BACKGROUND:Individuals with cystic fibrosis (CF; a recessive disorder) have an increased risk of colorectal cancer (CRC). Evidence suggests individuals with a single CFTR variant may also have increased CRC risk. METHODS:Using population-based studies (GECCO, CORECT, CCFR, and ARIC; 53 785 CRC cases and 58 010 controls), we tested for an association between the most common CFTR variant (Phe508del) and CRC risk. For replication, we used whole exome sequencing data from UK Biobank (UKB; 5126 cases and 20 504 controls matched 4:1 based on genetic distance, age, and sex), and extended our analyses to all other heterozygous CFTR variants annotated as CF-causing. RESULTS:In our meta-analysis of GECCO-CORECT-CCFR-ARIC, the odds ratio (OR) for CRC risk associated with Phe508del was 1.11 (P = 0.010). In our UKB replication, the OR for CRC risk associated with Phe508del was 1.28 (P = 0.002). The sequencing data from UKB also revealed an association between the presence of any other single CF-causing variant (excluding Phe508del) and CRC risk (OR = 1.33; P = 0.030). When stratifying CFTR variants by functional class, class I variants (no protein produced) had a stronger association (OR = 1.77; p = 0.002), while class II variants (misfolding and retention of the protein in the endoplasmic reticulum) other than Phe508del (OR = 1.75; p = 0.107) had similar effect size as Phe508del, and variants in classes III-VI had non-significant ORs less than 1.0 and/or were not present in cases. CONCLUSIONS:CF-causing heterozygous variants, especially class I variants, are associated with a modest but statistically significant increased CRC risk. More research is needed to explain the biology underlying these associations.
Individuals with cystic fibrosis (CF), caused by biallelic germline mutations in the cystic fibrosis transmembrane conductance regulator (CFTR), have higher risk and earlier onset of colorectal cancer (CRC). A subset of CRC patients in the non-CF population expresses low levels of tumoral CFTR mRNA which may also cause decreased CFTR activity. To determine the consequences of reduced CFTR expression in this population, we investigated association of tumoral CFTR expression with overall and disease-specific mortality in CRC patients. CFTR mRNA expression, clinical factors and survival data from 1177 CRC patients reported in the Cancer Genome Atlas (TCGA) and Gene Expression Omnibus studies GSE39582 and GSE17538 were included. Log-transformed and z-normalized [mean = 0, standard deviation (SD) = 1] CFTR expression values were modeled as quartiles or dichotomized at the median. Univariate and multivariable Cox proportional hazards regression models were used to estimate hazard ratios (HR) and 95% confidence intervals (CI) for overall and disease-specific mortality in individual studies and meta-analyses. Analyses of each of the three individual datasets showed a robust association of decreased CFTR expression with increased mortality. In meta-analyses adjusted for stage at diagnosis, age and sex, CFTR expression was inversely associated with risk of overall death [pooled HR (95% CI): 0.70 (0.57–0.86)] and disease-specific death [pooled HR (95% CI): 0.68 (0.47–0.99)]. Associations did not differ by stage at diagnosis, age, or sex. Meta-analysis of overall death stratified by microsatellite instable (MSI) versus microsatellite stable (MSS) status indicated potential interaction between MSI/MSS status and CFTR expression, (p-interaction: 0.06). The findings from these three datasets support the hypothesis that low CFTR expression is associated with increased CRC mortality.
Background and purpose: The cystic fibrosis transmembrane conductance regulator (CFTR) gene is a tumor suppressor in colorectal cancer (CRC). People with cystic fibrosis, caused by biallelic germline mutations in CFTR, have a higher risk developing CRC. We also found that loss of CFTR is implicated in sporadic CRC. In a study of 90 persons diagnosed with stage II CRC, the 23% of patients with lowest CFTR expression had 30% lower disease-free survival at 3 years. The cause of decreased CFTR expression in this group is not known. We analyzed the TCGA COADREAD study to identify associations between low expression of CFTR and cancer-causing genetic alterations. Of these alterations, only BRAF-V600E mutation correlated with low expression of CFTR. The BRAF-V600E mutation is found in ~10% of CRC and is associated with global promoter hypermethylation leading to down regulation of tumor suppressor genes. Accordingly, our hypothesis was that BRAF-V600E mutation contributes to low expression of CFTR via CFTR promoter DNA methylation. Methods: In the TCGA COADREAD database 283 primary colorectal cancers diagnosed at stages II, III and IV had full information needed for this study: CFTR mRNA expression, somatic mutation, overall survival (OS), and DNA methylation status. OS was visualized using Kaplan-Meier analysis. Association between CFTR expression and methylation was determined by Pearson correlation coefficient (PCC) analysis. Associations between mutations and CFTR expression or methylation were determined by Point Biserial correlation coefficient (PBS) analysis. Results: Kaplan-Meier analysis of the 283 cases showed that overall survival was worse in the 25% of cases with lowest CFTR expression (p=0.035). The BRAF-V600E mutation was significantly associated with lower CFTR expression (PBS r=-0.38, p<0.0001) and 81% of BRAF V600E mutations were found in the 25% of cases with lowest CFTR expression. In contrast mutations in APC and KRAS showed a positive association with CFTR expression (PBS r=0.25, p<0.0001; PBS r=0.13, p=0.028 respectively). The CFTR promoter is hypermethylated in several cancers and BRAF-V600E mutation is associated with aberrant promoter DNA methylation. We examined DNA methylation at 9 CpG sites in the CFTR promoter and found that low CFTR expression significantly associated with increased DNA methylation at these 9 sites (PCC for average of 9 sites r= -0.56, p=<0.001). The association between BRAF-V600E mutation and CFTR methylation was modest but significant (PBS r=0.16, p=0.0063). Conclusions: BRAF-V600E mutation was significantly associated with CRC cases expressing low levels of CFTR, a subset with poor overall survival, as was CFTR promoter methylation. BRAF-V600E showed a modest association with CFTR promoter methylation and so may play a role in down-regulation of CFTR expression. However, association of BRAF-V600E with CFTR promoter methylation was modest compared to its association with CFTR expression suggesting that BRAF-V600E mutation may play additional roles in CRC tumors expressing low levels of CFTR. Citation Format: Patricia Scott, Anna Prizment, Rahul Bhattacharya, Zachary Blankenheim, Nathan Pankratz, Timothy Starr, Robert Cormier. The oncogenic mutation BRAF-V600E is associated with colorectal cancers expressing low levels of CFTR mRNA [abstract]. In: Proceedings of the AACR Special Conference on Colorectal Cancer; 2022 Oct 1-4; Portland, OR. Philadelphia (PA): AACR; Cancer Res 2022;82(23 Suppl_1):Abstract nr A027.
Cystic Fibrosis (CF) is a disease caused by mutations in the CFTR gene that severely affects the lungs as well as extra-pulmonary tissues, including the gastrointestinal (GI) tract. CFTR dysfunction resulting from either mutations or the downregulation of its expression has been shown to promote carcinogenesis. An example is the enhanced risk for several types of cancer in patients with CF, especially cancers of the GI tract. CFTR also acts as a tumor suppressor in diverse sporadic epithelial cancers in many tissues, primarily due to the silencing of CFTR expression via multiple mechanisms, but especially due to epigenetic regulation. This review provides an update on the latest research linking CFTR-deficiency to GI cancers, in both CF patients and in sporadic GI cancers, with a particular focus on cancer of the intestinal tract. It will discuss changes in the tissue landscape linked to CFTR-deficiency that may promote cancer development such as breakdowns in physical barriers, microbial dysbiosis and inflammation. It will also discuss molecular pathways and mechanisms that act upstream to modulate CFTR expression, such as by epigenetic silencing, as well as molecular pathways that act downstream of CFTR-deficiency, such as the dysregulation of the Wnt/β-catenin and NF-κB signaling pathways. Finally, it will discuss the emerging CFTR modulator drugs that have shown promising results in improving CFTR function in CF patients. The potential impact of these modulator drugs on the treatment and prevention of GI cancers can provide a new example of personalized cancer medicine.
Background and purpose: Colorectal cancer (CRC) is the third leading cause of cancer deaths in the U.S. Establishing new genetic variants associated with CRC risk may lead to early CRC detection and novel treatment options. Recently, mouse genetic studies identified the cystic fibrosis transmembrane conductance regulator (CFTR) gene as a tumor suppressor in CRC. In line with this, a human study using MarketScan claims data showed that cystic fibrosis (CF) carriers – individuals with one copy of mutant CFTR – are at increased CRC risk. Although there are more than 10 million CF carriers in the U.S., to our knowledge, no studies comprehensively examined CFTR mutations in relation to CRC risk. Our hypothesis is that CFTR mutations are associated with an increased risk of CRC. Methods: We used whole exome sequencing (WES) data in 454,333 individuals (age 44-82 years), including 4,975 cases of CRC, in the UK Biobank study. We utilized risk set sampling to select up to four controls per CRC case based on age of diagnosis, gender, race, and year of joining the study. To examine associations between CFTR mutations and CRC risk, logistic regression (odds ratio and p-value) was used after adjusting for age, gender and 10 principal components capturing global ancestry. An aggregate burden score was constructed that included all variants listed as CF-causing in the CFTR2 online database. Results: Of the 465 CFTR variants in the CFTR2 database, 378 are classified as CF-causing, and of those 153 were observed in the UK Biobank WES data set. Individuals with two CF-causing alleles were excluded from further analysis (8 cases and 35 controls), since the association between CF and CRC is already well established. The frequency of the F508del variant, the most common CF-causing mutation, was 3.77% in cases versus 3.11% in controls, while the frequency of any other CF-causing mutation was 1.07% in cases versus 0.80% in controls. Having any CF-causing mutation was associated with a significant 24% increased CRC risk (one-sided p=0.002). Having one copy of the F508del mutation, was associated with a significant 21% increased risk of CRC (one-sided p=0.012), while having one copy of any other CF-causing mutation was associated with a slightly larger 34% increased risk of CRC (one-sided p=0.036). Conclusions: CF-causing mutations in the heterozygous state lead to a significantly increased risk of CRC. Individuals with multiple genetic risk factors, such as in CFTR, may require earlier screening for CRC. Citation Format: Anna E. Prizment, Abigail Standafer, Shuo Wang, Conghui Qu, Ulrike Peters, Patricia Scott, Timothy Starr, Nathan Pankratz. Heterozygote carriers of cystic fibrosis mutations have increased risk of colorectal cancer [abstract]. In: Proceedings of the AACR Special Conference on Colorectal Cancer; 2022 Oct 1-4; Portland, OR. Philadelphia (PA): AACR; Cancer Res 2022;82(23 Suppl_1):Abstract nr A031.
Background: The TP53 tumor suppressor gene is the most commonly mutated gene in human cancers. Humans who inherit mutant TP53 alleles develop a wide range of early onset cancers, a disorder called Li-Fraumeni Syndrome (LFS). Trp53-deficient mice recapitulate most but not all of the cancer phenotypes observed in TP53-deficient human cancers, indicating that new animal models may complement current mouse models and better inform on human disease development. Materials and Methods: The recent application of CRISPR/Cas9 genetic engineering technology has permitted the emergence of golden Syrian hamsters as genetic models for wide range of diseases, including cancer. Here, the first cancer phenotype of TP53 knockout golden Syrian hamsters is described. Results: Hamsters that are homozygous for TP53 mutations become moribund on average ~ 139 days of age, while hamsters that are heterozygous become moribund at ~ 286 days. TP53 homozygous knockout hamsters develop a wide range of cancers, often synchronous and metastatic to multiple tissues, including lymphomas, several sarcomas, especially hemangiosarcomas, myeloid leukemias and several carcinomas. TP53 heterozygous mutants develop a more restricted tumor spectrum, primarily lymphomas. Conclusions: Overall, hamsters may provide insights into how TP53 deficiency leads to cancer in humans and can become a new model to test novel therapies.
Cystic fibrosis (CF), caused by biallelic inactivating mutations in the cystic fibrosis transmembrane conductance regulator (CFTR) gene, has recently been categorized as a familial colorectal cancer (CRC) syndrome. CF patients are highly susceptible to early, aggressive colorectal tumor development. Endoscopic screening studies have revealed that by the age of forty 50% of CF patients will develop adenomas, with 25% developing aggressive advanced adenomas, some of which will have already advanced to adenocarcinomas. This enhanced risk has led to new CF colorectal cancer screening recommendations, lowering the initiation of endoscopic screening to age forty in CF patients, and to age thirty in organ transplant recipients. The enhanced risk for CRC also extends to the millions of people (more than 10 million in the US) who are heterozygous carriers of CFTR gene mutations. Further, lowered expression of CFTR is reported in sporadic CRC, where downregulation of CFTR is associated with poor survival. Mechanisms underlying the actions of CFTR as a tumor suppressor are not clearly understood. Dysregulation of Wnt/β-catenin signaling and disruption of intestinal stem cell homeostasis and intestinal barrier integrity, as well as intestinal dysbiosis, immune cell infiltration, stress responses, and intestinal inflammation have all been reported in human CF patients and in animal models. Notably, the development of new drug modalities to treat non-gastrointestinal pathologies in CF patients, especially pulmonary disease, offers hope that these drugs could be repurposed for gastrointestinal cancers.
In their seminal papers Hanahan and Weinberg described oncogenic processes a normal cell undergoes to be transformed into a cancer cell. The functions of ion channels in the gastrointestinal (GI) tract influence a variety of cellular processes, many of which overlap with these hallmarks of cancer. In this review we focus on the roles of the calcium (Ca2+), sodium (Na+), potassium (K+), chloride (Cl-) and zinc (Zn2+) transporters in GI cancer, with a special emphasis on the roles of the KCNQ1 K+ channel and CFTR Cl- channel in colorectal cancer (CRC). Ca2+ is a ubiquitous second messenger, serving as a signaling molecule for a variety of cellular processes such as control of the cell cycle, apoptosis, and migration. Various members of the TRP superfamily, including TRPM8, TRPM7, TRPM6 and TRPM2, have been implicated in GI cancers, especially through overexpression in pancreatic adenocarcinomas and down-regulation in colon cancer. Voltage-gated sodium channels (VGSCs) are classically associated with the initiation and conduction of action potentials in electrically excitable cells such as neurons and muscle cells. The VGSC NaV1.5 is abundantly expressed in human colorectal CRC cell lines as well as being highly expressed in primary CRC samples. Studies have demonstrated that conductance through NaV1.5 contributes significantly to CRC cell invasiveness and cancer progression. Zn2+ transporters of the ZIP/SLC39A and ZnT/SLC30A families are dysregulated in all major GI organ cancers, in particular, ZIP4 up-regulation in pancreatic cancer (PC). More than 70 K+ channel genes, clustered in four families, are found expressed in the GI tract, where they regulate a range of cellular processes, including gastrin secretion in the stomach and anion secretion and fluid balance in the intestinal tract. Several distinct types of K+ channels are found dysregulated in the GI tract. Notable are hERG1 upregulation in PC, gastric cancer (GC) and CRC, leading to enhanced cancer angiogenesis and invasion, and KCNQ1 down-regulation in CRC, where KCNQ1 expression is associated with enhanced disease-free survival in stage II, III, and IV disease. Cl- channels are critical for a range of cellular and tissue processes in the GI tract, especially fluid balance in the colon. Most notable is CFTR, whose deficiency leads to mucus blockage, microbial dysbiosis and inflammation in the intestinal tract. CFTR is a tumor suppressor in several GI cancers. Cystic fibrosis patients are at a significant risk for CRC and low levels of CFTR expression are associated with poor overall disease-free survival in sporadic CRC. Two other classes of chloride channels that are dysregulated in GI cancers are the chloride intracellular channels (CLIC1, 3 & 4) and the chloride channel accessory proteins (CLCA1,2,4). CLIC1 & 4 are upregulated in PC, GC, gallbladder cancer, and CRC, while the CLCA proteins have been reported to be down-regulated in CRC. In summary, it is clear, from the diverse influences of ion channels, that their aberrant expression and/or activity can contribute to malignant transformation and tumor progression. Further, because ion channels are often localized to the plasma membrane and subject to multiple layers of regulation, they represent promising clinical targets for therapeutic intervention including the repurposing of current drugs.
BACKGROUND:Expression of TRAP1, a member of the HSP90 chaperone family, has been implicated in tumour protective effects, based on its differential mitochondrial localization and function.DESIGN:This work was designed to provide new insights into the pathways involved in TRAP1-provided cytoprotection on NSCLC. For this, TRAP1-depleted A549 human NSCLC cells and MRC-5 normal lung fibroblasts were produced using a siRNA approach and main cellular quality control mechanisms were investigated.RESULTS:TRAP1-depleted A549 cells displayed decreased cell viability likely due to impaired mitochondrial function including decreased ATP/AMP ratio, oxygen consumption and membrane potential, as well as increased apoptotic indicators. Furthermore, the negative impact of TRAP1 depletion on mitochondrial function was not observed in normal MRC-5 lung cells, which might be due to the differential intracellular localization of the chaperone in tumour versus normal cells. Additionally, A549 TRAP1-depleted cells showed increased autophagic flux. Functionally, autophagy inhibition resulted in decreased cell viability in both TRAP1-expressing and TRAP1-depleted tumour cells with minor effects on MRC-5 cells. Conversely, autophagy stimulation decreased cell viability of both A549 and MRC-5 TRAP1-expressing cells while in A549 TRAP1-depleted cells, increased autophagy augmented viability.CONCLUSIONS:Our results show that even though TRAP1 depletion affects both normal MRC-5 and tumour A549 cell proliferation, inhibition of autophagy per se led to a decrease in tumour cell mass, while having a reduced effect on the normal cell line. The strategy of targeting TRAP1 in NSCLC shows future potential therapeutic applications.
BACKGROUND:The golden Syrian hamster is an emerging model organism. To optimize its use, our group has made the first genetically engineered hamsters. One of the first genes that we investigated is KCNQ1 which encodes for the KCNQ1 potassium channel and also has been implicated as a tumor suppressor gene. MATERIALS AND METHODS:We generated KCNQ1 knockout (KO) hamsters by CRISPR/Cas9-mediated gene targeting and investigated the effects of KCNQ1-deficiency on tumorigenesis. RESULTS:By 70 days of age seven of the eight homozygous KCNQ1 KOs used in this study began showing signs of distress, and on necropsy six of the seven ill hamsters had visible cancers, including T-cell lymphomas, plasma cell tumors, hemangiosarcomas, and suspect myeloid leukemias. CONCLUSIONS:None of the hamsters in our colony that were wild-type or heterozygous for KCNQ1 mutations developed cancers indicating that the cancer phenotype is linked to KCNQ1-deficiency. This study is also the first evidence linking KCNQ1-deficiency to blood cancers.
Background: Colorectal cancer (CRC) is the third most common cancer worldwide. Accurately identifying stage II CRC patients at risk for recurrence is an unmet clinical need. KCNQ1 was previously identified as a tumour suppressor gene and loss of expression was associated with poor survival in patients with CRC liver metastases. In this study the prognostic value of KCNQ1 in stage II and stage III colon cancer patients was examined. Methods: KCNQ1 mRNA expression was assessed in 90 stage II colon cancer patients (AMC-AJCCII-90) using microarray gene expression data. Subsequently, KCNQ1 protein expression was evaluated in an independent cohort of 386 stage II and stage III colon cancer patients by immunohistochemistry of tissue microarrays. Results: Low KCNQ1 mRNA expression in stage II microsatellite stable (MSS) colon cancers was associated with poor disease-free survival (DFS) ( P =0.025). Loss of KCNQ1 protein expression from epithelial cells was strongly associated with poor DFS in stage II MSS ( P <0.0001), stage III MSS ( P =0.0001) and stage III microsatellite instable colon cancers ( P =0.041). KCNQ1 seemed an independent prognostic value in addition to other high-risk parameters like angio-invasion, nodal stage and microsatellite instability-status. Conclusions: We conclude that KCNQ1 is a promising biomarker for prediction of disease recurrence and may aid stratification of patients with stage II MSS colon cancer for adjuvant chemotherapy.
Abstract Background: Colorectal cancer (CRC) is the third most common cancer worldwide. Accurately identifying stage II CRC patients at high risk of recurrence and stage III patients at low risk of recurrence are key unmet clinical needs. We previously identified KCNQ1 as a tumour suppressor gene of which loss of expression was associated with poor survival in patients with CRC liver metastases. The present study aimed to examine the prognostic value of KCNQ1 in stage II and III colon cancer patients. Methods: KCNQ1 mRNA expression was assessed in 90 stage II colon cancer patients (AMC-AJCCII-90) using microarray gene expression data. KCNQ1 protein expression was evaluated by immuno-histochemistry on tissue microarrays of 386 stage II and III colon cancer patients. Results: Low KCNQ1 mRNA expression in microsatellite stable (MSS) stage II colon cancers was associated with poor disease free survival (DFS) (HR 3.35; 95% CI 1.16-9.66; p<0.05). Loss of KCNQ1 protein expression from epithelial cells was strongly associated with poor DFS in MSS stage II (HR 3.82; 95% CI 2.04-7.14; p<0.0001), MSS stage III (HR 2.93; 95% CI 1.70-5.02; p = 0.0001) and MSI stage III colon cancers (HR 5.06; 95% CI 1.07-23.89; p<0.05). Multivariate analysis demonstrated KCNQ1 to have independent prognostic value in addition to established clinicopathological parameters such as angioinvasion, nodal stage en MSI-status. Conclusion: We conclude that KCNQ1 is a strong prognostic biomarker for prediction of disease recurrence (HR∼4) and may aid stratification of patients with stage II MSS colon cancer and stage III MSI CRC for adjuvant chemotherapy. Because KCNQ1 protein expression is determined by immuno-histochemistry, this biomarker can be implemented in standard clinical care using existing workflows. Citation Format: Sjoerd H. den Uil, Veerle M.H. Coupe, Janneke F. Linnekamp, Evert van den Broek, Jeroen A.C.M. Goos, Pien M. Delis-van Diemen, Eric J.T. Belt, Nicole C.T. van Grieken, Patricia M. Scott, Louis Vermeulen, Jan Paul Medema, Herman Bril, Hein B.A.C. Stockmann, Robert T. Cormier, Gerrit A. Meijer, Remond J. Fijneman. KCNQ1 expression is a strong prognostic biomarker for disease recurrence in stage II and III colon cancer. [abstract]. In: Proceedings of the 107th Annual Meeting of the American Association for Cancer Research; 2016 Apr 16-20; New Orleans, LA. Philadelphia (PA): AACR; Cancer Res 2016;76(14 Suppl):Abstract nr 3125.
Correction to: Oncogene (2016) 35, 4179–4187; doi:10.1038/onc.2015.483; published online 11 January 2016 Since the online publication of this article, the authors would like to add a new co-author, Jordyn Walter. The institutional affiliation for Jordyn Walter is: Department of Biomedical Sciences, University of Minnesota Medical School, Duluth, MN, USA
The intestinal stem cell niche provides cues that actively maintain gut homeostasis. Dysregulation of these cues may compromise intestinal regeneration upon tissue insult and/or promote tumor growth. Here, we identify secreted phospholipases A2 (sPLA2s) as stem cell niche factors with context-dependent functions in the digestive tract. We show that group IIA sPLA2, a known genetic modifier of mouse intestinal tumorigenesis, is expressed by Paneth cells in the small intestine, while group X sPLA2 is expressed by Paneth/goblet-like cells in the colon. During homeostasis, group IIA/X sPLA2s inhibit Wnt signaling through intracellular activation of Yap1. However, upon inflammation they are secreted into the intestinal lumen, where they promote prostaglandin synthesis and Wnt signaling. Genetic ablation of both sPLA2s improves recovery from inflammation but increases colon cancer susceptibility due to release of their homeostatic Wnt-inhibitory role. This "trade-off" effect suggests sPLA2s have important functions as genetic modifiers of inflammation and colon cancer.
Kcnq1, which encodes for the pore-forming α-subunit of a voltage-gated potassium channel, was identified as a gastrointestinal (GI) tract cancer susceptibility gene in multiple Sleeping Beauty DNA transposon-based forward genetic screens in mice. To confirm that Kcnq1 has a functional role in GI tract cancer, we created Apc(Min) mice that carried a targeted deletion mutation in Kcnq1. Results demonstrated that Kcnq1 is a tumor suppressor gene as Kcnq1 mutant mice developed significantly more intestinal tumors, especially in the proximal small intestine and colon, and some of these tumors progressed to become aggressive adenocarcinomas. Gross tissue abnormalities were also observed in the rectum, pancreas and stomach. Colon organoid formation was significantly increased in organoids created from Kcnq1 mutant mice compared with wild-type littermate controls, suggesting a role for Kcnq1 in the regulation of the intestinal crypt stem cell compartment. To identify gene expression changes due to loss of Kcnq1, we carried out microarray studies in the colon and proximal small intestine. We identified altered genes involved in innate immune responses, goblet and Paneth cell function, ion channels, intestinal stem cells, epidermal growth factor receptor and other growth regulatory signaling pathways. We also found genes implicated in inflammation and in cellular detoxification. Pathway analysis using Ingenuity Pathway Analysis and Gene Set Enrichment Analysis confirmed the importance of these gene clusters and further identified significant overlap with genes regulated by MUC2 and CFTR, two important regulators of intestinal homeostasis. To investigate the role of KCNQ1 in human colorectal cancer (CRC), we measured protein levels of KCNQ1 by immunohistochemistry in tissue microarrays containing samples from CRC patients with liver metastases who had undergone hepatic resection. Results showed that low expression of KCNQ1 expression was significantly associated with poor overall survival.
The Runx1 transcription factor plays an important role in tissue homeostasis through its effects on stem/progenitor cell populations and differentiation. The effect of Runx1 on epithelial differentiation of the secretory cell lineage of the colon was recently demonstrated. This study aimed to examine the role of Runx1 in tumor development in epithelial cells of the gastrointestinal tract. Conditional knockout mice that lacked Runx1 expression in epithelial cells of the GI tract were generated. These mice were crossed onto the ApcMin background, killed and their intestinal tumor phenotypes were compared with ApcMinRunx1 wild‐type control mice. Apc‐wild‐type Runx1‐mutant mice were also examined for tumor development. Colons from Runx1 knockout and wild‐type mice were used for genome‐wide mRNA expression analyses followed by gene‐specific quantitative RT‐PCR of whole colon and colon epithelium to identify Runx1 target genes. Runx1 deficiency in intestinal epithelial cells significantly enhanced tumorigenesis in ApcMin mice. Notably, epithelial Runx1 deficiency in Apc‐wild‐type mice was sufficient to cause tumor development. Absence of Runx1 was associated with global changes in the expression of genes involved in inflammation and intestinal metabolism, and with gene sets indicative of a metastatic phenotype and poor prognosis. Gene‐specific analysis of Runx1‐deficient colon epithelium revealed increased expression of genes linked to an expansion of the stem/progenitor cell population. These results identify Runx1 as a novel tumor suppressor gene for gastrointestinal tumors and support a role for Runx1 in maintaining the balance between the intestinal stem/progenitor cell population and epithelial differentiation of the GI tract. (Cancer Sci 2012; 103: 593–599)