snm><fnm>S</fnm></au><au><snm>Halachmi</snm><fnm>N</fnm></au><au><snm>Esteller</snm><fnm>M</fnm></au><au><snm>Herman</snm><fnm>JG</fnm></au><au><snm>Jen</snm><fnm>J</fnm></au><au><snm>Isaacs</snm><fnm>WB</fnm></au><au><snm>Bova</snm><fnm>GS</fnm></au><au><snm>Sidransky</snm><fnm>D</fnm></au></aug><source>Cancer Res</source><pubdate>1997</pubdate><volume>57</volume><fpage>4997</fpage><lpage>5000</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">9371490</pubid></xrefbib></bibl><bibl id="B34"><title><p>Mutation analysis of the putative tumor suppressor gene PTEN/MMAC1 in primary breast carcinomas</p></title><aug><au><snm>Rhei</snm><fnm>E</fnm></au><au><snm>Kang</snm><fnm>L</fnm></au><au><snm>Bogomolniy</snm><fnm>F</fnm></au><au><snm>Federici</snm><fnm>MG</fnm></au><au><snm>Borgen</snm><fnm>PI</fnm></au><au><snm>Boyd</snm><fnm>J</fnm></au></aug><source>Cancer Res</source><pubdate>1997</pubdate><volume>57</volume><fpage>3657</fpage><lpage>3659</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">9288766</pubid></xrefbib></bibl><bibl id="B35"><title><p>Mutations in PTEN are frequent in endometrial carcinoma but rare in other common gynecological malignancies</p></title><aug><au><snm>Tashiro</snm><fnm>H</fnm></au><au><snm>Blazes</snm><fnm>MS</fnm></au><au><snm>Wu</snm><fnm>R</fnm></au><au><snm>Cho</snm><fnm>KR</fnm></au><au><snm>Bose</snm><fnm>S</fnm></au><au><snm>Wang</snm><fnm>SI</fnm></au><au><snm>Li</snm><fnm>J</fnm></au><au><snm>Parsons</snm><fnm>R</fnm></au><au><snm>Ellenson</snm><fnm>LH</fnm></au></aug><source>Cancer Res</source><pubdate>1997</pubdate><volume>57</volume><fpage>3935</fpage><lpage>3940</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">9307275</pubid></xrefbib></bibl><bibl id="B36"><title><p>Infrequent genetic alterations of the PTEN/MMAC1 gene in Japanese patients with primary cancers of the breast, lung, pancreas, kidney, and ovary</p></title><aug><au><snm>Sakurada</snm><fnm>A</fnm></au><au><snm>Suzuki</snm><fnm>A</fnm></au><au><snm>Sato</snm><fnm>M</fnm></au><au><snm>Yamakawa</snm><fnm>H</fnm></au><au><snm>Orikasa</snm><fnm>K</fnm></au><au><snm>Uyeno</snm><fnm>S</fnm></au><au><snm>Ono</snm><fnm>T</fnm></au><au><snm>Ohuchi</snm><fnm>N</fnm></au><au><snm>Fujimura</snm><fnm>S</fnm></au><au><snm>Horii</snm><fnm>A</fnm></au></aug><source>Jpn J Cancer Res</source><pubdate>1997</pubdate><volume>88</volume><fpage>1025</fpage><lpage>1028</lpage><xrefbib><pubid idtype="pmpid">9439675</pubid></xrefbib></bibl><bibl id="B37"><title><p>Analysis of PTEN/MMAC1 alterations in aerodigestive tract tumors</p></title><aug><au><snm>Okami</snm><fnm>K</fnm></au><au><snm>Wu</snm><fnm>L</fnm></au><au><snm>Riggins</snm><fnm>G</fnm></au><au><snm>Cairns</snm><fnm>P</fnm></au><au><snm>Goggins</snm><fnm>M</fnm></au><au><snm>Evron</snm><fnm>E</fnm></au><au><snm>Halachmi</snm><fnm>N</fnm></au><au><snm>Ahrendt</snm><fnm>SA</fnm></au><au><snm>Reed</snm><fnm>AL</fnm></au><au><snm>Hilgers</snm><fnm>W</fnm></au><etal/></aug><source>Cancer Res</source><pubdate>1998</pubdate><volume>58</volume><fpage>509</fpage><lpage>511</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">9458098</pubid></xrefbib></bibl><bibl id="B38"><title><p>The PI 3-kinase/Akt signaling pathway is activated due to aberrant Pten expression and targets transcription factors NF-kappaB and c-Myc in pancreatic cancer cells</p></title><aug><au><snm>Asano</snm><fnm>T</fnm></au><au><snm>Yao</snm><fnm>Y</fnm></au><au><snm>Zhu</snm><fnm>J</fnm></au><au><snm>Li</snm><fnm>D</fnm></au><au><snm>Abbruzzese</snm><fnm>JL</fnm></au><au><snm>Reddy</snm><fnm>SA</fnm></au></aug><source>Oncogene</source><pubdate>2004</pubdate><volume>23</volume><fpage>8571</fpage><lpage>8580</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/sj.onc.1207902</pubid><pubid idtype="pmpid" link="fulltext">15467756</pubid></pubidlist></xrefbib></bibl><bibl id="B39"><title><p>Frequent activation of AKT2 kinase in human pancreatic carcinomas</p></title><aug><au><snm>Altomare</snm><fnm>DA</fnm></au><au><snm>Tanno</snm><fnm>S</fnm></au><au><snm>De Rienzo</snm><fnm>A</fnm></au><au><snm>Klein-Szanto</snm><fnm>AJ</fnm></au><au><snm>Tanno</snm><fnm>S</fnm></au><au><snm>Skele</snm><fnm>KL</fnm></au><au><snm>Hoffman</snm><fnm>JP</fnm></au><au><snm>Testa</snm><fnm>JR</fnm></au></aug><source>J Cell Biochem</source><pubdate>2003</pubdate><volume>88</volume><fpage>470</fpage><lpage>476</lpage></bibl><bibl id="B40"><title><p>Reduced PTEN expression in the pancreas overexpressing transforming growth factor-beta 1</p></title><aug><au><snm>Ebert</snm><fnm>MP</fnm></au><au><snm>Fei</snm><fnm>G</fnm></au><au><snm>Schandl</snm><fnm>L</fnm></au><au><snm>Mawrin</snm><fnm>C</fnm></au><au><snm>Dietzmann</snm><fnm>K</fnm></au><au><snm>Herrera</snm><fnm>P</fnm></au><au><snm>Friess</snm><fnm>H</fnm></au><au><snm>Gress</snm><fnm>TM</fnm></au><au><snm>Malfertheiner</snm><fnm>P</fnm></au></aug><source>Br J Cancer</source><pubdate>2002</pubdate><volume>86</volume><fpage>257</fpage><lpage>262</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/sj.bjc.6600031</pubid><pubid idtype="pmcid">2375189</pubid><pubid idtype="pmpid">11870516</pubid></pubidlist></xrefbib></bibl><bibl id="B41"><title><p>Allelotype of pancreatic adenocarcinoma using xenograft enrichment</p></title><aug><au><snm>Hahn</snm><fnm>SA</fnm></au><au><snm>Seymour</snm><fnm>AB</fnm></au><au><snm>Hoque</snm><fnm>AT</fnm></au><au><snm>Schutte</snm><fnm>M</fnm></au><au><snm>da Costa</snm><fnm>LT</fnm></au><au><snm>Redston</snm><fnm>MS</fnm></au><au><snm>Caldas</snm><fnm>C</fnm></au><au><snm>Weinstein</snm><fnm>CL</fnm></au><au><snm>Fischer</snm><fnm>A</fnm></au><au><snm>Yeo</snm><fnm>CJ</fnm></au><etal/></aug><source>Cancer Res</source><pubdate>1995</pubdate><volume>55</volume><fpage>4670</fpage><lpage>4675</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">7553647</pubid></xrefbib></bibl><bibl id="B42"><title><p>The tumor suppressor, PTEN/MMAC1, dephosphorylates the lipid second messenger, phosphatidylinositol 3,4,5-trisphosphate</p></title><aug><au><snm>Maehama</snm><fnm>T</fnm></au><au><snm>Dixon</snm><fnm>JE</fnm></au></aug><source>J Biol Chem</source><pubdate>1998</pubdate><volume>273</volume><fpage>13375</fpage><lpage>13378</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1074/jbc.273.22.13375</pubid><pubid idtype="pmpid" link="fulltext">9593664</pubid></pubidlist></xrefbib></bibl><bibl id="B43"><title><p>Negative regulation of PKB/Akt-dependent cell survival by the tumor suppressor PTEN</p></title><aug><au><snm>Stambolic</snm><fnm>V</fnm></au><au><snm>Suzuki</snm><fnm>A</fnm></au><au><snm>de la Pompa</snm><fnm>JL</fnm></au><au><snm>Brothers</snm><fnm>GM</fnm></au><au><snm>Mirtsos</snm><fnm>C</fnm></au><au><snm>Sasaki</snm><fnm>T</fnm></au><au><snm>Ruland</snm><fnm>J</fnm></au><au><snm>Penninger</snm><fnm>JM</fnm></au><au><snm>Siderovski</snm><fnm>DP</fnm></au><au><snm>Mak</snm><fnm>TW</fnm></au></aug><source>Cell</source><pubdate>1998</pubdate><volume>95</volume><fpage>29</fpage><lpage>39</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0092-8674(00)81780-8</pubid><pubid idtype="pmpid" link="fulltext">9778245</pubid></pubidlist></xrefbib></bibl><bibl id="B44"><title><p>Inhibition of cell migration, spreading, and focal adhesions by tumor suppressor PTEN</p></title><aug><au><snm>Tamura</snm><fnm>M</fnm></au><au><snm>Gu</snm><fnm>J</fnm></au><au><snm>Matsumoto</snm><fnm>K</fnm></au><au><snm>Aota</snm><fnm>S</fnm></au><au><snm>Parsons</snm><fnm>R</fnm></au><au><snm>Yamada</snm><fnm>KM</fnm></au></aug><source>Science</source><pubdate>1998</pubdate><volume>280</volume><fpage>1614</fpage><lpage>1617</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1126/science.280.5369.1614</pubid><pubid idtype="pmpid" link="fulltext">9616126</pubid></pubidlist></xrefbib></bibl><bibl id="B45"><title><p>Akt-dependent and -independent survival signaling pathways utilized by insulin-like growth factor I</p></title><aug><au><snm>Kulik</snm><fnm>G</fnm></au><au><snm>Weber</snm><fnm>MJ</fnm></au></aug><source>Mol Cell Biol</source><pubdate>1998</pubdate><volume>18</volume><fpage>6711</fpage><lpage>6718</lpage><xrefbib><pubidlist><pubid idtype="pmcid">109254</pubid><pubid idtype="pmpid">9774684</pubid></pubidlist></xrefbib></bibl><bibl id="B46"><title><p>Tumor suppressor PTEN inhibits integrin- and growth factor-mediated mitogen-activated protein (MAP) kinase signaling pathways</p></title><aug><au><snm>Gu</snm><fnm>J</fnm></au><au><snm>Tamura</snm><fnm>M</fnm></au><au><snm>Yamada</snm><fnm>KM</fnm></au></aug><source>J Cell Biol</source><pubdate>1998</pubdate><volume>143</volume><fpage>1375</fpage><lpage>1383</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1083/jcb.143.5.1375</pubid><pubid idtype="pmcid">2133067</pubid><pubid idtype="pmpid">9832564</pubid></pubidlist></xrefbib></bibl><bibl id="B47"><title><p>PI 3-kinase, Akt and cell survival</p></title><aug><au><snm>Downward</snm><fnm>J</fnm></au></aug><source>Semin Cell Dev Biol</source><pubdate>2004</pubdate><volume>15</volume><fpage>177</fpage><lpage>182</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/j.semcdb.2004.01.002</pubid><pubid idtype="pmpid">15209377</pubid></pubidlist></xrefbib></bibl><bibl id="B48"><title><p>Restraining PI3K: mTOR signalling goes back to the membrane</p></title><aug><au><snm>Harrington</snm><fnm>LS</fnm></au><au><snm>Findlay</snm><fnm>GM</fnm></au><au><snm>Lamb</snm><fnm>RF</fnm></au></aug><source>Trends Biochem Sci</source><pubdate>2005</pubdate><volume>30</volume><fpage>35</fpage><lpage>42</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/j.tibs.2004.11.003</pubid><pubid idtype="pmpid" link="fulltext">15653324</pubid></pubidlist></xrefbib></bibl><bibl id="B49"><title><p>Regulation of neuronal survival by the serine-threonine protein kinase Akt</p></title><aug><au><snm>Dudek</snm><fnm>H</fnm></au><au><snm>Datta</snm><fnm>SR</fnm></au><au><snm>Franke</snm><fnm>TF</fnm></au><au><snm>Birnbaum</snm><fnm>MJ</fnm></au><au><snm>Yao</snm><fnm>R</fnm></au><au><snm>Cooper</snm><fnm>GM</fnm></au><au><snm>Segal</snm><fnm>RA</fnm></au><au><snm>Kaplan</snm><fnm>DR</fnm></au><au><snm>Greenberg</snm><fnm>ME</fnm></au></aug><source>Science</source><pubdate>1997</pubdate><volume>275</volume><fpage>661</fpage><lpage>665</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1126/science.275.5300.661</pubid><pubid idtype="pmpid" link="fulltext">9005851</pubid></pubidlist></xrefbib></bibl><bibl id="B50"><title><p>Programmed cell death: alive and well in the new millennium</p></title><aug><au><snm>Kaufmann</snm><fnm>SH</fnm></au><au><snm>Hengartner</snm><fnm>MO</fnm></au></aug><source>Trends Cell Biol</source><pubdate>2001</pubdate><volume>11</volume><fpage>526</fpage><lpage>534</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0962-8924(01)02173-0</pubid><pubid idtype="pmpid" link="fulltext">11719060</pubid></pubidlist></xrefbib></bibl><bibl id="B51"><title><p>The PI 3-kinase/Akt signaling pathway delivers an anti-apoptotic signal</p></title><aug><au><snm>Kennedy</snm><fnm>SG</fnm></au><au><snm>Wagner</snm><fnm>AJ</fnm></au><au><snm>Conzen</snm><fnm>SD</fnm></au><au><snm>Jordan</snm><fnm>J</fnm></au><au><snm>Bellacosa</snm><fnm>A</fnm></au><au><snm>Tsichlis</snm><fnm>PN</fnm></au><au><snm>Hay</snm><fnm>N</fnm></au></aug><source>Genes Dev</source><pubdate>1997</pubdate><volume>11</volume><fpage>701</fpage><lpage>713</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1101/gad.11.6.701</pubid><pubid idtype="pmpid" link="fulltext">9087425</pubid></pubidlist></xrefbib></bibl><bibl id="B52"><title><p>Akt is more than just a Bad kinase</p></title><aug><au><snm>Khwaja</snm><fnm>A</fnm></au></aug><source>Nature</source><pubdate>1999</pubdate><volume>401</volume><fpage>33</fpage><lpage>34</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/43354</pubid><pubid idtype="pmpid" link="fulltext">10485701</pubid></pubidlist></xrefbib></bibl><bibl id="B53"><title><p>Constitutively active Akt is an important regulator of TRAIL sensitivity in prostate cancer</p></title><aug><au><snm>Chen</snm><fnm>X</fnm></au><au><snm>Thakkar</snm><fnm>H</fnm></au><au><snm>Tyan</snm><fnm>F</fnm></au><au><snm>Gim</snm><fnm>S</fnm></au><au><snm>Robinson</snm><fnm>H</fnm></au><au><snm>Lee</snm><fnm>C</fnm></au><au><snm>Pandey</snm><fnm>SK</fnm></au><au><snm>Nwokorie</snm><fnm>C</fnm></au><au><snm>Onwudiwe</snm><fnm>N</fnm></au><au><snm>Srivastava</snm><fnm>RK</fnm></au></aug><source>Oncogene</source><pubdate>2001</pubdate><volume>20</volume><fpage>6073</fpage><lpage>6083</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/sj.onc.1204736</pubid><pubid idtype="pmpid" link="fulltext">11593415</pubid></pubidlist></xrefbib></bibl><bibl id="B54"><title><p>Role of the phosphatidylinositol 3'-kinase/PTEN/Akt kinase pathway in tumor necrosis factor-related apoptosis-inducing ligand-induced apoptosis in non-small cell lung cancer cells</p></title><aug><au><snm>Kandasamy</snm><fnm>K</fnm></au><au><snm>Srivastava</snm><fnm>RK</fnm></au></aug><source>Cancer Res</source><pubdate>2002</pubdate><volume>62</volume><fpage>4929</fpage><lpage>4937</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">12208743</pubid></xrefbib></bibl><bibl id="B55"><title><p>Increased level of phosphorylated akt measured by chemiluminescence-linked immunosorbent assay is a predictor of poor prognosis in primary breast cancer overexpressing ErbB-2</p></title><aug><au><snm>Cicenas</snm><fnm>J</fnm></au><au><snm>Urban</snm><fnm>P</fnm></au><au><snm>Vuaroqueaux</snm><fnm>V</fnm></au><au><snm>Labuhn</snm><fnm>M</fnm></au><au><snm>Kung</snm><fnm>W</fnm></au><au><snm>Wight</snm><fnm>E</fnm></au><au><snm>Mayhew</snm><fnm>M</fnm></au><au><snm>Eppenberger</snm><fnm>U</fnm></au><au><snm>Eppenberger-Castori</snm><fnm>S</fnm></au></aug><source>Breast Cancer Res</source><pubdate>2005</pubdate><volume>7</volume><fpage>R394</fpage><lpage>401</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1186/bcr1015</pubid><pubid idtype="pmcid">1175052</pubid><pubid idtype="pmpid">15987444</pubid></pubidlist></xrefbib></bibl><bibl id="B56"><title><p>Phosphorylated Akt/PKB controls cell growth and apoptosis in intraductal papillary-mucinous tumor and invasive ductal adenocarcinoma of the pancreas</p></title><aug><au><snm>Semba</snm><fnm>S</fnm></au><au><snm>Moriya</snm><fnm>T</fnm></au><au><snm>Kimura</snm><fnm>W</fnm></au><au><snm>Yamakawa</snm><fnm>M</fnm></au></aug><source>Pancreas</source><pubdate>2003</pubdate><volume>26</volume><fpage>250</fpage><lpage>257</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1097/00006676-200304000-00008</pubid><pubid idtype="pmpid" link="fulltext">12657951</pubid></pubidlist></xrefbib></bibl><bibl id="B57"><title><p>Role of Akt in growth and survival of PANC-1 pancreatic cancer cells</p></title><aug><au><snm>Yao</snm><fnm>Z</fnm></au><au><snm>Okabayashi</snm><fnm>Y</fnm></au><au><snm>Yutsudo</snm><fnm>Y</fnm></au><au><snm>Kitamura</snm><fnm>T</fnm></au><au><snm>Ogawa</snm><fnm>W</fnm></au><au><snm>Kasuga</snm><fnm>M</fnm></au></aug><source>Pancreas</source><pubdate>2002</pubdate><volume>24</volume><fpage>42</fpage><lpage>46</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1097/00006676-200201000-00006</pubid><pubid idtype="pmpid" link="fulltext">11741181</pubid></pubidlist></xrefbib></bibl><bibl id="B58"><title><p>Akt phosphorylation of BAD couples survival signals to the cell-intrinsic death machinery</p></title><aug><au><snm>Datta</snm><fnm>SR</fnm></au><au><snm>Dudek</snm><fnm>H</fnm></au><au><snm>Tao</snm><fnm>X</fnm></au><au><snm>Masters</snm><fnm>S</fnm></au><au><snm>Fu</snm><fnm>H</fnm></au><au><snm>Gotoh</snm><fnm>Y</fnm></au><au><snm>Greenberg</snm><fnm>ME</fnm></au></aug><source>Cell</source><pubdate>1997</pubdate><volume>91</volume><fpage>231</fpage><lpage>241</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0092-8674(00)80405-5</pubid><pubid idtype="pmpid" link="fulltext">9346240</pubid></pubidlist></xrefbib></bibl><bibl id="B59"><title><p>Interleukin-3-induced phosphorylation of BAD through the protein kinase Akt</p></title><aug><au><snm>del Peso</snm><fnm>L</fnm></au><au><snm>Gonzalez-Garcia</snm><fnm>M</fnm></au><au><snm>Page</snm><fnm>C</fnm></au><au><snm>Herrera</snm><fnm>R</fnm></au><au><snm>Nunez</snm><fnm>G</fnm></au></aug><source>Science</source><pubdate>1997</pubdate><volume>278</volume><fpage>687</fpage><lpage>689</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1126/science.278.5338.687</pubid><pubid idtype="pmpid" link="fulltext">9381178</pubid></pubidlist></xrefbib></bibl><bibl id="B60"><title><p>Regulation of cell death protease caspase-9 by phosphorylation</p></title><aug><au><snm>Cardone</snm><fnm>MH</fnm></au><au><snm>Roy</snm><fnm>N</fnm></au><au><snm>Stennicke</snm><fnm>HR</fnm></au><au><snm>Salvesen</snm><fnm>GS</fnm></au><au><snm>Franke</snm><fnm>TF</fnm></au><au><snm>Stanbridge</snm><fnm>E</fnm></au><au><snm>Frisch</snm><fnm>S</fnm></au><au><snm>Reed</snm><fnm>JC</fnm></au></aug><source>Science</source><pubdate>1998</pubdate><volume>282</volume><fpage>1318</fpage><lpage>1321</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1126/science.282.5392.1318</pubid><pubid idtype="pmpid" link="fulltext">9812896</pubid></pubidlist></xrefbib></bibl><bibl id="B61"><title><p>Akt protein kinase enhances human telomerase activity through phosphorylation of telomerase reverse transcriptase subunit</p></title><aug><au><snm>Kang</snm><fnm>SS</fnm></au><au><snm>Kwon</snm><fnm>T</fnm></au><au><snm>Kwon</snm><fnm>DY</fnm></au><au><snm>Do</snm><fnm>SI</fnm></au></aug><source>J Biol Chem</source><pubdate>1999</pubdate><volume>274</volume><fpage>13085</fpage><lpage>13090</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1074/jbc.274.19.13085</pubid><pubid idtype="pmpid" link="fulltext">10224060</pubid></pubidlist></xrefbib></bibl><bibl id="B62"><title><p>Akt promotes cell survival by phosphorylating and inhibiting a Forkhead transcription factor</p></title><aug><au><snm>Brunet</snm><fnm>A</fnm></au><au><snm>Bonni</snm><fnm>A</fnm></au><au><snm>Zigmond</snm><fnm>MJ</fnm></au><au><snm>Lin</snm><fnm>MZ</fnm></au><au><snm>Juo</snm><fnm>P</fnm></au><au><snm>Hu</snm><fnm>LS</fnm></au><au><snm>Anderson</snm><fnm>MJ</fnm></au><au><snm>Arden</snm><fnm>KC</fnm></au><au><snm>Blenis</snm><fnm>J</fnm></au><au><snm>Greenberg</snm><fnm>ME</fnm></au></aug><source>Cell</source><pubdate>1999</pubdate><volume>96</volume><fpage>857</fpage><lpage>868</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0092-8674(00)80595-4</pubid><pubid idtype="pmpid" link="fulltext">10102273</pubid></pubidlist></xrefbib></bibl><bibl id="B63"><title><p>Direct control of the Forkhead transcription factor AFX by protein kinase B</p></title><aug><au><snm>Kops</snm><fnm>GJ</fnm></au><au><snm>de Ruiter</snm><fnm>ND</fnm></au><au><snm>De Vries-Smits</snm><fnm>AM</fnm></au><au><snm>Powell</snm><fnm>DR</fnm></au><au><snm>Bos</snm><fnm>JL</fnm></au><au><snm>Burgering</snm><fnm>BM</fnm></au></aug><source>Nature</source><pubdate>1999</pubdate><volume>398</volume><fpage>630</fpage><lpage>634</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/19328</pubid><pubid idtype="pmpid" link="fulltext">10217147</pubid></pubidlist></xrefbib></bibl><bibl id="B64"><title><p>NF-kappaB is a target of AKT in anti-apoptotic PDGF signalling</p></title><aug><au><snm>Romashkova</snm><fnm>JA</fnm></au><au><snm>Makarov</snm><fnm>SS</fnm></au></aug><source>Nature</source><pubdate>1999</pubdate><volume>401</volume><fpage>86</fpage><lpage>90</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/43474</pubid><pubid idtype="pmpid" link="fulltext">10485711</pubid></pubidlist></xrefbib></bibl><bibl id="B65"><title><p>NF-kappaB activation by tumour necrosis factor requires the Akt serine-threonine kinase</p></title><aug><au><snm>Ozes</snm><fnm>ON</fnm></au><au><snm>Mayo</snm><fnm>LD</fnm></au><au><snm>Gustin</snm><fnm>JA</fnm></au><au><snm>Pfeffer</snm><fnm>SR</fnm></au><au><snm>Pfeffer</snm><fnm>LM</fnm></au><au><snm>Donner</snm><fnm>DB</fnm></au></aug><source>Nature</source><pubdate>1999</pubdate><volume>401</volume><fpage>82</fpage><lpage>85</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/43466</pubid><pubid idtype="pmpid" link="fulltext">10485710</pubid></pubidlist></xrefbib></bibl><bibl id="B66"><title><p>Pancreatic cancer cell proliferation is phosphatidylinositol 3-kinase dependent</p></title><aug><au><snm>Perugini</snm><fnm>RA</fnm></au><au><snm>McDade</snm><fnm>TP</fnm></au><au><snm>Vittimberga</snm><fnm>FJ</fnm><suf>Jr</suf></au><au><snm>Callery</snm><fnm>MP</fnm></au></aug><source>J Surg Res</source><pubdate>2000</pubdate><volume>90</volume><fpage>39</fpage><lpage>44</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1006/jsre.2000.5833</pubid><pubid idtype="pmpid" link="fulltext">10781373</pubid></pubidlist></xrefbib></bibl><bibl id="B67"><title><p>PI-3' kinase and NF-kappaB cross-signaling in human pancreatic cancer cells</p></title><aug><au><snm>Shah</snm><fnm>SA</fnm></au><au><snm>Potter</snm><fnm>MW</fnm></au><au><snm>Hedeshian</snm><fnm>MH</fnm></au><au><snm>Kim</snm><fnm>RD</fnm></au><au><snm>Chari</snm><fnm>RS</fnm></au><au><snm>Callery</snm><fnm>MP</fnm></au></aug><source>J Gastrointest Surg</source><pubdate>2001</pubdate><volume>5</volume><fpage>603</fpage><lpage>612</lpage><note>discussion 612-603</note><xrefbib><pubidlist><pubid idtype="doi">10.1016/S1091-255X(01)80102-5</pubid><pubid idtype="pmpid" link="fulltext">12086898</pubid></pubidlist></xrefbib></bibl><bibl id="B68"><title><p>Inhibition of the phosphatidylinositol 3'-kinase-AKT pathway induces apoptosis in pancreatic carcinoma cells in vitro and in vivo</p></title><aug><au><snm>Bondar</snm><fnm>VM</fnm></au><au><snm>Sweeney-Gotsch</snm><fnm>B</fnm></au><au><snm>Andreeff</snm><fnm>M</fnm></au><au><snm>Mills</snm><fnm>GB</fnm></au><au><snm>McConkey</snm><fnm>DJ</fnm></au></aug><source>Mol Cancer Ther</source><pubdate>2002</pubdate><volume>1</volume><fpage>989</fpage><lpage>997</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">12481421</pubid></xrefbib></bibl><bibl id="B69"><title><p>Amplification of AKT2 in human pancreatic cells and inhibition of AKT2 expression and tumorigenicity by antisense RNA</p></title><aug><au><snm>Cheng</snm><fnm>JQ</fnm></au><au><snm>Ruggeri</snm><fnm>B</fnm></au><au><snm>Klein</snm><fnm>WM</fnm></au><au><snm>Sonoda</snm><fnm>G</fnm></au><au><snm>Altomare</snm><fnm>DA</fnm></au><au><snm>Watson</snm><fnm>DK</fnm></au><au><snm>Testa</snm><fnm>JR</fnm></au></aug><source>Proc Natl Acad Sci USA</source><pubdate>1996</pubdate><volume>93</volume><fpage>3636</fpage><lpage>3641</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1073/pnas.93.8.3636</pubid><pubid idtype="pmcid">39663</pubid><pubid idtype="pmpid">8622988</pubid></pubidlist></xrefbib></bibl><bibl id="B70"><title><p>Amplification and overexpression of the AKT2 oncogene in a subset of human pancreatic ductal adenocarcinomas</p></title><aug><au><snm>Ruggeri</snm><fnm>BA</fnm></au><au><snm>Huang</snm><fnm>L</fnm></au><au><snm>Wood</snm><fnm>M</fnm></au><au><snm>Cheng</snm><fnm>JQ</fnm></au><au><snm>Testa</snm><fnm>JR</fnm></au></aug><source>Mol Carcinog</source><pubdate>1998</pubdate><volume>21</volume><fpage>81</fpage><lpage>86</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1002/(SICI)1098-2744(199802)21:2&lt;81::AID-MC1&gt;3.0.CO;2-R</pubid><pubid idtype="pmpid" link="fulltext">9496907</pubid></pubidlist></xrefbib></bibl><bibl id="B71"><title><p>Incidence, mechanism and prognostic value of activated AKT in pancreas cancer</p></title><aug><au><snm>Schlieman</snm><fnm>MG</fnm></au><au><snm>Fahy</snm><fnm>BN</fnm></au><au><snm>Ramsamooj</snm><fnm>R</fnm></au><au><snm>Beckett</snm><fnm>L</fnm></au><au><snm>Bold</snm><fnm>RJ</fnm></au></aug><source>Br J Cancer</source><pubdate>2003</pubdate><volume>89</volume><fpage>2110</fpage><lpage>2115</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/sj.bjc.6601396</pubid><pubid idtype="pmcid">2376856</pubid><pubid idtype="pmpid">14647146</pubid></pubidlist></xrefbib></bibl><bibl id="B72"><title><p>Fusion of a fork head domain gene to PAX3 in the solid tumour alveolar rhabdomyosarcoma</p></title><aug><au><snm>Galili</snm><fnm>N</fnm></au><au><snm>Davis</snm><fnm>RJ</fnm></au><au><snm>Fredericks</snm><fnm>WJ</fnm></au><au><snm>Mukhopadhyay</snm><fnm>S</fnm></au><au><snm>Rauscher</snm><fnm>FJ</fnm></au><au><snm>Emanuel</snm><fnm>BS</fnm></au><au><snm>Rovera</snm><fnm>G</fnm></au><au><snm>Barr</snm><fnm>FG</fnm></au></aug><source>Nat Genet</source><pubdate>1993</pubdate><volume>5</volume><fpage>230</fpage><lpage>235</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/ng1193-230</pubid><pubid idtype="pmpid" link="fulltext">8275086</pubid></pubidlist></xrefbib></bibl><bibl id="B73"><title><p>Cloning and characterization of three human forkhead genes that comprise an FKHR-like gene subfamily</p></title><aug><au><snm>Anderson</snm><fnm>MJ</fnm></au><au><snm>Viars</snm><fnm>CS</fnm></au><au><snm>Czekay</snm><fnm>S</fnm></au><au><snm>Cavenee</snm><fnm>WK</fnm></au><au><snm>Arden</snm><fnm>KC</fnm></au></aug><source>Genomics</source><pubdate>1998</pubdate><volume>47</volume><fpage>187</fpage><lpage>199</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1006/geno.1997.5122</pubid><pubid idtype="pmpid" link="fulltext">9479491</pubid></pubidlist></xrefbib></bibl><bibl id="B74"><title><p>AF6q21, a novel partner of the MLL gene in t(6;11)(q21;q23), defines a forkhead transcriptional factor subfamily</p></title><aug><au><snm>Hillion</snm><fnm>J</fnm></au><au><snm>Le Coniat</snm><fnm>M</fnm></au><au><snm>Jonveaux</snm><fnm>P</fnm></au><au><snm>Berger</snm><fnm>R</fnm></au><au><snm>Bernard</snm><fnm>OA</fnm></au></aug><source>Blood</source><pubdate>1997</pubdate><volume>90</volume><fpage>3714</fpage><lpage>3719</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">9345057</pubid></xrefbib></bibl><bibl id="B75"><title><p>Cloning and characterization of AFX, the gene that fuses to MLL in acute leukemias with a t(X;11)(q13;q23)</p></title><aug><au><snm>Borkhardt</snm><fnm>A</fnm></au><au><snm>Repp</snm><fnm>R</fnm></au><au><snm>Haas</snm><fnm>OA</fnm></au><au><snm>Leis</snm><fnm>T</fnm></au><au><snm>Harbott</snm><fnm>J</fnm></au><au><snm>Kreuder</snm><fnm>J</fnm></au><au><snm>Hammermann</snm><fnm>J</fnm></au><au><snm>Henn</snm><fnm>T</fnm></au><au><snm>Lampert</snm><fnm>F</fnm></au></aug><source>Oncogene</source><pubdate>1997</pubdate><volume>14</volume><fpage>195</fpage><lpage>202</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/sj.onc.1200814</pubid><pubid idtype="pmpid" link="fulltext">9010221</pubid></pubidlist></xrefbib></bibl><bibl id="B76"><title><p>The ins and outs of FoxO shuttling: mechanisms of FoxO translocation and transcriptional regulation</p></title><aug><au><snm>Van Der Heide</snm><fnm>LP</fnm></au><au><snm>Hoekman</snm><fnm>MF</fnm></au><au><snm>Smidt</snm><fnm>MP</fnm></au></aug><source>Biochem J</source><pubdate>2004</pubdate><volume>380</volume><fpage>297</fpage><lpage>309</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1042/BJ20040167</pubid><pubid idtype="pmcid">1224192</pubid><pubid idtype="pmpid">15005655</pubid></pubidlist></xrefbib></bibl><bibl id="B77"><title><p>Phosphorylation of serine 256 by protein kinase B disrupts transactivation by FKHR and mediates effects of insulin on insulin-like growth factor-binding protein-1 promoter activity through a conserved insulin response sequence</p></title><aug><au><snm>Guo</snm><fnm>S</fnm></au><au><snm>Rena</snm><fnm>G</fnm></au><au><snm>Cichy</snm><fnm>S</fnm></au><au><snm>He</snm><fnm>X</fnm></au><au><snm>Cohen</snm><fnm>P</fnm></au><au><snm>Unterman</snm><fnm>T</fnm></au></aug><source>J Biol Chem</source><pubdate>1999</pubdate><volume>274</volume><fpage>17184</fpage><lpage>17192</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1074/jbc.274.24.17184</pubid><pubid idtype="pmpid" link="fulltext">10358076</pubid></pubidlist></xrefbib></bibl><bibl id="B78"><title><p>AFX-like Forkhead transcription factors mediate cell-cycle regulation by Ras and PKB through p27kip1</p></title><aug><au><snm>Medema</snm><fnm>RH</fnm></au><au><snm>Kops</snm><fnm>GJ</fnm></au><au><snm>Bos</snm><fnm>JL</fnm></au><au><snm>Burgering</snm><fnm>BM</fnm></au></aug><source>Nature</source><pubdate>2000</pubdate><volume>404</volume><fpage>782</fpage><lpage>787</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/35008115</pubid><pubid idtype="pmpid" link="fulltext">10783894</pubid></pubidlist></xrefbib></bibl><bibl id="B79"><title><p>Forkhead transcription factors are critical effectors of cell death and cell cycle arrest downstream of PTEN</p></title><aug><au><snm>Nakamura</snm><fnm>N</fnm></au><au><snm>Ramaswamy</snm><fnm>S</fnm></au><au><snm>Vazquez</snm><fnm>F</fnm></au><au><snm>Signoretti</snm><fnm>S</fnm></au><au><snm>Loda</snm><fnm>M</fnm></au><au><snm>Sellers</snm><fnm>WR</fnm></au></aug><source>Mol Cell Biol</source><pubdate>2000</pubdate><volume>20</volume><fpage>8969</fpage><lpage>8982</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1128/MCB.20.23.8969-8982.2000</pubid><pubid idtype="pmcid">86551</pubid><pubid idtype="pmpid">11073996</pubid></pubidlist></xrefbib></bibl><bibl id="B80"><title><p>Forkhead transcription factor FKHR-L1 modulates cytokine-dependent transcriptional regulation of p27(KIP1)</p></title><aug><au><snm>Dijkers</snm><fnm>PF</fnm></au><au><snm>Medema</snm><fnm>RH</fnm></au><au><snm>Pals</snm><fnm>C</fnm></au><au><snm>Banerji</snm><fnm>L</fnm></au><au><snm>Thomas</snm><fnm>NS</fnm></au><au><snm>Lam</snm><fnm>EW</fnm></au><au><snm>Burgering</snm><fnm>BM</fnm></au><au><snm>Raaijmakers</snm><fnm>JA</fnm></au><au><snm>Lammers</snm><fnm>JW</fnm></au><au><snm>Koenderman</snm><fnm>L</fnm></au><au><snm>Coffer</snm><fnm>PJ</fnm></au></aug><source>Mol Cell Biol</source><pubdate>2000</pubdate><volume>20</volume><fpage>9138</fpage><lpage>9148</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1128/MCB.20.24.9138-9148.2000</pubid><pubid idtype="pmcid">102172</pubid><pubid idtype="pmpid">11094066</pubid></pubidlist></xrefbib></bibl><bibl id="B81"><title><p>FKHR-L1 can act as a critical effector of cell death induced by cytokine withdrawal: protein kinase B-enhanced cell survival through maintenance of mitochondrial integrity</p></title><aug><au><snm>Dijkers</snm><fnm>PF</fnm></au><au><snm>Birkenkamp</snm><fnm>KU</fnm></au><au><snm>Lam</snm><fnm>EW</fnm></au><au><snm>Thomas</snm><fnm>NS</fnm></au><au><snm>Lammers</snm><fnm>JW</fnm></au><au><snm>Koenderman</snm><fnm>L</fnm></au><au><snm>Coffer</snm><fnm>PJ</fnm></au></aug><source>J Cell Biol</source><pubdate>2002</pubdate><volume>156</volume><fpage>531</fpage><lpage>542</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1083/jcb.200108084</pubid><pubid idtype="pmcid">2173339</pubid><pubid idtype="pmpid">11815629</pubid></pubidlist></xrefbib></bibl><bibl id="B82"><title><p>The phosphoinositide 3-kinase/Akt pathway regulates cell cycle progression of HL60 human leukemia cells through cytoplasmic relocalization of the cyclin-dependent kinase inhibitor p27(Kip1) and control of cyclin D1 expression</p></title><aug><au><snm>Cappellini</snm><fnm>A</fnm></au><au><snm>Tabellini</snm><fnm>G</fnm></au><au><snm>Zweyer</snm><fnm>M</fnm></au><au><snm>Bortul</snm><fnm>R</fnm></au><au><snm>Tazzari</snm><fnm>PL</fnm></au><au><snm>Billi</snm><fnm>AM</fnm></au><au><snm>Fala</snm><fnm>F</fnm></au><au><snm>Cocco</snm><fnm>L</fnm></au><au><snm>Martelli</snm><fnm>AM</fnm></au></aug><source>Leukemia</source><pubdate>2003</pubdate><volume>17</volume><fpage>2157</fpage><lpage>2167</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/sj.leu.2403111</pubid><pubid idtype="pmpid" link="fulltext">12931221</pubid></pubidlist></xrefbib></bibl><bibl id="B83"><title><p>Cell cycle and death control: long live Forkheads</p></title><aug><au><snm>Burgering</snm><fnm>BM</fnm></au><au><snm>Kops</snm><fnm>GJ</fnm></au></aug><source>Trends Biochem Sci</source><pubdate>2002</pubdate><volume>27</volume><fpage>352</fpage><lpage>360</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0968-0004(02)02113-8</pubid><pubid idtype="pmpid" link="fulltext">12114024</pubid></pubidlist></xrefbib></bibl><bibl id="B84"><title><p>Expression of the pro-apoptotic Bcl-2 family member Bim is regulated by the forkhead transcription factor FKHR-L1</p></title><aug><au><snm>Dijkers</snm><fnm>PF</fnm></au><au><snm>Medema</snm><fnm>RH</fnm></au><au><snm>Lammers</snm><fnm>JW</fnm></au><au><snm>Koenderman</snm><fnm>L</fnm></au><au><snm>Coffer</snm><fnm>PJ</fnm></au></aug><source>Curr Biol</source><pubdate>2000</pubdate><volume>10</volume><fpage>1201</fpage><lpage>1204</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0960-9822(00)00728-4</pubid><pubid idtype="pmpid" link="fulltext">11050388</pubid></pubidlist></xrefbib></bibl><bibl id="B85"><title><p>FOXO transcription factors directly activate bim gene expression and promote apoptosis in sympathetic neurons</p></title><aug><au><snm>Gilley</snm><fnm>J</fnm></au><au><snm>Coffer</snm><fnm>PJ</fnm></au><au><snm>Ham</snm><fnm>J</fnm></au></aug><source>J Cell Biol</source><pubdate>2003</pubdate><volume>162</volume><fpage>613</fpage><lpage>622</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1083/jcb.200303026</pubid><pubid idtype="pmcid">2173804</pubid><pubid idtype="pmpid">12913110</pubid></pubidlist></xrefbib></bibl><bibl id="B86"><title><p>The forkhead transcription factor AFX activates apoptosis by induction of the BCL-6 transcriptional repressor</p></title><aug><au><snm>Tang</snm><fnm>TT</fnm></au><au><snm>Dowbenko</snm><fnm>D</fnm></au><au><snm>Jackson</snm><fnm>A</fnm></au><au><snm>Toney</snm><fnm>L</fnm></au><au><snm>Lewin</snm><fnm>DA</fnm></au><au><snm>Dent</snm><fnm>AL</fnm></au><au><snm>Lasky</snm><fnm>LA</fnm></au></aug><source>J Biol Chem</source><pubdate>2002</pubdate><volume>277</volume><fpage>14255</fpage><lpage>14265</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1074/jbc.M110901200</pubid><pubid idtype="pmpid" link="fulltext">11777915</pubid></pubidlist></xrefbib></bibl><bibl id="B87"><title><p>Proteins regulating Ras and its relatives</p></title><aug><au><snm>Boguski</snm><fnm>MS</fnm></au><au><snm>McCormick</snm><fnm>F</fnm></au></aug><source>Nature</source><pubdate>1993</pubdate><volume>366</volume><fpage>643</fpage><lpage>654</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/366643a0</pubid><pubid idtype="pmpid" link="fulltext">8259209</pubid></pubidlist></xrefbib></bibl><bibl id="B88"><title><p>Emerging concepts in the Ras superfamily of GTP-binding proteins</p></title><aug><au><snm>Bokoch</snm><fnm>GM</fnm></au><au><snm>Der</snm><fnm>CJ</fnm></au></aug><source>Faseb J</source><pubdate>1993</pubdate><volume>7</volume><fpage>750</fpage><lpage>759</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">8330683</pubid></xrefbib></bibl><bibl id="B89"><title><p>Intrinsic GTPase activity distinguishes normal and oncogenic ras p21 molecules</p></title><aug><au><snm>Gibbs</snm><fnm>JB</fnm></au><au><snm>Sigal</snm><fnm>IS</fnm></au><au><snm>Poe</snm><fnm>M</fnm></au><au><snm>Scolnick</snm><fnm>EM</fnm></au></aug><source>Proc Natl Acad Sci USA</source><pubdate>1984</pubdate><volume>81</volume><fpage>5704</fpage><lpage>5708</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1073/pnas.81.18.5704</pubid><pubid idtype="pmcid">391779</pubid><pubid idtype="pmpid">6148751</pubid></pubidlist></xrefbib></bibl><bibl id="B90"><title><p>Isolation of a transforming sequence from a human bladder carcinoma cell line</p></title><aug><au><snm>Shih</snm><fnm>C</fnm></au><au><snm>Weinberg</snm><fnm>RA</fnm></au></aug><source>Cell</source><pubdate>1982</pubdate><volume>29</volume><fpage>161</fpage><lpage>169</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/0092-8674(82)90100-3</pubid><pubid idtype="pmpid" link="fulltext">6286138</pubid></pubidlist></xrefbib></bibl><bibl id="B91"><title><p>Increasing complexity of Ras signaling</p></title><aug><au><snm>Campbell</snm><fnm>SL</fnm></au><au><snm>Khosravi-Far</snm><fnm>R</fnm></au><au><snm>Rossman</snm><fnm>KL</fnm></au><au><snm>Clark</snm><fnm>GJ</fnm></au><au><snm>Der</snm><fnm>CJ</fnm></au></aug><source>Oncogene</source><pubdate>1998</pubdate><volume>17</volume><fpage>1395</fpage><lpage>1413</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/sj.onc.1202174</pubid><pubid idtype="pmpid" link="fulltext">9779987</pubid></pubidlist></xrefbib></bibl><bibl id="B92"><title><p>Mitogen-activated protein kinases: specific messages from ubiquitous messengers</p></title><aug><au><snm>Schaeffer</snm><fnm>HJ</fnm></au><au><snm>Weber</snm><fnm>MJ</fnm></au></aug><source>Mol Cell Biol</source><pubdate>1999</pubdate><volume>19</volume><fpage>2435</fpage><lpage>2444</lpage><xrefbib><pubidlist><pubid idtype="pmcid">84036</pubid><pubid idtype="pmpid">10082509</pubid></pubidlist></xrefbib></bibl><bibl id="B93"><title><p>Emerging targets for anti-inflammatory therapy</p></title><aug><au><snm>Han</snm><fnm>J</fnm></au><au><snm>Ulevitch</snm><fnm>RJ</fnm></au></aug><source>Nat Cell Biol</source><pubdate>1999</pubdate><volume>1</volume><fpage>E39</fpage><lpage>40</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/10032</pubid><pubid idtype="pmpid" link="fulltext">10559893</pubid></pubidlist></xrefbib></bibl><bibl id="B94"><title><p>Signal transduction by the JNK group of MAP kinases</p></title><aug><au><snm>Davis</snm><fnm>RJ</fnm></au></aug><source>Cell</source><pubdate>2000</pubdate><volume>103</volume><fpage>239</fpage><lpage>252</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0092-8674(00)00116-1</pubid><pubid idtype="pmpid" link="fulltext">11057897</pubid></pubidlist></xrefbib></bibl><bibl id="B95"><title><p>Mammalian MAP kinase signalling cascades</p></title><aug><au><snm>Chang</snm><fnm>L</fnm></au><au><snm>Karin</snm><fnm>M</fnm></au></aug><source>Nature</source><pubdate>2001</pubdate><volume>410</volume><fpage>37</fpage><lpage>40</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/35065000</pubid><pubid idtype="pmpid" link="fulltext">11242034</pubid></pubidlist></xrefbib></bibl><bibl id="B96"><title><p>Mitogen-activated protein kinase pathways</p></title><aug><au><snm>Robinson</snm><fnm>MJ</fnm></au><au><snm>Cobb</snm><fnm>MH</fnm></au></aug><source>Curr Opin Cell Biol</source><pubdate>1997</pubdate><volume>9</volume><fpage>180</fpage><lpage>186</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0955-0674(97)80061-0</pubid><pubid idtype="pmpid" link="fulltext">9069255</pubid></pubidlist></xrefbib></bibl><bibl id="B97"><title><p>An essential role for mitogen-activated protein kinases, ERKs, in preventing heat-induced cell death</p></title><aug><au><snm>Woessmann</snm><fnm>W</fnm></au><au><snm>Meng</snm><fnm>YH</fnm></au><au><snm>Mivechi</snm><fnm>NF</fnm></au></aug><source>J Cell Biochem</source><pubdate>1999</pubdate><volume>74</volume><fpage>648</fpage><lpage>662</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1002/(SICI)1097-4644(19990915)74:4&lt;648::AID-JCB14&gt;3.0.CO;2-6</pubid><pubid idtype="pmpid" link="fulltext">10440934</pubid></pubidlist></xrefbib></bibl><bibl id="B98"><title><p>Sounding the alarm: protein kinase cascades activated by stress and inflammation</p></title><aug><au><snm>Kyriakis</snm><fnm>JM</fnm></au><au><snm>Avruch</snm><fnm>J</fnm></au></aug><source>J Biol Chem</source><pubdate>1996</pubdate><volume>271</volume><fpage>24313</fpage><lpage>24316</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1074/jbc.271.40.24313</pubid><pubid idtype="pmpid" link="fulltext">8798679</pubid></pubidlist></xrefbib></bibl><bibl id="B99"><title><p>The p38 signal transduction pathway: activation and function</p></title><aug><au><snm>Ono</snm><fnm>K</fnm></au><au><snm>Han</snm><fnm>J</fnm></au></aug><source>Cell Signal</source><pubdate>2000</pubdate><volume>12</volume><fpage>1</fpage><lpage>13</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0898-6568(99)00071-6</pubid><pubid idtype="pmpid" link="fulltext">10676842</pubid></pubidlist></xrefbib></bibl><bibl id="B100"><title><p>Independent effects of platelet-derived growth factor isoforms on mitogen-activated protein kinase activation and mitogenesis in human dermal fibroblasts</p></title><aug><au><snm>Lubinus</snm><fnm>M</fnm></au><au><snm>Meier</snm><fnm>KE</fnm></au><au><snm>Smith</snm><fnm>EA</fnm></au><au><snm>Gause</snm><fnm>KC</fnm></au><au><snm>LeRoy</snm><fnm>EC</fnm></au><au><snm>Trojanowska</snm><fnm>M</fnm></au></aug><source>J Biol Chem</source><pubdate>1994</pubdate><volume>269</volume><fpage>9822</fpage><lpage>9825</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">7511594</pubid></xrefbib></bibl><bibl id="B101"><title><p>Inhibition of PI3K/AKT and MEK/ERK pathways act synergistically to enhance antiangiogenic effects of EGCG through activation of FOXO transcription factor</p></title><aug><au><snm>Shankar</snm><fnm>S</fnm></au><au><snm>Chen</snm><fnm>Q</fnm></au><au><snm>Srivastava</snm><fnm>RK</fnm></au></aug><source>J Mol Signal</source><pubdate>2008</pubdate><volume>3</volume><fpage>7</fpage><xrefbib><pubidlist><pubid idtype="doi">10.1186/1750-2187-3-7</pubid><pubid idtype="pmcid">2278143</pubid><pubid idtype="pmpid">18355401</pubid></pubidlist></xrefbib></bibl><bibl id="B102"><title><p>Pancreatic cancer biology and genetics</p></title><aug><au><snm>Bardeesy</snm><fnm>N</fnm></au><au><snm>DePinho</snm><fnm>RA</fnm></au></aug><source>Nat Rev Cancer</source><pubdate>2002</pubdate><volume>2</volume><fpage>897</fpage><lpage>909</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/nrc949</pubid><pubid idtype="pmpid" link="fulltext">12459728</pubid></pubidlist></xrefbib></bibl><bibl id="B103"><title><p>Pancreatic cancer</p></title><aug><au><snm>Li</snm><fnm>D</fnm></au><au><snm>Xie</snm><fnm>K</fnm></au><au><snm>Wolff</snm><fnm>R</fnm></au><au><snm>Abbruzzese</snm><fnm>JL</fnm></au></aug><source>Lancet</source><pubdate>2004</pubdate><volume>363</volume><fpage>1049</fpage><lpage>1057</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0140-6736(04)15841-8</pubid><pubid idtype="pmpid" link="fulltext">15051286</pubid></pubidlist></xrefbib></bibl><bibl id="B104"><title><p>Intracellular mechanisms of TRAIL and its role in cancer therapy</p></title><aug><au><snm>Srivastava</snm><fnm>RK</fnm></au></aug><source>Mol Cell Biol Res Commun</source><pubdate>2000</pubdate><volume>4</volume><fpage>67</fpage><lpage>75</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1006/mcbr.2001.0265</pubid><pubid idtype="pmpid" link="fulltext">11170835</pubid></pubidlist></xrefbib></bibl><bibl id="B105"><title><p>Cellular survival: a play in three Akts</p></title><aug><au><snm>Datta</snm><fnm>SR</fnm></au><au><snm>Brunet</snm><fnm>A</fnm></au><au><snm>Greenberg</snm><fnm>ME</fnm></au></aug><source>Genes Dev</source><pubdate>1999</pubdate><volume>13</volume><fpage>2905</fpage><lpage>2927</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1101/gad.13.22.2905</pubid><pubid idtype="pmpid" link="fulltext">10579998</pubid></pubidlist></xrefbib></bibl><bibl id="B106"><title><p>JNK and p38 stresskinases--degenerative effectors of signal-transduction-cascades in the nervous system</p></title><aug><au><snm>Mielke</snm><fnm>K</fnm></au><au><snm>Herdegen</snm><fnm>T</fnm></au></aug><source>Prog Neurobiol</source><pubdate>2000</pubdate><volume>61</volume><fpage>45</fpage><lpage>60</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0301-0082(99)00042-8</pubid><pubid idtype="pmpid" link="fulltext">10759064</pubid></pubidlist></xrefbib></bibl><bibl id="B107"><title><p>Serine/threonine phosphorylation in cytokine signal transduction</p></title><aug><au><snm>McCubrey</snm><fnm>JA</fnm></au><au><snm>May</snm><fnm>WS</fnm></au><au><snm>Duronio</snm><fnm>V</fnm></au><au><snm>Mufson</snm><fnm>A</fnm></au></aug><source>Leukemia</source><pubdate>2000</pubdate><volume>14</volume><fpage>9</fpage><lpage>21</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/sj.leu.2401657</pubid><pubid idtype="pmpid">10637471</pubid></pubidlist></xrefbib></bibl><bibl id="B108"><title><p>Dual specificity phosphatases: a gene family for control of MAP kinase function</p></title><aug><au><snm>Camps</snm><fnm>M</fnm></au><au><snm>Nichols</snm><fnm>A</fnm></au><au><snm>Arkinstall</snm><fnm>S</fnm></au></aug><source>Faseb J</source><pubdate>2000</pubdate><volume>14</volume><fpage>6</fpage><lpage>16</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">10627275</pubid></xrefbib></bibl><bibl id="B109"><title><p>Structure and regulation of MAPK phosphatases</p></title><aug><au><snm>Farooq</snm><fnm>A</fnm></au><au><snm>Zhou</snm><fnm>MM</fnm></au></aug><source>Cell Signal</source><pubdate>2004</pubdate><volume>16</volume><fpage>769</fpage><lpage>779</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/j.cellsig.2003.12.008</pubid><pubid idtype="pmpid" link="fulltext">15115656</pubid></pubidlist></xrefbib></bibl><bibl id="B110"><title><p>Dietary agent, benzyl isothiocyanate inhibits signal transducer and activator of transcription 3 phosphorylation and collaborates with sulforaphane in the growth suppression of PANC-1 cancer cells</p></title><aug><au><snm>Hutzen</snm><fnm>B</fnm></au><au><snm>Willis</snm><fnm>W</fnm></au><au><snm>Jones</snm><fnm>S</fnm></au><au><snm>Cen</snm><fnm>L</fnm></au><au><snm>Deangelis</snm><fnm>S</fnm></au><au><snm>Fuh</snm><fnm>B</fnm></au><au><snm>Lin</snm><fnm>J</fnm></au></aug><source>Cancer Cell Int</source><pubdate>2009</pubdate><volume>9</volume><fpage>24</fpage><xrefbib><pubidlist><pubid idtype="doi">10.1186/1475-2867-9-24</pubid><pubid idtype="pmpid" link="fulltext">19712481</pubid></pubidlist></xrefbib></bibl><bibl id="B111"><title><p>Sulforaphane targets pancreatic tumor-initiating cells by NF-{kappa}B-induced anti-apoptotic signaling</p></title><aug><au><snm>Kallifatidis</snm><fnm>G</fnm></au><au><snm>Rausch</snm><fnm>V</fnm></au><au><snm>Baumann</snm><fnm>B</fnm></au><au><snm>Apel</snm><fnm>A</fnm></au><au><snm>Beckermann</snm><fnm>BM</fnm></au><au><snm>Groth</snm><fnm>A</fnm></au><au><snm>Mattern</snm><fnm>J</fnm></au><au><snm>Li</snm><fnm>Z</fnm></au><au><snm>Kolb</snm><fnm>A</fnm></au><au><snm>Moldenhauer</snm><fnm>G</fnm></au><etal/></aug><source>Gut</source><pubdate>2009</pubdate><volume>58</volume><fpage>949</fpage><lpage>63</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1136/gut.2008.149039</pubid><pubid idtype="pmpid" link="fulltext">18829980</pubid></pubidlist></xrefbib></bibl><bibl id="B112"><title><p>The dietary isothiocyanate sulforaphane targets pathways of apoptosis, cell cycle arrest, and oxidative stress in human pancreatic cancer cells and inhibits tumor growth in severe combined immunodeficient mice</p></title><aug><au><snm>Pham</snm><fnm>NA</fnm></au><au><snm>Jacobberger</snm><fnm>JW</fnm></au><au><snm>Schimmer</snm><fnm>AD</fnm></au><au><snm>Cao</snm><fnm>P</fnm></au><au><snm>Gronda</snm><fnm>M</fnm></au><au><snm>Hedley</snm><fnm>DW</fnm></au></aug><source>Mol Cancer Ther</source><pubdate>2004</pubdate><volume>3</volume><fpage>1239</fpage><lpage>1248</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">15486191</pubid></xrefbib></bibl><bibl id="B113"><title><p>The forkhead transcription factor Foxo1 links insulin signaling to Pdx1 regulation of pancreatic beta cell growth</p></title><aug><au><snm>Kitamura</snm><fnm>T</fnm></au><au><snm>Nakae</snm><fnm>J</fnm></au><au><snm>Kitamura</snm><fnm>Y</fnm></au><au><snm>Kido</snm><fnm>Y</fnm></au><au><snm>Biggs</snm><fnm>WH</fnm></au><au><snm>Wright</snm><fnm>CV</fnm></au><au><snm>White</snm><fnm>MF</fnm></au><au><snm>Arden</snm><fnm>KC</fnm></au><au><snm>Accili</snm><fnm>D</fnm></au></aug><source>J Clin Invest</source><pubdate>2002</pubdate><volume>110</volume><fpage>1839</fpage><lpage>1847</lpage><xrefbib><pubidlist><pubid idtype="pmcid">151657</pubid><pubid idtype="pmpid">12488434</pubid></pubidlist></xrefbib></bibl><bibl id="B114"><title><p>Suppression of ovarian follicle activation in mice by the transcription factor Foxo3a</p></title><aug><au><snm>Castrillon</snm><fnm>DH</fnm></au><au><snm>Miao</snm><fnm>L</fnm></au><au><snm>Kollipara</snm><fnm>R</fnm></au><au><snm>Horner</snm><fnm>JW</fnm></au><au><snm>DePinho</snm><fnm>RA</fnm></au></aug><source>Science</source><pubdate>2003</pubdate><volume>301</volume><fpage>215</fpage><lpage>218</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1126/science.1086336</pubid><pubid idtype="pmpid" link="fulltext">12855809</pubid></pubidlist></xrefbib></bibl><bibl id="B115"><title><p>Regulation of insulin action and pancreatic beta-cell function by mutated alleles of the gene encoding forkhead transcription factor Foxo1</p></title><aug><au><snm>Nakae</snm><fnm>J</fnm></au><au><snm>Biggs</snm><fnm>WH</fnm></au><au><snm>Kitamura</snm><fnm>T</fnm></au><au><snm>Cavenee</snm><fnm>WK</fnm></au><au><snm>Wright</snm><fnm>CV</fnm></au><au><snm>Arden</snm><fnm>KC</fnm></au><au><snm>Accili</snm><fnm>D</fnm></au></aug><source>Nat Genet</source><pubdate>2002</pubdate><volume>32</volume><fpage>245</fpage><lpage>253</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/ng890</pubid><pubid idtype="pmpid" link="fulltext">12219087</pubid></pubidlist></xrefbib></bibl><bibl id="B116"><title><p>Molecular pathogenesis of rhabdomyosarcoma</p></title><aug><au><snm>Xia</snm><fnm>SJ</fnm></au><au><snm>Pressey</snm><fnm>JG</fnm></au><au><snm>Barr</snm><fnm>FG</fnm></au></aug><source>Cancer Biol Ther</source><pubdate>2002</pubdate><volume>1</volume><fpage>97</fpage><lpage>104</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">12170781</pubid></xrefbib></bibl><bibl id="B117"><title><p>IkappaB kinase promotes tumorigenesis through inhibition of forkhead FOXO3a</p></title><aug><au><snm>Hu</snm><fnm>MC</fnm></au><au><snm>Lee</snm><fnm>DF</fnm></au><au><snm>Xia</snm><fnm>W</fnm></au><au><snm>Golfman</snm><fnm>LS</fnm></au><au><snm>Ou-Yang</snm><fnm>F</fnm></au><au><snm>Yang</snm><fnm>JY</fnm></au><au><snm>Zou</snm><fnm>Y</fnm></au><au><snm>Bao</snm><fnm>S</fnm></au><au><snm>Hanada</snm><fnm>N</fnm></au><au><snm>Saso</snm><fnm>H</fnm></au><etal/></aug><source>Cell</source><pubdate>2004</pubdate><volume>117</volume><fpage>225</fpage><lpage>237</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/S0092-8674(04)00302-2</pubid><pubid idtype="pmpid" link="fulltext">15084260</pubid></pubidlist></xrefbib></bibl><bibl id="B118"><title><p>Abnormal angiogenesis in Foxo1 (Fkhr)-deficient mice</p></title><aug><au><snm>Furuyama</snm><fnm>T</fnm></au><au><snm>Kitayama</snm><fnm>K</fnm></au><au><snm>Shimoda</snm><fnm>Y</fnm></au><au><snm>Ogawa</snm><fnm>M</fnm></au><au><snm>Sone</snm><fnm>K</fnm></au><au><snm>Yoshida-Araki</snm><fnm>K</fnm></au><au><snm>Hisatsune</snm><fnm>H</fnm></au><au><snm>Nishikawa</snm><fnm>S</fnm></au><au><snm>Nakayama</snm><fnm>K</fnm></au><au><snm>Nakayama</snm><fnm>K</fnm></au><etal/></aug><source>J Biol Chem</source><pubdate>2004</pubdate><volume>279</volume><fpage>34741</fpage><lpage>34749</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1074/jbc.M314214200</pubid><pubid idtype="pmpid" link="fulltext">15184386</pubid></pubidlist></xrefbib></bibl><bibl id="B119"><title><p>Foxs and Ets in the transcriptional regulation of endothelial cell differentiation and angiogenesis</p></title><aug><au><snm>Dejana</snm><fnm>E</fnm></au><au><snm>Taddei</snm><fnm>A</fnm></au><au><snm>Randi</snm><fnm>AM</fnm></au></aug><source>Biochim Biophys Acta</source><pubdate>2007</pubdate><volume>1775</volume><fpage>298</fpage><lpage>312</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">17572301</pubid></xrefbib></bibl><bibl id="B120"><title><p>Regulation of Foxo-1 and the angiopoietin-2/Tie2 system by shear stress</p></title><aug><au><snm>Chlench</snm><fnm>S</fnm></au><au><snm>Mecha Disassa</snm><fnm>N</fnm></au><au><snm>Hohberg</snm><fnm>M</fnm></au><au><snm>Hoffmann</snm><fnm>C</fnm></au><au><snm>Pohlkamp</snm><fnm>T</fnm></au><au><snm>Beyer</snm><fnm>G</fnm></au><au><snm>Bongrazio</snm><fnm>M</fnm></au><au><snm>Da Silva-Azevedo</snm><fnm>L</fnm></au><au><snm>Baum</snm><fnm>O</fnm></au><au><snm>Pries</snm><fnm>AR</fnm></au><au><snm>Zakrzewicz</snm><fnm>A</fnm></au></aug><source>FEBS Lett</source><pubdate>2007</pubdate><volume>581</volume><fpage>673</fpage><lpage>680</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/j.febslet.2007.01.028</pubid><pubid idtype="pmpid" link="fulltext">17258205</pubid></pubidlist></xrefbib></bibl><bibl id="B121"><title><p>Involvement of Foxo transcription factors in angiogenesis and postnatal neovascularization</p></title><aug><au><snm>Potente</snm><fnm>M</fnm></au><au><snm>Urbich</snm><fnm>C</fnm></au><au><snm>Sasaki</snm><fnm>K</fnm></au><au><snm>Hofmann</snm><fnm>WK</fnm></au><au><snm>Heeschen</snm><fnm>C</fnm></au><au><snm>Aicher</snm><fnm>A</fnm></au><au><snm>Kollipara</snm><fnm>R</fnm></au><au><snm>DePinho</snm><fnm>RA</fnm></au><au><snm>Zeiher</snm><fnm>AM</fnm></au><au><snm>Dimmeler</snm><fnm>S</fnm></au></aug><source>J Clin Invest</source><pubdate>2005</pubdate><volume>115</volume><fpage>2382</fpage><lpage>2392</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1172/JCI23126</pubid><pubid idtype="pmcid">1184037</pubid><pubid idtype="pmpid">16100571</pubid></pubidlist></xrefbib></bibl><bibl id="B122"><title><p>Oridonin induced apoptosis through Akt and MAPKs signaling pathways in human osteosarcoma cells</p></title><aug><au><snm>Jin</snm><fnm>S</fnm></au><au><snm>Shen</snm><fnm>JN</fnm></au><au><snm>Wang</snm><fnm>J</fnm></au><au><snm>Huang</snm><fnm>G</fnm></au><au><snm>Zhou</snm><fnm>JG</fnm></au></aug><source>Cancer Biol Ther</source><pubdate>2007</pubdate><volume>6</volume><fpage>261</fpage><lpage>268</lpage><xrefbib><pubidlist><pubid idtype="doi">10.4161/cbt.6.2.3621</pubid><pubid idtype="pmpid" link="fulltext">17218775</pubid></pubidlist></xrefbib></bibl><bibl id="B123"><title><p>Insulin-like growth factor-I induces the phosphorylation and nuclear exclusion of forkhead transcription factors in human neuroblastoma cells</p></title><aug><au><snm>Schwab</snm><fnm>TS</fnm></au><au><snm>Madison</snm><fnm>BB</fnm></au><au><snm>Grauman</snm><fnm>AR</fnm></au><au><snm>Feldman</snm><fnm>EL</fnm></au></aug><source>Apoptosis</source><pubdate>2005</pubdate><volume>10</volume><fpage>831</fpage><lpage>840</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1007/s10495-005-0429-y</pubid><pubid idtype="pmpid" link="fulltext">16133873</pubid></pubidlist></xrefbib></bibl><bibl id="B124"><title><p>FOXO transcription factors and VEGF neutralizing antibody enhance antiangiogenic effects of resveratrol</p></title><aug><au><snm>Srivastava</snm><fnm>RK</fnm></au><au><snm>Unterman</snm><fnm>TG</fnm></au><au><snm>Shankar</snm><fnm>S</fnm></au></aug><source>Mol Cell Biochem</source><pubdate>2010</pubdate><volume>337</volume><fpage>201</fpage><lpage>212</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1007/s11010-009-0300-5</pubid><pubid idtype="pmpid" link="fulltext">20012470</pubid></pubidlist></xrefbib></bibl><bibl id="B125"><title><p>Oxidative stress and pancreatic beta-cell dysfunction</p></title><aug><au><snm>Kaneto</snm><fnm>H</fnm></au><au><snm>Kawamori</snm><fnm>D</fnm></au><au><snm>Matsuoka</snm><fnm>TA</fnm></au><au><snm>Kajimoto</snm><fnm>Y</fnm></au><au><snm>Yamasaki</snm><fnm>Y</fnm></au></aug><source>Am J Ther</source><pubdate>2005</pubdate><volume>12</volume><fpage>529</fpage><lpage>533</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1097/01.mjt.0000178773.31525.c2</pubid><pubid idtype="pmpid" link="fulltext">16280646</pubid></pubidlist></xrefbib></bibl><bibl id="B126"><title><p>Oxidative stress and the JNK pathway as a potential therapeutic target for diabetes</p></title><aug><au><snm>Kaneto</snm><fnm>H</fnm></au><au><snm>Kawamori</snm><fnm>D</fnm></au><au><snm>Nakatani</snm><fnm>Y</fnm></au><au><snm>Gorogawa</snm><fnm>S</fnm></au><au><snm>Matsuoka</snm><fnm>TA</fnm></au></aug><source>Drug News Perspect</source><pubdate>2004</pubdate><volume>17</volume><fpage>447</fpage><lpage>453</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1358/dnp.2004.17.7.863704</pubid><pubid idtype="pmpid" link="fulltext">15514704</pubid></pubidlist></xrefbib></bibl><bibl id="B127"><title><p>The forkhead transcription factor Foxo1 bridges the JNK pathway and the transcription factor PDX-1 through its intracellular translocation</p></title><aug><au><snm>Kawamori</snm><fnm>D</fnm></au><au><snm>Kaneto</snm><fnm>H</fnm></au><au><snm>Nakatani</snm><fnm>Y</fnm></au><au><snm>Matsuoka</snm><fnm>TA</fnm></au><au><snm>Matsuhisa</snm><fnm>M</fnm></au><au><snm>Hori</snm><fnm>M</fnm></au><au><snm>Yamasaki</snm><fnm>Y</fnm></au></aug><source>J Biol Chem</source><pubdate>2006</pubdate><volume>281</volume><fpage>1091</fpage><lpage>1098</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1074/jbc.M508510200</pubid><pubid idtype="pmpid" link="fulltext">16282329</pubid></pubidlist></xrefbib></bibl><bibl id="B128"><title><p>The forkhead transcription factor FoxO regulates transcription of p27Kip1 and Bim in response to IL-2</p></title><aug><au><snm>Stahl</snm><fnm>M</fnm></au><au><snm>Dijkers</snm><fnm>PF</fnm></au><au><snm>Kops</snm><fnm>GJ</fnm></au><au><snm>Lens</snm><fnm>SM</fnm></au><au><snm>Coffer</snm><fnm>PJ</fnm></au><au><snm>Burgering</snm><fnm>BM</fnm></au><au><snm>Medema</snm><fnm>RH</fnm></au></aug><source>J Immunol</source><pubdate>2002</pubdate><volume>168</volume><fpage>5024</fpage><lpage>5031</lpage><xrefbib><pubid idtype="pmpid" link="fulltext">11994454</pubid></xrefbib></bibl><bibl id="B129"><title><p>Role of phosphatidylinositol 3'-kinase/AKT pathway in diffuse large B-cell lymphoma survival</p></title><aug><au><snm>Uddin</snm><fnm>S</fnm></au><au><snm>Hussain</snm><fnm>AR</fnm></au><au><snm>Siraj</snm><fnm>AK</fnm></au><au><snm>Manogaran</snm><fnm>PS</fnm></au><au><snm>Al-Jomah</snm><fnm>NA</fnm></au><au><snm>Moorji</snm><fnm>A</fnm></au><au><snm>Atizado</snm><fnm>V</fnm></au><au><snm>Al-Dayel</snm><fnm>F</fnm></au><au><snm>Belgaumi</snm><fnm>A</fnm></au><au><snm>El-Solh</snm><fnm>H</fnm></au><etal/></aug><source>Blood</source><pubdate>2006</pubdate><volume>108</volume><fpage>4178</fpage><lpage>4186</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1182/blood-2006-04-016907</pubid><pubid idtype="pmpid" link="fulltext">16946303</pubid></pubidlist></xrefbib></bibl><bibl id="B130"><title><p>FOXO transcription factors in the regulatory networks of longevity</p></title><aug><au><snm>Daitoku</snm><fnm>H</fnm></au><au><snm>Fukamizu</snm><fnm>A</fnm></au></aug><source>J Biochem</source><pubdate>2007</pubdate><volume>141</volume><fpage>769</fpage><lpage>774</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1093/jb/mvm104</pubid><pubid idtype="pmpid" link="fulltext">17569704</pubid></pubidlist></xrefbib></bibl><bibl id="B131"><title><p>Regulation of FoxO activity by CBP/p300-mediated acetylation</p></title><aug><au><snm>van der Heide</snm><fnm>LP</fnm></au><au><snm>Smidt</snm><fnm>MP</fnm></au></aug><source>Trends Biochem Sci</source><pubdate>2005</pubdate><volume>30</volume><fpage>81</fpage><lpage>86</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1016/j.tibs.2004.12.002</pubid><pubid idtype="pmpid" link="fulltext">15691653</pubid></pubidlist></xrefbib></bibl><bibl id="B132"><title><p>Stress-dependent regulation of FOXO transcription factors by the SIRT1 deacetylase</p></title><aug><au><snm>Brunet</snm><fnm>A</fnm></au><au><snm>Sweeney</snm><fnm>LB</fnm></au><au><snm>Sturgill</snm><fnm>JF</fnm></au><au><snm>Chua</snm><fnm>KF</fnm></au><au><snm>Greer</snm><fnm>PL</fnm></au><au><snm>Lin</snm><fnm>Y</fnm></au><au><snm>Tran</snm><fnm>H</fnm></au><au><snm>Ross</snm><fnm>SE</fnm></au><au><snm>Mostoslavsky</snm><fnm>R</fnm></au><au><snm>Cohen</snm><fnm>HY</fnm></au><etal/></aug><source>Science</source><pubdate>2004</pubdate><volume>303</volume><fpage>2011</fpage><lpage>2015</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1126/science.1094637</pubid><pubid idtype="pmpid" link="fulltext">14976264</pubid></pubidlist></xrefbib></bibl><bibl id="B133"><title><p>Transcriptional silencing and longevity protein Sir2 is an NAD-dependent histone deacetylase</p></title><aug><au><snm>Imai</snm><fnm>S</fnm></au><au><snm>Armstrong</snm><fnm>CM</fnm></au><au><snm>Kaeberlein</snm><fnm>M</fnm></au><au><snm>Guarente</snm><fnm>L</fnm></au></aug><source>Nature</source><pubdate>2000</pubdate><volume>403</volume><fpage>795</fpage><lpage>800</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1038/35001622</pubid><pubid idtype="pmpid" link="fulltext">10693811</pubid></pubidlist></xrefbib></bibl><bibl id="B134"><title><p>EGCG inhibits growth, invasion, angiogenesis and metastasis of pancreatic cancer</p></title><aug><au><snm>Shankar</snm><fnm>S</fnm></au><au><snm>Ganapathy</snm><fnm>S</fnm></au><au><snm>Hingorani</snm><fnm>SR</fnm></au><au><snm>Srivastava</snm><fnm>RK</fnm></au></aug><source>Front Biosci</source><pubdate>2008</pubdate><volume>13</volume><fpage>440</fpage><lpage>452</lpage><xrefbib><pubidlist><pubid idtype="doi">10.2741/2691</pubid><pubid idtype="pmpid" link="fulltext">17981559</pubid></pubidlist></xrefbib></bibl><bibl id="B135"><title><p>Molecular mechanisms of resveratrol (3,4,5-trihydroxy-trans-stilbene) and its interaction with TNF-related apoptosis inducing ligand (TRAIL) in androgen-insensitive prostate cancer cells</p></title><aug><au><snm>Shankar</snm><fnm>S</fnm></au><au><snm>Siddiqui</snm><fnm>I</fnm></au><au><snm>Srivastava</snm><fnm>RK</fnm></au></aug><source>Mol Cell Biochem</source><pubdate>2007</pubdate><volume>304</volume><fpage>273</fpage><lpage>285</lpage><xrefbib><pubidlist><pubid idtype="doi">10.1007/s11010-007-9510-x</pubid><pubid idtype="pmpid" link="fulltext">17636462</pubid></pubidlist></xrefbib></bibl></refgrp>
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