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Microsatellite instability: an update

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Abstract

Deficient DNA mismatch repair (MMR) results in a strong mutator phenotype known as microsatellite instability (MSI), which is a hallmark of Lynch syndrome-associated cancers. MSI is characterized by length alterations within simple repeated sequences that are called microsatellites. Lynch syndrome is primarily caused by mutations in the MMR genes, mainly MLH1 and MSH2, and less frequently in MSH6, and rarely PMS2, and large genomic rearrangements account for 5–20 % of all mutations. Germ line hemiallelic methylations of MLH1 or MSH2 are termed as epimutations and have been identified as causative of Lynch syndrome. Moreover, germ line 3′ deletions of EPCAM gene is involved in MSH2 methylation. MSI is also observed in about 15 % of sporadic colorectal cancer (CRC), gastric cancer (GC), and endometrial cancer (EC), and at lower frequencies in other cancers, often in association with hypermethylation of the MLH1 gene. Trimethylation of histone H3 on Lys36 (H3K36 me3) is an epigenetic histone mark that was required for DNA MMR in vivo. Thus, mutations in the H3K36 trimethyltransferase SETD2 have been reported as a potential cause of MSI. Genetic, epigenetic, and transcriptomic differences have been identified between cancers with and without MSI. Recent comprehensive molecular characterizations of CRC, EC, and GC by The Cancer Genome Atlas indicate that MSI+ cancers are distinct biological entities. The BRAF V600E mutation is specifically associated with sporadic MSI+ CRCs with methylated MLH1, but is not associated with Lynch syndrome-related CRCs. Accumulating evidence indicates a role of interactions between MSI and microRNA (miRNA) in the pathogenesis of MSI-positive (MSI+) cancer. As another new mechanism underlying MSI, overexpression of miR-155 or miR-21 has been shown to downregulate the expression of the MMR genes. Gene targets of frameshift mutations caused by MSI are involved in various cellular functions, including DNA repair (MSH3 and MSH6), cell signaling (TGFBR2 and ACVR2A), apoptosis (BAX), epigenetic regulation (HDAC2 and ARID1A), and miRNA processing (TARBP2 and XPO5), and a subset of MSI+ CRCs reportedly shows the mutated miRNA machinery phenotype. Moreover, microsatellite repeats in miRNA genes, such as hsa-miR-1273c, may be novel MSI targets for CRC, and mutations in noncoding regulatory regions of MRE11, BAX (BaxΔ2), and HSP110 (HSP110ΔE9) may affect the efficiency of chemotherapy. Thus, analyses of MSI and its related molecular alterations in cancers are increasingly relevant in clinical settings, and MSI is a useful screening marker for identifying patients with Lynch syndrome and a prognostic factor for chemotherapeutic interventions. In this review, we summarize recent advances in the pathogenesis of MSI and focus on genome-wide analyses that indicate the potential use of MSI and related alterations as biomarkers and novel therapeutic targets.

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References

  • Aaltonen LA, Peltomaki P, Leach FS, Sistonen P, Pylkkanen L, Mecklin JP, Javinen H, Powell SM, Jen J, Hamilton SR, Petersen GM, Kinzler KW, Vogelstein B, Chapelle A (1993) Clues to the pathogenesis of familial colorectal cancer. Science 260:812–816

    CAS  PubMed  Google Scholar 

  • Abdel-Rahman WM, Mecklin JP, Peltomaki P (2006) The genetics of HNPCC: application to diagnosis and screening. Crit Rev Oncol Hematol 58:208–220

    PubMed  Google Scholar 

  • Abe H, Maeda D, Hino R, Otake Y, Isogai M, Ushiku AS, Matsusaka K, Kunita A, Ushiku T, Uozaki H, Tateishi Y, Hishima T, Iwasaki Y, Ishikawa S, Fukayama M (2012) ARID1A expression loss in gastric cancer: pathway-dependent roles with and without Epstein–Barr virus infection and microsatellite instability. Virchows Arch 461:367–377

    CAS  PubMed  Google Scholar 

  • Alhopuro P, Sammalkorpi H, Niittymaki I, Bistrom M, Raitila A, Saharinen J, Nousiainen K, Lehtonen HJ, Heliövaara E, Puhakka J, Tuupanen S, Sousa S, Seruca R, Ferreira AM, Hofstra RM, Mecklin JP, Järvinen H, Ristimäki A, Orntoft TF, Hautaniemi S, Arango D, Karhu A, Aaltonen LA (2012) Candidate driver genes in microsatellite-unstable colorectal cancer. Int J Cancer 130:1558–1566

    CAS  PubMed  Google Scholar 

  • An CH, Je EM, Yoo NJ, Lee SH (2015) Frameshift mutations of cadherin genes DCHS2, CDH10 and CDH24 genes in gastric and colorectal cancers with high microsatellite instability. Pathol Oncol Res 21:181–185

    CAS  PubMed  Google Scholar 

  • Arai T, Sakurai U, Sawabe M, Honma N, Aida J, Ushio Y, Kanazawa N, Kuroiwa K, Takubo K (2013) Frequent microsatellite instability in papillary and solid-type, poorly differentiated adenocarcinomas of the stomach. Gastric Cancer 16:505–512

    CAS  PubMed  Google Scholar 

  • Azad N, Zahnow CA, Rudin CM, Baylin SB (2013) The future of epigenetic therapy in solid tumours—lessons from the past. Nat Rev Clin Oncol 10:256–266

    PubMed Central  CAS  PubMed  Google Scholar 

  • Bader AG, Brown D, Winkler M (2010) The promise of microRNA replacement therapy. Cancer Res 70:7027–7030

    PubMed Central  CAS  PubMed  Google Scholar 

  • Banerjea A, Ahmed S, Hands RE, Huang F, Han X, Shaw PM, Feakins R, Bustin SA, Dorudi S (2004) Colorectal cancers with microsatellite instability display mRNA expression signatures characteristic of increased immunogenicity. Mol Cancer 3:21

    PubMed Central  PubMed  Google Scholar 

  • Benatti P, Gafa R, Barana D, Marino M, Scarselli A, Pedroni M, Maestri I, Guerzoni L, Roncucci L, Menigatti M, Roncari B, Maffei S, Rossi G, Ponti G, Santini A, Losi L, Di Gregorio C, Oliani C, Ponz de Leon M, Lanza G (2005) Microsatellite instability and colorectal cancer prognosis. Clin Cancer Res 11:8332–8340

    CAS  PubMed  Google Scholar 

  • Bettington M, Walker N, Clouston A, Brown I, Leggett B, Whitehall V (2013) The serrated pathway to colorectal carcinoma: current concepts and challenges. Histopathology 62:367–386

    PubMed  Google Scholar 

  • Bilbao C, Ramirez R, Rodriguez G, Falcon O, Leon L, Diaz-Chico N, Perucho M, Diaz-Chico JC (2010) Double strand break repair components are frequent targets of microsatellite instability in endometrial cancer. Eur J Cancer 46:2821–2827

    CAS  PubMed  Google Scholar 

  • Billingsley CC, Cohn DE, Mutch DG, Stephens JA, Suarez AA, Goodfellow PJ (2015) Polymerase ɛ (POLE) mutations in endometrial cancer: clinical outcomes and implications for Lynch syndrome testing. Cancer 121:386–394

    CAS  PubMed  Google Scholar 

  • Boland CR, Fishel R (2005) Lynch syndrome: form, function, proteins, and basketball. Gastroenterology 129:751–755

    PubMed  Google Scholar 

  • Boland CR, Goel A (2010) Microsatellite instability in colorectal cancer. Gastroenterology 138:2073–2087

    PubMed Central  CAS  PubMed  Google Scholar 

  • Boland CR, Thibodeau SN, Hamilton SR, Sidransky D, Eshleman JR, Burt RW, Meltzer SJ, Rodriguez-Bigas MA, Fodde R, Ranzani GN, Srivastava S (1998) A National Cancer Institute Workshop on Microsatellite Instability for cancer detection and familial predisposition: development of international criteria for the determination of microsatellite instability in colorectal cancer. Cancer Res 58:5248–5257

    CAS  PubMed  Google Scholar 

  • Cajuso T, Hänninen UA, Kondelin J, Gylfe AE, Tanskanen T, Katainen R, Pitkänen E, Ristolainen H, Kaasinen E, Taipale M, Taipale J, Böhm J, Renkonen-Sinisalo L, Mecklin JP, Järvinen H, Tuupanen S, Kilpivaara O, Vahteristo P (2014) Exome sequencing reveals frequent inactivating mutations in ARID1A, ARID1B, ARID2 and ARID4A in microsatellite unstable colorectal cancer. Int J Cancer 135:611–623

    CAS  PubMed  Google Scholar 

  • Calcagno DQ, Gigek CO, Chen ES, Burbano RR, Smith M de A (2013) DNA and histone methylation in gastric carcinogenesis. World J Gastroenterol 19:1182–1192

    PubMed Central  CAS  PubMed  Google Scholar 

  • Calin GA, Croce CM (2006) MicroRNA signatures in human cancers. Nat Rev Cancer 6:857–866

    CAS  PubMed  Google Scholar 

  • Cancer Genome Atlas Network (2012) Comprehensive molecular characterization of human colon and rectal cancer. Nature 487:330–337

    Google Scholar 

  • Cancer Genome Atlas Research Network, Kandoth C, Schultz N, Cherniack AD, Akbani R, Liu Y, Shen H, Robertson AG, Pashtan I, Shen R, Benz CC, Yau C, Laird PW, Ding L, Zhang W, Mills GB, Kucherlapati R, Mardis ER, Levine DA (2013) Integrated genomic characterization of endometrial carcinoma. Nature 497:67–73

    Google Scholar 

  • Cancer Genome Atlas Research Network (2014) Comprehensive molecular characterization of gastric adenocarcinoma. Nature 513:202–209

    Google Scholar 

  • Capper D, Voigt A, Bozukova G, Ahadova A, Kickingereder P, von Deimling A, von Knebel Doeberitz M, Kloor M (2013) BRAF V600E-specific immunohistochemistry for the exclusion of Lynch syndrome in MSI-H colorectal cancer. Int J Cancer 133:1624–1630

    CAS  PubMed  Google Scholar 

  • Carethers JM, Smith EJ, Behling CA, Nguyen L, Tajima A, Doctolero RT, Cabrera BL, Goel A, Arnold CA, Miyai K, Boland CR (2004) Use of 5-fluorouracil and survival in patients with microsatellite unstable colorectal cancer. Gastroenterology 126:394–401

    CAS  PubMed  Google Scholar 

  • Chan TL, Yuen ST, Kong CK, Chan YW, Chan AS, Ng WF, Tsui WY, Lo MW, Tam WY, Li VS, Leung SY (2006) Heritable germline epimutation of MSH2 in a family with hereditary nonpolyposis colorectal cancer. Nat Genet 38:1178–1183

    CAS  PubMed  Google Scholar 

  • Chang DK, Metzgar D, Wills C, Boland CR (2011) Microsatellites in the eukaryotic DNA mismatch repair genes as modulators of evolutionary mutation rate. Genome Res 11:1145–1146

    Google Scholar 

  • Choi YJ, Oh HR, Choi MR, Gwak M, An CH, Chung YJ, Yoo NJ, Lee SH (2014a) Frameshift mutation of a histone methylation-related gene SETD1B and its regional heterogeneity in gastric and colorectal cancers with high microsatellite instability. Hum Pathol 45:1674–1681

    CAS  PubMed  Google Scholar 

  • Choi YY, Bae JM, An JY, Kwon IG, Cho I, Shin HB, Eiji T, Aburahmah M, Kim HI, Cheong JH, Hyung WJ, Noh SH (2014b) Is microsatellite instability a prognostic marker in gastric cancer? A systematic review with meta-analysis. J Surg Oncol 110:129–135

    PubMed  Google Scholar 

  • Ciriello G, Cerami E, Sander C, Schultz N (2012) Mutual exclusivity analysis identifies oncogenic network modules. Genome Res 22:398–406

    PubMed Central  CAS  PubMed  Google Scholar 

  • Collura A, Lagrange A, Svrcek M, Marisa L, Buhard O, Guilloux A, Wanherdrick K, Dorard C, Taieb A, Saget A, Loh M, Soong R, Zeps N, Platell C, Mews A, Iacopetta B, De Thonel A, Seigneuric R, Marcion G, Chapusot C, Lepage C, Bouvier AM, Gaub MP, Milano G, Selves J, Senet P, Delarue P, Arzouk H, Lacoste C, Coquelle A, Bengrine-Lefèvre L, Tournigand C, Lefèvre JH, Parc Y, Biard DS, Fléjou JF, Garrido C, Duval A (2014) Patients with colorectal tumors with microsatellite instability and large deletions in HSP110 T17 have improved response to 5-fluorouracil-based chemotherapy. Gastroenterology 146:401–411

    CAS  PubMed  Google Scholar 

  • Cortez MA, Bueso-Ramos C, Ferdin J, Lopez-Berestein G, Sood AK, Calin GA (2011) MicroRNAs in body fluids—the mix of hormones and biomarkers. Nat Rev Clin Oncol 8:467–477

    PubMed Central  CAS  PubMed  Google Scholar 

  • Dalgliesh GL, Furge K, Greenman C, Chen L, Bignell G, Butler A, Davies H, Edkins S, Hardy C, Latimer C et al (2010) Systematic sequencing of renal carcinoma reveals inactivation of histone modifying genes. Nature 463:360–363

    PubMed Central  CAS  PubMed  Google Scholar 

  • Davalos V, Dopeso H, Velho S, Ferreira AM, Cirnes L, Díaz-Chico N, Bilbao C, Ramírez R, Rodríguez G, Falcón O, León L, Niessen RC, Keller G, Dallenbach-Hellweg G, Espín E, Armengol M, Plaja A, Perucho M, Imai K, Yamamoto H, Gebert JF, Díaz-Chico JC, Hofstra RM, Woerner SM, Seruca R, Schwartz S Jr, Arango D (2007) High EPHB2 mutation rate in gastric but not endometrial tumors with microsatellite instability. Oncogene 26:308–311

    CAS  PubMed  Google Scholar 

  • Davis BN, Hata A (2010) microRNA in Cancer—the involvement of aberrant microRNA biogenesis regulatory pathways. Genes Cancer 1:1100–1114

    Google Scholar 

  • Deng G, Bell I, Crawley S, Gum J, Terdiman JP, Allen BA, Truta B, Sleisenger MH, Kim YS (2004) BRAF mutation is frequently present in sporadic colorectal cancer with methylated hMLH1, but not in hereditary nonpolyposis colorectal cancer. Clin Cancer Res 10:191–195

    CAS  PubMed  Google Scholar 

  • Dhomen N, Marais R (2007) New insight into BRAF mutations in cancer. Curr Opin Genet Dev 17:31–39

    CAS  PubMed  Google Scholar 

  • Diaz-Padilla I, Romero N, Amir E, Matias-Guiu X, Vilar E, Muggia F, Garcia-Donas J (2013) Mismatch repair status and clinical outcome in endometrial cancer: a systematic review and meta-analysis. Crit Rev Oncol Hematol 88:154–167

    PubMed  Google Scholar 

  • Dierssen JW, de Miranda NF, Ferrone S, van Puijenbroek M, Cornelisse CJ, Fleuren GJ, van Wezel T, Morreau H (2007) HNPCC versus sporadic microsatellite-unstable colon cancers follow different routes toward loss of HLA class I expression. BMC Cancer 7:33

    PubMed Central  PubMed  Google Scholar 

  • Domingo E, Espín E, Armengol M, Oliveira C, Pinto M, Duval A, Brennetot C, Seruca R, Hamelin R, Yamamoto H, Schwartz S Jr (2004a) Activated BRAF targets proximal colon tumors with mismatch repair deficiency and MLH1 inactivation. Genes Chromosomes Cancer 39:138–142

    CAS  PubMed  Google Scholar 

  • Domingo E, Laiho P, Ollikainen M, Pinto M, Wang L, French AJ, Westra J, Frebourg T, Espín E, Armengol M, Hamelin R, Yamamoto H, Hofstra RM, Seruca R, Lindblom A, Peltomäki P, Thibodeau SN, Aaltonen LA, Schwartz S Jr (2004b) BRAF screening as a low-cost effective strategy for simplifying HNPCC genetic testing. J Med Genet 41:663–667

    Google Scholar 

  • Domingo E, Niessen RC, Oliveira C, Alhopuro P, Moutinho C, Espín E, Armengol M, Sijmons RH, Kleibeuker JH, Seruca R, Aaltonen LA, Imai K, Yamamoto H, Schwartz S Jr, Hofstra RM (2005) BRAF-V600E is not involved in the colorectal tumorigenesis of HNPCC in patients with functional MLH1 and MSH2 genes. Oncogene 24:3995–3998

    CAS  PubMed  Google Scholar 

  • Dorard C, de Thonel A, Collura A, Marisa L, Svrcek M, Lagrange A, Jego G, Wanherdrick K, Joly AL, Buhard O, Gobbo J, Penard-Lacronique V, Zouali H, Tubacher E, Kirzin S, Selves J, Milano G, Etienne-Grimaldi MC, Bengrine-Lefèvre L, Louvet C, Tournigand C, Lefèvre JH, Parc Y, Tiret E, Fléjou JF, Gaub MP, Garrido C, Duval A (2011) Expression of a mutant HSP110 sensitizes colorectal cancer cells to chemotherapy and improves disease prognosis. Nat Med 17:1283–1289

    CAS  PubMed  Google Scholar 

  • Duchaine TF, Slack FJ (2009) RNA interference and micro RNA-oriented therapy in cancer: rationales, promises, and challenges. Curr Oncol 16:61–66

    PubMed Central  CAS  PubMed  Google Scholar 

  • Duval A, Hamelin R (2002) Mutations at coding repeat sequences in mismatch repair-deficient human cancers: toward a new concept of target genes for instability. Cancer Res 62:2447–2454

    CAS  PubMed  Google Scholar 

  • Edwards RA, Witherspoon M, Wang K, Afrasiabi K, Pham T, Birnbaumer L, Lipkin SM (2009) Epigenetic repression of DNA mismatch repair by inflammation and hypoxia in inflammatory bowel disease-associated colorectal cancer. Cancer Res 69:6423–6429

    PubMed Central  CAS  PubMed  Google Scholar 

  • El-Murr N, Abidi Z, Wanherdrick K, Svrcek M, Gaub MP, Fléjou JF, Hamelin R, Duval A, Lesuffleur T (2012) MiRNA genes constitute new targets for microsatellite instability in colorectal cancer. PLoS ONE 7:e31862

    PubMed Central  CAS  PubMed  Google Scholar 

  • Fang M, Ou J, Hutchinson L, Green MR (2014) The BRAF oncoprotein functions through the transcriptional repressor MAFG to mediate the CpG Island Methylator phenotype. Mol Cell 55:904–915

    CAS  PubMed  Google Scholar 

  • Farmer H, McCabe N, Lord CJ, Tutt AN, Johnson DA, Richardson TB, Santarosa M, Dillon KJ, Hickson I, Knights C, Martin NM, Jackson SP, Smith GC, Ashworth A (2005) Targeting the DNA repair defect in BRCA mutant cells as a therapeutic strategy. Nature 434:917–921

    CAS  PubMed  Google Scholar 

  • Findeisen P, Kloor M, Merx S, Sutter C, Woerner SM, Dostmann N, Benner A, Dondog B, Pawlita M, Dippold W, Wagner R, Gebert J, von Knebel Doeberitz M (2005) T25 repeat in the 3′ untranslated region of the CASP2 gene: a sensitive and specific marker for microsatellite instability in colorectal cancer. Cancer Res 65:8072–8078

    CAS  PubMed  Google Scholar 

  • Gatalica Z, Snyder C, Maney T, Ghazalpour A, Holterman DA, Xiao N, Overberg P, Rose I, Basu GD, Vranic S, Lynch HT, Von Hoff DD, Hamid O (2014) Programmed cell death 1 (PD-1) and its ligand (PD-L1) in common cancers and their correlation with molecular cancer type. Cancer Epidemiol Biomark Prev 23:2965–2970

    CAS  Google Scholar 

  • Gaur A, Jewell DA, Liang Y, Ridzon D, Moore JH, Chen C, Ambros VR, Israel MA (2007) Characterization of microRNA expression levels and their biological correlates in human cancer cell lines. Cancer Res 67:2456–2468

    CAS  PubMed  Google Scholar 

  • Gazzoli I, Loda M, Garber J, Syngal S, Kolodner RD (2002) A hereditary nonpolyposis colorectal carcinoma case associated with hypermethylation of the MLH1 gene in normal tissue and loss of heterozygosity of the unmethylated allele in the resulting microsatellite instability-high tumor. Cancer Res 62:3925–3928

    CAS  PubMed  Google Scholar 

  • Gerlinger M, Rowan AJ, Horswell S, Larkin J, Endesfelder D, Gronroos E, Martinez P, Matthews N, Stewart A, Tarpey P, Varela I, Phillimore B, Begum S, McDonald NQ, Butler A, Jones D, Raine K, Latimer C, Santos CR, Nohadani M, Eklund AC, Spencer-Dene B, Clark G, Pickering L, Stamp G, Gore M, Szallasi Z, Downward J, Futreal PA, Swanton C (2012) Intratumor heterogeneity and branched evolution revealed by multiregion sequencing. New Engl J Med 366:883–892

    CAS  PubMed  Google Scholar 

  • Giannini G, Rinaldi C, Ristori E, Ambrosini MI, Cerignoli F, Viel A, Bidoli E, Berni S, D’Amati G, Scambia G, Frati L, Screpanti I, Gulino A (2004) Mutations of an intronic repeat induce impaired MRE11 expression in primary human cancer with microsatellite instability. Oncogene 23:2640–2647

    CAS  PubMed  Google Scholar 

  • Gigek CO, Chen ES, Calcagno DQ, Wisnieski F, Burbano RR, Smith MA (2012) Epigenetic mechanisms in gastric cancer. Epigenomics 4:279–294

    CAS  PubMed  Google Scholar 

  • Gil J, Yamamoto H, Zapata JM, Reed JC, Perucho M (1999) Impairment of the proapoptotic activity of Bax by missense mutations found in gastrointestinal cancers. Cancer Res 59:2034–2037

    CAS  PubMed  Google Scholar 

  • Goel A, Boland CR (2010) Recent insights into the pathogenesis of colorectal cancer. Curr Opin Gastroenterol 26:47–52

    PubMed Central  CAS  PubMed  Google Scholar 

  • Goldstein NS (2006) Serrated pathway and APC (conventional)-type colorectal polyps: molecular-morphologic correlations, genetic pathways, and implications for classification. Am J Clin Pathol 125:146–153

    CAS  PubMed  Google Scholar 

  • Goldstein NS, Bhanot P, Odish E, Hunter S (2003) Hyperplastic-like colon polyps that preceded microsatellite-unstable adenocarcinomas. Am J Clin Pathol 119:778–796

    PubMed  Google Scholar 

  • Gologan A, Krasinskas A, Hunt J, Thull DL, Farkas L, Sepulveda AR (2005) Performance of the revised Bethesda guidelines for identification of colorectal carcinomas with a high level of microsatellite instability. Arch Pathol Lab Med 129:1390–1397

    CAS  PubMed  Google Scholar 

  • Govindan R, Ding L, Griffith M, Subramanian J, Dees ND, Kanchi KL, Maher CA, Fulton R, Fulton L, Wallis J, Chen K, Walker J, McDonald S, Bose R, Ornitz D, Xiong D, You M, Dooling DJ, Watson M, Mardis ER, Wilson RK (2012) Genomic landscape of non-small cell lung cancer in smokers and never-smokers. Cell 150:1121–1134

    PubMed Central  CAS  PubMed  Google Scholar 

  • Grady WM, Myeroff LL, Swinler SE, Rajput A, Thiagalingam S, Lutterbaugh JD, Neumann A, Brattain MG, Chang J, Kim SJ, Kinzler KW, Vogelstein B, Willson JK, Markowitz S (1999) Mutational inactivation of transforming growth factor beta receptor type II in microsatellite stable colon cancers. Cancer Res 59:320–324

    CAS  PubMed  Google Scholar 

  • Grosshans H, Büssing I (2010) MicroRNA biogenesis takes another single hit from microsatellite instability. Cancer Cell 18:295–297

    CAS  PubMed  Google Scholar 

  • Gylfe AE, Kondelin J, Turunen M, Ristolainen H, Katainen R, Pitkänen E, Kaasinen E, Rantanen V, Tanskanen T, Varjosalo M, Lehtonen H, Palin K, Taipale M, Taipale J, Renkonen-Sinisalo L, Järvinen H, Böhm J, Mecklin JP, Ristimäki A, Kilpivaara O, Tuupanen S, Karhu A, Vahteristo P, Aaltonen LA (2013) Identification of candidate oncogenes in human colorectal cancers with microsatellite instability. Gastroenterology 145:540–543

    CAS  PubMed  Google Scholar 

  • Haferkamp B, Zhang H, Lin Y, Yeap X, Bunce A, Sharpe J, Xiang J (2012) BaxΔ2 is a novel bax isoform unique to microsatellite unstable tumors. J Biol Chem 287:34722–34729

    PubMed Central  CAS  PubMed  Google Scholar 

  • Haferkamp B, Zhang H, Kissinger S, Wang X, Lin Y, Schultz M, Xiang J (2013) BaxΔ2 family alternative splicing salvages Bax microsatellite-frameshift mutations. Genes Cancer 4:501–512

    PubMed Central  CAS  PubMed  Google Scholar 

  • Hallermalm K, Seki K, De Geer A, Motyka B, Bleackley RC, Jager MJ, Froelich CJ, Kiessling R, Levitsky V, Levitskaya J (2008) Modulation of the tumor cell phenotype by IFN-γ results in resistance of uveal melanoma cells to granule-mediated lysis by cytotoxic lymphocytes. J Immunol 180:3766–3774

    CAS  PubMed  Google Scholar 

  • Halvey PJ, Wang X, Wang J, Bhat AA, Dhawan P, Li M, Zhang B, Liebler DC, Slebos RJ (2014) Proteogenomic analysis reveals unanticipated adaptations of colorectal tumor cells to deficiencies in DNA mismatch repair. Cancer Res 74:387–397

    PubMed Central  CAS  PubMed  Google Scholar 

  • Hampel H, Frankel WL, Martin E, Arnold M, Khanduja K, Kuebler P, Nakagawa H, Sotamaa K, Prior TW, Westman J, Panescu J, Fix D, Lockman J, Comeras I, de la Chapelle A (2005) Screening for the Lynch syndrome (hereditary nonpolyposis colorectal cancer). N Engl J Med 5352:1851–1860

    Google Scholar 

  • Hewish M, Lord CJ, Martin SA, Cunningham D, Ashworth A (2010) Mismatch repair deficient colorectal cancer in the era of personalized treatment. Nat Rev Clin Oncol 7:197–208

    PubMed  Google Scholar 

  • Hill DA, Ivanovich J, Priest JR, Gurnett CA, Dehner LP, Desruisseau D, Jarzembowski JA, Wikenheiser-Brokamp KA, Suarez BK, Whelan AJ, Williams G, Bracamontes D, Messinger Y, Goodfellow PJ (2009) DICER1 mutations in familial pleuropulmonary blastoma. Science 325:965

    PubMed Central  CAS  PubMed  Google Scholar 

  • Hinoue T, Weisenberger DJ, Lange CP, Shen H, Byun HM, Van Den Berg D, Malik S, Pan F, Noushmehr H, van Dijk CM, Tollenaar RA, Laird PW (2012) Genome-scale analysis of aberrant DNA methylation in colorectal cancer. Genome Res 22:271–282

    PubMed Central  CAS  PubMed  Google Scholar 

  • Hirata T, Yamamoto H, Taniguchi H, Horiuchi S, Oki M, Adachi Y, Imai K, Shinomura Y (2007) Characterization of the immune escape phenotype of human gastric cancers with and without high-frequency microsatellite instability. J Pathol 211:516–523

    CAS  PubMed  Google Scholar 

  • Hitchins MP, Wong JJ, Suthers G, Suter CM, Martin DI, Hawkins NJ, Ward RL (2007) Inheritance of a cancer-associated MLH1 germ-line epimutation. N Engl J Med 356:697–705

    CAS  PubMed  Google Scholar 

  • Hugo H, Cures A, Suraweera N, Drabsch Y, Purcell D, Mantamadiotis T, Phillips W, Dobrovic A, Zupi G, Gonda TJ, Iacopetta B, Ramsay RG (2006) Mutations in the MYB intron I regulatory sequence increase transcription in colon cancers. Genes Chromosomes Cancer 45:1143–1154

    CAS  PubMed  Google Scholar 

  • Imai K, Yamamoto H (2008) Carcinogenesis and microsatellite instability: the interrelationship between genetics and epigenetics. Carcinogenesis 29:673–680

    CAS  PubMed  Google Scholar 

  • Inamura K, Yamauchi M, Nishihara R, Lochhead P, Qian ZR, Kuchiba A, Kim SA, Mima K, Sukawa Y, Jung S, Zhang X, Wu K, Cho E, Chan AT, Meyerhardt JA, Harris CC, Fuchs CS, Ogino S (2014) Tumor LINE-1 methylation level and microsatellite instability in relation to colorectal cancer prognosis. J Natl Cancer Inst 106

  • Ionov Y, Peinado MA, Malkhosyan S, Shibata D, Perucho M (1993) Ubiquitous somatic mutations in simple repeated sequences reveal a new mechanism for colonic carcinogenesis. Nature 363:558–561

    CAS  PubMed  Google Scholar 

  • Ionov Y, Yamamoto H, Krajewski S, Reed JC, Perucho M (2000) Mutational inactivation of the proapoptotic gene BAX confers selective advantage during tumor clonal evolution. Proc Natl Acad Sci USA 97:10872–10877

    PubMed Central  CAS  PubMed  Google Scholar 

  • Ito M, Mitsuhashi K, Igarashi H, Nosho K, Naito T, Yoshii S, Takahashi H, Fujita M, Sukawa Y, Yamamoto E, Takahashi T, Adachi Y, Nojima M, Sasaki Y, Tokino T, Baba Y, Maruyama R, Suzuki H, Imai K, Yamamoto H, Shinomura Y (2014) MicroRNA-31 expression in relation to BRAF mutation, CpG island methylation and colorectal continuum in serrated lesions. Int J Cancer 135:2507–2515

    CAS  PubMed  Google Scholar 

  • Jass JR (2006) Hereditary non-polyposis colorectal cancer: the rise and fall of a confusing term. World J Gastroenterol 12:4943–4950

    PubMed Central  CAS  PubMed  Google Scholar 

  • Je EM, Gwak M, Oh H, Choi MR, Choi YJ, Lee SH, Yoo NJ (2013) Frameshift mutations of axon guidance genes ROBO1 and ROBO2 in gastric and colorectal cancers with microsatellite instability. Pathology 45:645–650

    CAS  PubMed  Google Scholar 

  • Jover R, Zapater P, Castells A, Llor X, Andreu M, Cubiella J, Pinol V, Xicola RM, Bujanda L, Rene JM, Clofent J, Bessa X, Morillas JD, Nicolas-Perez D, Paya A, Alenda C, Gastrointestinal Oncology Group of the Spanish Gastroenterological Association (2006) Mismatch repair status in the prediction of benefit from adjuvant fluorouracil chemotherapy in colorectal cancer. Gut 55:848–855

    PubMed Central  CAS  PubMed  Google Scholar 

  • Juo YY, Johnston FM, Zhang DY, Juo HH, Wang H, Pappou EP, Yu T, Easwaran H, Baylin S, van Engeland M, Ahuja N (2014) Prognostic value of CpG island methylator phenotype among colorectal cancer patients: a systematic review and meta-analysis. Ann Oncol 25:2314–2327

    CAS  PubMed  Google Scholar 

  • Kaelin WG Jr (2005) The concept of synthetic lethality in the context of anticancer therapy. Nat Rev Cancer 5:689–698

    CAS  PubMed  Google Scholar 

  • Kim JH, Kang GH (2014) Molecular and prognostic heterogeneity of microsatellite-unstable colorectal cancer. World J Gastroenterol 20:4230–4243

    PubMed Central  PubMed  Google Scholar 

  • Kim TM, Park PJ (2014) A genome-wide view of microsatellite instability: old stories of cancer mutations revisited with new sequencing technologies. Cancer Res 74:6377–6382

    CAS  PubMed  Google Scholar 

  • Kim MS, Oh JE, Kim YR, Park SW, Kang MR, Kim SS, Ahn CH, Yoo NJ, Lee SH (2010) Somatic mutations and losses of expression of microRNA regulation-related genes AGO2 and TNRC6A in gastric and colorectal cancers. J Pathol 221:139–146

    CAS  PubMed  Google Scholar 

  • Kim TM, Laird PW, Park PJ (2013) The landscape of microsatellite instability in colorectal and endometrial cancer genomes. Cell 155:858–868

    CAS  PubMed  Google Scholar 

  • Kim KJ, Lee KS, Cho HJ, Kim YH, Yang HK, Kim WH, Kang GH (2014) Prognostic implications of tumor-infiltrating FoxP3+ regulatory T cells and CD8+ cytotoxic T cells in microsatellite-unstable gastric cancers. Hum Pathol 45:285–293

    CAS  PubMed  Google Scholar 

  • Klingbiel D, Saridaki Z, Roth AD, Bosman F, Delorenzi M, Tejpar S (2015) Prognosis of stage II and III colon carcinoma treated with adjuvant 5-FU or FOLFIRI in relation to microsatellite status, results of the PETACC-3 trial. Ann Oncol 26:126–132

    CAS  PubMed  Google Scholar 

  • Kloor M, Becker C, Benner A, Woerner SM, Gebert J, Ferrone S, von Knebel Doeberitz M (2005) Immunoselective pressure and human leukocyte antigen class I antigen machinery defects in microsatellite unstable colorectal cancers. Cancer Res 65:6418–6424

    CAS  PubMed  Google Scholar 

  • Kloor M, Voigt AY, Schackert HK, Schirmacher P, von Knebel Doeberitz M, Bläker H (2011) Analysis of EPCAM protein expression in diagnostics of Lynch syndrome. J Clin Oncol 29:223–227

    PubMed  Google Scholar 

  • Kmieciak M, Payne KK, Wang X-Y, Manjili MH (2013) IFN-γ Rα is a key determinant of CD8+ T cell-mediated tumor elimination of tumor escape and relapse in FVB mouse. PLoS ONE 8:e82544

    PubMed Central  PubMed  Google Scholar 

  • Koh KH, Kang HJ, Li LS, Kim NG, You KT, Yang E, Kim H, Kim HJ, Yun CO, Kim KS, Kim H (2005) Impaired nonhomologous end-joining in mismatch repair-deficient colon carcinomas. Lab Invest 85:1130–1138

    CAS  PubMed  Google Scholar 

  • Konishi K, Issa JP (2007) Targeting aberrant chromatin structure in colorectal carcinomas. Cancer J 13:49–55

    CAS  PubMed  Google Scholar 

  • Kuan SF, Navina S, Cressman KL, Pai RK (2014) Immunohistochemical detection of BRAF V600E mutant protein using the VE1 antibody in colorectal carcinoma is highly concordant with molecular testing but requires rigorous antibody optimization. Hum Pathol 45:464–472

    CAS  PubMed  Google Scholar 

  • Kumar MS, Lu J, Mercer KL, Golub TR, Jacks T (2007) Impaired microRNA processing enhances cellular transformation and tumorigenesis. Nat Genet 39:673–677

    CAS  PubMed  Google Scholar 

  • Kumar MS, Pester RE, Chen CY, Lane K, Chin C, Lu J, Kirsch DG, Golub TR, Jacks T (2009) Dicer1 functions as a haploinsufficient tumor suppressor. Genes Dev 23:2700–2704

    PubMed Central  CAS  PubMed  Google Scholar 

  • Lagerstedt Robinson K, Liu T, Vandrovcova J, Halvarsson B, Clendenning M, Frebourg T, Papadopoulos N, Kinzler KW, Vogelstein B, Peltomaki P, Kolodner RD, Nilbert M, Lindblom A (2007) Lynch syndrome (hereditary nonpolyposis colorectal cancer) diagnostics. J Natl Cancer Inst 99:291–299

    PubMed  Google Scholar 

  • Lawrence MS, Stojanov P, Mermel CH, Robinson JT, Garraway LA, Golub TR, Meyerson M, Gabriel SB, Lander ES, Getz G (2014) Discovery and saturation analysis of cancer genes across 21 tumour types. Nature 505:495–501

    PubMed Central  CAS  PubMed  Google Scholar 

  • Lax SF (2004) Molecular genetic pathways in various types of endometrial carcinoma: from a phenotypical to a molecular-based classification. Virchows Arch 444:213–223

    CAS  PubMed  Google Scholar 

  • Lee EJ, Luo J, Wilson JM, Shi H (2013) Analyzing the cancer methylome through targeted bisulfite sequencing. Cancer Lett 340:171–178

    CAS  PubMed  Google Scholar 

  • Leung SY et al (2007) Reply to ‘‘Heritable germline epimutation is not the same as transgenerational epigenetic inheritance’’. Nat Genet 39:576

    CAS  Google Scholar 

  • Li GM (2013) Decoding the histone code: role of H3K36me3 in mismatch repair and implications for cancer susceptibility and therapy. Cancer Res 73:6379–6383

    CAS  PubMed  Google Scholar 

  • Li F, Mao G, Tong D, Huang J, Gu L, Yang W, Li GM (2013) The histone mark H3 K36me3 regulates human DNA mismatch repair through its interaction with MutSα. Cell 153:590–600

    PubMed Central  CAS  PubMed  Google Scholar 

  • Ligtenberg MJ, Kuiper RP, Chan TL, Goossens M, Hebeda KM, Voorendt M, Lee TY, Bodmer D, Hoenselaar E, Hendriks-Cornelissen SJ, Tsui WY, Kong CK, Brunner HG, van Kessel AG, Yuen ST, van Krieken JH, Leung SY, Hoogerbrugge N (2009) Heritable somatic methylation and inactivation of MSH2 in families with Lynch syndrome due to deletion of the 3′ exons of TACSTD1. Nat Genet 41:112–117

    CAS  PubMed  Google Scholar 

  • Llosa NJ, Cruise M, Tam A, Wick EC, Hechenbleikner EM, Taube JM, Blosser L, Fan H, Wang H, Luber B, Zhang M, Papadopoulos N, Kinzler KW, Vogelstein B, Sears CL, Anders RA, Pardoll DM, Housseau F (2015) The vigorous immune microenvironment of microsatellite instable colon cancer is balanced by multiple counter-inhibitory checkpoints. Cancer Discov 5:43–51

    CAS  PubMed  Google Scholar 

  • Lopez-Serra P, Esteller M (2012) DNA methylation-associated silencing of tumor-suppressor microRNAs in cancer. Oncogene 31:1609–1622

    PubMed Central  CAS  PubMed  Google Scholar 

  • Lu J, Getz G, Miska EA, Alvarez-Saavedra E, Lamb J, Peck D, Sweet-Cordero A, Ebert BL, Mak RH, Ferrando AA, Downing JR, Jacks T, Horvitz HR, Golub TR (2005) MicroRNA expression profiles classify human cancers. Nature 435:834–838

    CAS  PubMed  Google Scholar 

  • Malkhosyan S, Rampino N, Yamamoto H, Perucho M (1996) Frameshift mutator mutations. Nature 382:499–500

    CAS  PubMed  Google Scholar 

  • Malkhosyan SR, Yamamoto H, Piao Z, Perucho M (2000) Late onset and high incidence of colon cancer of the mutator phenotype with hypermethylated hMLH1 gene in women. Gastroenterology 119:598

    CAS  PubMed  Google Scholar 

  • Mardis ER (2011) A decade’s perspective on DNA sequencing technology. Nature 470:198–203

    CAS  PubMed  Google Scholar 

  • Markowitz SD, Wang J, Myeroff L, Parsons R, Sun L, Lutterbaugh J, Fan RS, Zborowska E, Kinzler KW, Vogelstein B et al (1995) Inactivation of the type II TGF-β receptor in colon cancer cells with microsatellite instability. Science 268:1336–1338

    CAS  PubMed  Google Scholar 

  • Martens-Uzunova ES, Olvedy M, Jenster G (2013) Beyond microRNA-novel RNAs derived from small non-coding RNA and their implication in cancer. Cancer Lett 340:201–211

    CAS  PubMed  Google Scholar 

  • Martin SA, Lord CJ, Ashworth A (2010) Therapeutic targeting of the DNA mismatch repair pathway. Clin Cancer Res 16:5107–5113

    CAS  PubMed  Google Scholar 

  • Mazzolini R, Rodrigues P, Bazzocco S, Dopeso H, Ferreira AM, Mateo-Lozano S, Andretta E, Woerner SM, Alazzouzi H, Landolfi S, Hernandez-Losa J, Macaya I, Suzuki H, Ramón y Cajal S, Mooseker MS, Mariadason JM, Gebert J, Hofstra RM, Reventós J, Yamamoto H, Schwartz S Jr, Arango D (2013) Brush border myosin Ia inactivation in gastric but not endometrial tumors. Int J Cancer 132:1790–1799

    CAS  PubMed  Google Scholar 

  • McPherson LA, Shen Y, Ford JM (2014) Poly (ADP-ribose) polymerase inhibitor LT-626: sensitivity correlates with MRE11 mutations and synergizes with platinums and irinotecan in colorectal cancer cells. Cancer Lett 343:217–223

    CAS  PubMed  Google Scholar 

  • Melo SA, Esteller M (2011a) A precursor microRNA in a cancer cell nucleus: get me out of here! Cell Cycle 10:922–925

    PubMed Central  CAS  PubMed  Google Scholar 

  • Melo SA, Esteller M (2011b) Dysregulation of microRNAs in cancer: playing with fire. FEBS Lett 585:2087–2099

    CAS  PubMed  Google Scholar 

  • Melo SA, Ropero S, Moutinho C, Aaltonen LA, Yamamoto H, Calin GA, Rossi S, Fernandez AF, Carneiro F, Oliveira C, Ferreira B, Liu CG, Villanueva A, Capella G, Schwartz S Jr, Shiekhattar R, Esteller M (2009) A TARBP2 mutation in human cancer impairs microRNA processing and DICER1 function. Nat Genet 41:365–370

    CAS  PubMed  Google Scholar 

  • Melo SA, Moutinho C, Ropero S, Calin GA, Rossi S, Spizzo R, Fernandez AF, Davalos V, Villanueva A, Montoya G, Yamamoto H, Schwartz S Jr, Esteller M (2010) A genetic defect in exportin-5 traps precursor microRNAs in the nucleus of cancer cells. Cancer Cell 18:303–315

    CAS  PubMed  Google Scholar 

  • Melo S, Villanueva A, Moutinho C, Davalos V, Spizzo R, Ivan C, Rossi S, Setien F, Casanovas O, Simo-Riudalbas L, Carmona J, Carrere J, Vidal A, Aytes A, Puertas S, Ropero S, Kalluri R, Croce CM, Calin GA, Esteller M (2011) Small molecule enoxacin is a cancer-specific growth inhibitor that acts by enhancing TAR RNA-binding protein 2-mediated microRNA processing. Proc Natl Acad Sci USA 108:4394–4399

    PubMed Central  CAS  PubMed  Google Scholar 

  • Meyerson M, Gabriel S, Getz G (2010) Advances in understanding cancer genomes through second-generation sequencing. Nat Rev Genet 11:685–696

    CAS  PubMed  Google Scholar 

  • Mitchell PS, Parkin RK, Kroh EM, Fritz BR, Wyman SK, Pogosova-Agadjanyan EL, Peterson A, Noteboom J, O’Briant KC, Allen A, Lin DW, Urban N, Drescher CW, Knudsen BS, Stirewalt DL, Gentleman R, Vessella RL, Nelson PS, Martin DB, Tewari M (2008) Circulating microRNAs as stable blood-based markers for cancer detection. Proc Natl Acad Sci USA 105:10513–10518

    PubMed Central  CAS  PubMed  Google Scholar 

  • Miyakura Y, Sugano K, Akasu T, Yoshida T, Maekawa M, Saitoh S, Sasaki H, Nomizu T, Konishi F, Fujita S, Moriya Y, Nagai H (2004) Extensive but hemiallelic methylation of the hMLH1 promoter region in early-onset sporadic colon cancers with microsatellite instability. Clin Gastroenterol Hepatol 2:147–156

    CAS  PubMed  Google Scholar 

  • Moorcraft SY, Chau I, Peckitt C, Cunningham D, Rao S, Yim KL, Walther A, Jackson CG, Stamp G, Webb J, Smith G, Gillbanks A, Swanton C (2013) Patupilone in patients with pretreated metastatic/locally recurrent colorectal cancer: results of the Phase II CINATRA trial. Invest New Drugs 31:1339–1344

    CAS  PubMed  Google Scholar 

  • Morandi L, de Biase D, Visani M, Monzoni A, Tosi A, Brulatti M, Turchetti D, Baccarini P, Tallini G, Pession A (2012) T([20]) repeat in the 3′-untranslated region of the MT1X gene: a marker with high sensitivity and specificity to detect microsatellite instability in colorectal cancer. Int J Colorectal Dis 27:647–656

    PubMed  Google Scholar 

  • Mori Y, Selaru FM, Sato F, Yin J, Simms LA, Xu Y, Olaru A, Deacu E, Wang S, Taylor JM, Young J, Leggett B, Jass JR, Abraham JM, Shibata D, Meltzer SJ (2003) The impact of microsatellite instability on the molecular phenotype of colorectal tumors. Cancer Res 63:4577–4582

    CAS  PubMed  Google Scholar 

  • Nagarajan N, Bertrand D, Hillmer AM, Zang ZJ, Yao F, Jacques PE, Teo AS, Cutcutache I, Zhang Z, Lee WH, Sia YY, Gao S, Ariyaratne PN, Ho A, Woo XY, Veeravali L, Ong CK, Deng N, Desai KV, Khor CC, Hibberd ML, Shahab A, Rao J, Wu M, Teh M, Zhu F, Chin SY, Pang B, So JB, Bourque G, Soong R, Sung WK, Tean Teh B, Rozen S, Ruan X, Yeoh KG, Tan PB, Ruan Y (2012) Whole-genome reconstruction and mutational signatures in gastric cancer. Genome Biol 13:R115

    PubMed Central  PubMed  Google Scholar 

  • Nagasaka T, Rhees J, Kloor M, Gebert J, Naomoto Y, Boland CR, Goel A (2010) Somatic hypermethylation of MSH2 is a frequent event in Lynch Syndrome colorectal cancers. Cancer Res 70:3098–3108

    PubMed Central  CAS  PubMed  Google Scholar 

  • Nosho K, Igarashi H, Nojima M, Ito M, Maruyama R, Yoshii S, Naito T, Sukawa Y, Mikami M, Sumioka W, Yamamoto E, Kurokawa S, Adachi Y, Takahashi H, Okuda H, Kusumi T, Hosokawa M, Fujita M, Hasegawa T, Okita K, Hirata K, Suzuki H, Yamamoto H, Shinomura Y (2014) Association of microRNA-31 with BRAF mutation, colorectal cancer survival and serrated pathway. Carcinogenesis 35:776–783

    CAS  PubMed  Google Scholar 

  • Ogino S, Kawasaki T, Kirkner GJ, Loda M, Fuchs CS (2006) CpG island methylator phenotype-low (CIMP-low) in colorectal cancer: possible associations with male sex and KRAS mutations. J Mol Diagn 8:582–588

    PubMed Central  CAS  PubMed  Google Scholar 

  • Oliveira C, Pinto M, Duval A, Brennetot C, Domingo E, Espín E, Armengol M, Yamamoto H, Hamelin R, Seruca R, Schwartz S Jr (2003) BRAF mutations characterize colon but not gastric cancer with mismatch repair deficiency. Oncogene 22:9192–9196

    CAS  PubMed  Google Scholar 

  • Oliveira C, Westra JL, Arango D, Ollikainen M, Domingo E, Ferreira A, Velho S, Niessen R, Lagerstedt K, Alhopuro P, Laiho P, Veiga I, Teixeira MR, Ligtenberg M, Kleibeuker JH, Sijmons RH, Plukker JT, Imai K, Lage P, Hamelin R, Albuquerque C, Schwartz S Jr, Lindblom A, Peltomaki P, Yamamoto H, Aaltonen LA, Seruca R, Hofstra RM (2004) Distinct patterns of KRAS mutations in colorectal carcinomas according to germline mismatch repair defects and hMLH1 methylation status. Hum Mol Genet 13:2303–2311

    CAS  PubMed  Google Scholar 

  • Ollikainen M, Hannelius U, Lindgren CM, Abdel-Rahman WM, Kere J, Peltomäki P (2007) Mechanisms of inactivation of MLH1 in hereditary nonpolyposis colorectal carcinoma: a novel approach. Oncogene 26:4541–4549

    CAS  PubMed  Google Scholar 

  • Otani K, Li X, Arakawa T, Chan FK, Yu J (2013) Epigenetic-mediated tumor suppressor genes as diagnostic or prognostic biomarkers in gastric cancer. Expert Rev Mol Diagn 13:445–455

    CAS  PubMed  Google Scholar 

  • Papagiorgis P (2013) Colorectal cancer: dichotomous or continuum model? Perhaps, a combination of both. Gut 62:1519–1520

    PubMed  Google Scholar 

  • Pardoll DM (2012) The blockade of immune checkpoints in cancer immunotherapy. Nat Rev Cancer 12:252–264

    CAS  PubMed  Google Scholar 

  • Patel LR, Nykter M, Chen K, Zhang W (2013) Cancer genome sequencing: understanding malignancy as a disease of the genome, its conformation, and its evolution. Cancer Lett 340:152–160

    CAS  PubMed  Google Scholar 

  • Perucho M (1996) Microsatellite instability: the mutator that mutates the other mutator. Nat Med 2:630–631

    CAS  PubMed  Google Scholar 

  • Perucho M (1999) Correspondence re: Boland CR et al. (1998) A National Cancer Institute workshop on microsatellite instability for cancer detection and familial predisposition: development of international criteria for the determination of microsatellite instability in colorectal cancer. Cancer Res 59:249–253

    CAS  PubMed  Google Scholar 

  • Perucho M (2003) Tumors with microsatellite instability: many mutations, targets and paradoxes. Oncogene 22:2223–2235

    CAS  PubMed  Google Scholar 

  • Phillips SM, Banerjea A, Feakins R, Li SR, Bustin SA, Dorudi S (2004) Tumour-infiltrating lymphocytes in colorectal cancer with microsatellite instability are activated and cytotoxic. Br J Surg 91:469–475

    CAS  PubMed  Google Scholar 

  • Pleasance ED, Cheetham RK, Stephens PJ, McBride DJ, Humphray SJ, Greenman CD, Varela I, Lin ML, Ordóñez GR, Bignell GR et al (2010) A comprehensive catalogue of somatic mutations from a human cancer genome. Nature 463:191–196

    PubMed Central  CAS  PubMed  Google Scholar 

  • Popat S, Hubner R, Houlston RS (2005) Systematic review of microsatellite instability and colorectal cancer prognosis. J Clin Oncol 23:609–618

    CAS  PubMed  Google Scholar 

  • Poulogiannis G, Frayling IM, Arends MJ (2010) DNA mismatch repair deficiency in sporadic colorectal cancer and Lynch syndrome. Histopathology 56:167–179

    PubMed  Google Scholar 

  • Prat J, Gallardo A, Cuatrecasas M, Catasus L (2007) Endometrial carcinoma: pathology and genetics. Pathology 39:72–87

    CAS  PubMed  Google Scholar 

  • Qu Y, Dang S, Hou P (2013) Gene methylation in gastric cancer. Clin Chim Acta 424:53–65

    CAS  PubMed  Google Scholar 

  • Rajagopalan H, Bardelli A, Lengauer C, Kinzler KW, Vogelstein B, Velculescu VE (2002) Tumorigenesis: RAF/RAS oncogenes and mismatch-repair status. Nature 418:934

    CAS  PubMed  Google Scholar 

  • Rampino N, Yamamoto H, Ionov Y, Li Y, Sawai H, Reed JC, Perucho M (1997) Somatic framesfhift mutations in the BAX gene in colon cancers of the microsatellite mutator phenotype. Science 275:967–969

    CAS  PubMed  Google Scholar 

  • Rex DK, Ahnen DJ, Baron JA, Batts KP, Burke CA, Burt RW, Goldblum JR, Guillem JG, Kahi CJ, Kalady MF, O’Brien MJ, Odze RD, Ogino S, Parry S, Snover DC, Torlakovic EE, Wise PE, Young J, Church J (2012) Serrated lesions of the colorectum: review and recommendations from an expert panel. Am J Gastroenterol 107:1315–1329

    PubMed Central  PubMed  Google Scholar 

  • Ribic CM, Sargent DJ, Moore MJ, Thibodeau SN, French AJ, Goldberg RM, Hamilton SR, Laurent-Puig P, Gryfe R, Shepherd LE, Tu D, Redston M, Gallinger S (2003) Tumor microsatellite-instability status as a predictor of benefit from fluorouracil-based adjuvant chemotherapy for colon cancer. N Engl J Med 349:247–257

    PubMed Central  CAS  PubMed  Google Scholar 

  • Rodriguez-Bigas MA, Boland CR, Hamilton SR, Henson DE, Jass JR, Khan PM, Lynch H, Perucho M, Smyrk T, Sobin L, Srivastava S (1997) A National Cancer Institute Workshop on Hereditary Nonpolyposis Colorectal Cancer Syndrome: meeting highlights and Bethesda guidelines. J Natl Cancer Inst 89:1758–1762

    CAS  PubMed  Google Scholar 

  • Ropero S, Fraga MF, Ballestar E, Hamelin R, Yamamoto H, Boix-Chornet M, Caballero R, Alaminos M, Setien F, Paz MF, Herranz M, Palacios J, Arango D, Orntoft TF, Aaltonen LA, Schwartz S Jr, Esteller M (2006) A truncating mutation of HDAC2 in human cancers confers resistance to histone deacetylase inhibition. Nat Genet 38:566–569

    CAS  PubMed  Google Scholar 

  • Rossi L, Bonmassar E, Faraoni I (2007) Modification of miR gene expression pattern in human colon cancer cells following exposure to 5-fluorouracil in vitro. Pharmacol Res 56:248–253

    CAS  PubMed  Google Scholar 

  • Schreiber RD, Old LJ, Smyth MJ (2011) Cancer immunoediting: integrating immunity’s role in cancer suppression and promotion. Science 331:1565–1570

    CAS  PubMed  Google Scholar 

  • Schwartz S Jr, Yamamoto H, Navarro M, Maestro M, Reventós J, Perucho M (1999) Frameshift mutations at mononucleotide repeats in caspase-5 and other target genes in endometrial and gastrointestinal cancer of the microsatellite mutator phenotype. Cancer Res 59:2995–3002

    CAS  PubMed  Google Scholar 

  • Sehgal R, Sheahan K, O’Connell PR, Hanly AM, Martin ST, Winter DC (2014) Lynch syndrome: an updated review. Genes (Basel) 5:497–507

    CAS  Google Scholar 

  • Shen L, Toyota M, Kondo Y, Lin E, Zhang L, Guo Y, Hernandez NS, Chen X, Ahmed S, Konishi K, Hamilton SR, Issa JP (2007) Integrated genetic and epigenetic analysis identifies three different subclasses of colon cancer. Proc Natl Acad Sci USA 104:18654–18659

    PubMed Central  CAS  PubMed  Google Scholar 

  • Shia J, Ellis NA, Paty PB, Nash GM, Qin J, Offit K, Zhang XM, Markowitz AJ, Nafa K, Guillem JG, Wong WD, Gerald WL, Klimstra DS (2003) Value of histopathology in predicting microsatellite instability in hereditary nonpolyposis colorectal cancer and sporadic colorectal cancer. Am J Surg Pathol 27:1407–1417

    PubMed  Google Scholar 

  • Sinicrope FA, Sargent DJ (2009) Clinical implications of microsatellite instability in sporadic colon cancers. Curr Opin Oncol 21:369–373

    PubMed Central  CAS  PubMed  Google Scholar 

  • Spring KJ, Spring KJ, Zhao ZZ, Karamatic R, Walsh MD, Whitehall VL, Pike T, Simms LA, Young J, James M, Montgomery GW, Appleyard M, Hewett D, Togashi K, Jass JR, Leggett BA (2006) High prevalence of sessile serrated adenomas with BRAF mutations: a prospective study of patients undergoing colonoscopy. Gastroenterology 131:1400–1407

    CAS  PubMed  Google Scholar 

  • Sukawa Y, Yamamoto H, Nosho K, Kunimoto H, Suzuki H, Adachi Y, Nakazawa M, Nobuoka T, Kawayama M, Mikami M, Matuno T, Hasegawa T, Hirata K, Imai K, Shinomura Y (2012) Clinicopathological and molecular correlates of HER2 expression, PIK3CA mutations and EBV infection involved in the PI3K-Akt pathway in gastric cancer. World J Gastroenterol 18:6577–6586

    PubMed Central  CAS  PubMed  Google Scholar 

  • Suraweera N, Duval A, Reperant M, Vaury C, Furlan D, Leroy K, Seruca R, Iacopetta B, Hamelin R (2002) Evaluation of tumor microsatellite instability using five quasimonomorphic mononucleotide repeats and pentaplex PCR. Gastroenterology 123:1804–1811

    CAS  PubMed  Google Scholar 

  • Susini T, Amunni G, Molino C, Carriero C, Rapi S, Branconi F, Marchionni M, Taddei G, Scarselli G (2007) Ten-year results of a prospective study on the prognostic role of ploidy in endometrial carcinoma: DNA aneuploidy identifies high-risk cases among the so-called ‘low-risk’ patients with well and moderately differentiated tumors. Cancer 109:882–890

    CAS  PubMed  Google Scholar 

  • Suzuki H, Yamamoto E, Maruyama R, Niinuma T, Kai M (2014) Biological significance of the CpG island methylator phenotype. Biochem Biophys Res Commun 455:35–42

    CAS  PubMed  Google Scholar 

  • Tahara T, Yamamoto E, Madireddi P, Suzuki H, Maruyama R, Chung W, Garriga J, Jelinek J, Yamano HO, Sugai T, Kondo Y, Toyota M, Issa JP, Estécio MR (2014a) Colorectal carcinomas with CpG island methylator phenotype 1 frequently contain mutations in chromatin regulators. Gastroenterology 146:530–538

    PubMed Central  CAS  PubMed  Google Scholar 

  • Tahara T, Yamamoto E, Suzuki H, Maruyama R, Chung W, Garriga J, Jelinek J, Yamano HO, Sugai T, An B, Shureiqi I, Toyota M, Kondo Y, Estécio MR, Issa JP (2014b) Fusobacterium in colonic flora and molecular features of colorectal carcinoma. Cancer Res 74:1311–1318

    PubMed Central  CAS  PubMed  Google Scholar 

  • Thibodeau S, Bren G, Schaid D (1993) Microsatellite instability in cancer of the proximal colon. Science 260:816–819

    CAS  PubMed  Google Scholar 

  • Thiel A, Heinonen M, Kantonen J, Gylling A, Lahtinen L, Korhonen M, Kytölä S, Mecklin JP, Orpana A, Peltomäki P, Ristimäki A (2013) BRAF mutation in sporadic colorectal cancer and Lynch syndrome. Virchows Arch 463:613–621

    CAS  PubMed  Google Scholar 

  • Tian S, Roepman P, Popovici V, Michaut M, Majewski I, Salazar R, Santos C, Rosenberg R, Nitsche U, Mesker WE, Bruin S, Tejpar S, Delorenzi M, Bernards R, Simon I (2012) A robust genomic signature for the detection of colorectal cancer patients with microsatellite instability phenotype and high mutation frequency. J Pathol 228:586–595

    PubMed Central  CAS  PubMed  Google Scholar 

  • Torlakovic E, Skovlund E, Snover DC, Torlakovic G, Nesland JM (2003) Morphologic reappraisal of serrated colorectal polyps. Am J Surg Pathol 27:65–81

    PubMed  Google Scholar 

  • Toyota M, Ohe-Toyota M, Ahuja N, Issa JP (2000) Distinct genetic profiles in colorectal tumors with or without the CpG island methylator phenotype. Proc Natl Acad Sci USA 97:710–715

    PubMed Central  CAS  PubMed  Google Scholar 

  • Tuupanen S, Hänninen UA, Kondelin J, von Nandelstadh P, Cajuso T, Gylfe AE, Katainen R, Tanskanen T, Ristolainen H, Böhm J, Mecklin JP, Järvinen H, Renkonen-Sinisalo L, Andersen CL, Taipale M, Taipale J, Vahteristo P, Lehti K, Pitkänen E, Aaltonen LA (2014) Identification of 33 candidate oncogenes by screening for base-specific mutations. Br J Cancer 111:1657–1662

    CAS  PubMed  Google Scholar 

  • Ulahannan D, Kovac MB, Mulholland PJ, Cazier JB, Tomlinson I (2013) Technical and implementation issues in using next-generation sequencing of cancers in clinical practice. Br J Cancer 109:827–835

    PubMed Central  CAS  PubMed  Google Scholar 

  • Valeri N, Gasparini P, Braconi C, Paone A, Lovat F, Fabbri M, Sumani KM, Alder H, Amadori D, Patel T, Nuovo GJ, Fishel R, Croce CM (2010a) MicroRNA-21 induces resistance to 5-fluorouracil by down-regulating human DNA MutS homolog 2 (hMSH2). Proc Natl Acad Sci USA 107:21098–21103

    PubMed Central  CAS  PubMed  Google Scholar 

  • Valeri N, Gasparini P, Fabbri M, Braconi C, Veronese A, Lovat F, Adair B, Vannini I, Fanini F, Bottoni A, Costinean S, Sandhu SK, Nuovo GJ, Alder H, Gafa R, Calore F, Ferracin M, Lanza G, Volinia S, Negrini M, McIlhatton MA, Amadori D, Fishel R, Croce CM (2010b) Modulation of mismatch repair and genomic stability by miR-155. Proc Natl Acad Sci USA 107:6982–6987

    PubMed Central  CAS  PubMed  Google Scholar 

  • van Kouwenhove M, Kedde M, Agami R (2011) MicroRNA regulation by RNA-binding proteins and its implications for cancer. Nat Rev Cancer 11:644–656

    PubMed  Google Scholar 

  • Vasen HF (2005) Clinical description of the Lynch syndrome [hereditary nonpolyposis colorectal cancer (HNPCC)]. Fam Cancer 4:219–225

    CAS  PubMed  Google Scholar 

  • Vasen HF, Boland CR (2005) Progress in genetic testing, classification, and identification of Lynch syndrome. JAMA 293:2028–2030

    CAS  PubMed  Google Scholar 

  • Vasen HF, Moslein G, Alonso A, Bernstein I, Bertario L, Blanco I, Burn J, Capella G, Engel C, Frayling I, Friedl W, Hes FJ, Hodgson S, Mecklin JP, Moller P, Nagengast FN, Parc Y, Renkonen-Sinisalo L, Sampson JR, Stormorken A, Wijnen J (2007) Guidelines for the clinical management of Lynch syndrome (HNPCC). J Med Genet 44:353–362

    PubMed Central  CAS  PubMed  Google Scholar 

  • Vilar E, Gruber SB (2010) Microsatellite instability in colorectal cancer—the stable evidence. Nat Rev Clin Oncol 7:153–162

    PubMed Central  CAS  PubMed  Google Scholar 

  • Vilar E, Bartnik CM, Stenzel SL, Raskin L, Ahn J, Moreno V, Mukherjee B, Iniesta MD, Morgan MA, Rennert G, Gruber SB (2011) MRE11 deficiency increases sensitivity to poly(ADP-ribose) polymerase inhibition in microsatellite unstable colorectal cancers. Cancer Res 71:2632–2642

    PubMed Central  CAS  PubMed  Google Scholar 

  • Viswanathan SR, Daley GQ (2010) Lin28: a microRNA regulator with a macro role. Cell 140:445–449

    CAS  PubMed  Google Scholar 

  • Vogelstein B, Papadopoulos N, Velculescu VE, Zhou S, Diaz LA Jr, Kinzler KW (2013) Cancer genome landscapes. Science 339:1546–1558

    PubMed Central  CAS  PubMed  Google Scholar 

  • Volinia S, Calin GA, Liu CG, Ambs S, Cimmino A, Petrocca F, Visone R, Iorio M, Roldo C, Ferracin M, Prueitt RL, Yanaihara N, Lanza G, Scarpa A, Vecchione A, Negrini M, Harris CC, Croce CM (2006) A microRNA expression signature of human solid tumors defines cancer gene targets. Proc Natl Acad Sci USA 103:2257–2261

    PubMed Central  CAS  PubMed  Google Scholar 

  • von Knebel Doeberitz M, Kloor M (2013) Towards a vaccine to prevent cancer in Lynch syndrome patients. Fam Cancer 12:307–312

    CAS  Google Scholar 

  • Wang K, Kan J, Yuen ST, Shi ST, Chu KM, Law S, Chan TL, Kan Z, Chan AS, Tsui WY, Lee SP, Ho SL, Chan AK, Cheng GH, Roberts PC, Rejto PA, Gibson NW, Pocalyko DJ, Mao M, Xu J, Leung SY (2011) Exome sequencing identifies frequent mutation of ARID1A in molecular subtypes of gastric cancer. Nat Genet 43:1219–1223

    CAS  PubMed  Google Scholar 

  • Woerner SM, Kloor M, Mueller A, Rueschoff J, Friedrichs N, Buettner R, Buzello M, Kienle P, Knaebel HP, Kunstmann E, Pagenstecher C, Schackert HK, Moslein G, Vogelsang H, von Knebel Doeberitz M, Gebert JF, German HNPCC Consortium (2005) Microsatellite instability of selective target genes in HNPCC-associated colon adenomas. Oncogene 24:2525–2535

    CAS  PubMed  Google Scholar 

  • Woerner SM, Benner A, Sutter C, Schiller M, Yuan YP, Keller G, Bork P, Doeberitz MK, Gebert JF (2003) Pathogenesis of DNA repair-deficient cancers: a statistical meta-analysis of putative Real Common Target genes. Oncogene 22:2226–2235

    CAS  PubMed  Google Scholar 

  • Woerner SM, Yuan YP, Benner A, Korff S, von Knebel Doeberitz M, Bork P (2010) SelTarbase, a database of human mononucleotide–microsatellite mutations and their potential impact to tumorigenesis and immunology. Nucl Acids Res 38:D682–D689

    PubMed Central  CAS  PubMed  Google Scholar 

  • Xuan J, Yu Y, Qing T, Guo L, Shi L (2013) Next-generation sequencing in the clinic: promises and challenges. Cancer Lett 340:284–295

    CAS  PubMed  Google Scholar 

  • Yamamoto H, Sawai H, Perucho M (1997) Frameshift somatic mutations in gastrointestinal cancer of the microsatellite mutator phenotype. Cancer Res 57:4420–4426

    CAS  PubMed  Google Scholar 

  • Yamamoto H, Sawai H, Weber TK, Rodriguez-Bigas MA, Perucho M (1998) Somatic frameshift mutations in DNA mismatch repair and proapoptosis genes in hereditary nonpolyposis colorectal cancer. Cancer Res 58:997–1003

    CAS  PubMed  Google Scholar 

  • Yamamoto H, Perez-Piteira J, Yoshida T, Terada M, Itoh F, Imai K, Perucho M (1999) Gastric cancers of the microsatellite mutator phenotype display characteristic genetic and clinical features. Gastroenterology 116:1348–1357

    CAS  PubMed  Google Scholar 

  • Yamamoto H, Gil J, Schwartz S Jr, Perucho M (2000) Frameshift mutations in Fas, Apaf-1, and Bcl-10 in gastrointestinal cancer of the microsatellite mutator phenotype. Cell Death Differ 7:238–239

    CAS  PubMed  Google Scholar 

  • Yamamoto H, Yamashita K, Perucho M (2001) Somatic mutation of the beta2-microglobulin gene associates with unfavorable prognosis in gastrointestinal cancer of the microsatellite mutator phenotype. Gastroenterology 120:1565–1567

    CAS  PubMed  Google Scholar 

  • Yamamoto H, Imai K, Perucho M (2003) Gastrointestinal cancer of the microsatellite mutator phenotype pathway. J Gastroenterol 37:153–163

    Google Scholar 

  • Yamamoto H, Adachi Y, Taniguchi H, Kunimoto H, Nosho K, Suzuki H, Shinomura Y (2012) The interrelationship between microsatellite instability and microRNA in gastrointestinal cancer. World J Gastroenterol 18:2745–2755

    PubMed Central  CAS  PubMed  Google Scholar 

  • Yamamoto H, Watanabe Y, Maehata T, Morita R, Yoshida Y, Oikawa R, Ishigooka S, Ozawa S, Matsuo Y, Hosoya K, Yamashita M, Taniguchi H, Nosho K, Suzuki H, Yasuda H, Shinomura Y, Itoh F (2014) An updated review of gastric cancer in the next-generation sequencing era: insights from bench to bedside and vice versa. World J Gastroenterol 20:3927–3937

    PubMed Central  CAS  PubMed  Google Scholar 

  • Yamauchi M, Lochhead P, Morikawa T, Huttenhower C, Chan AT, Giovannucci E, Fuchs C, Ogino S (2012) Colorectal cancer: a tale of two sides or a continuum? Gut 61:794–797

    PubMed Central  PubMed  Google Scholar 

  • Yoon K, Lee S, Han TS, Moon SY, Yun SM, Kong SH, Jho S, Choe J, Yu J, Lee HJ, Park JH, Kim HM, Lee SY, Park J, Kim WH, Bhak J, Yang HK, Kim SJ (2013) Comprehensive genome- and transcriptome-wide analyses of mutations associated with microsatellite instability in Korean gastric cancers. Genome Res 23:1109–1117

    PubMed Central  CAS  PubMed  Google Scholar 

  • Young J, Barker MA, Simms LA, Walsh MD, Biden KG, Buchanan D, Buttenshaw R, Whitehall VL, Arnold S, Jackson L, Kambara T, Spring KJ, Jenkins MA, Walker GJ, Hopper JL, Leggett BA, Jass JR (2005) Evidence for BRAF mutation and variable levels of microsatellite instability in a syndrome of familial colorectal cancer. Clin Gastroenterol Hepatol 3:254–263

    CAS  PubMed  Google Scholar 

  • Zang ZJ, Cutcutache I, Poon SL, Zhang SL, McPherson JR, Tao J, Rajasegaran V, Heng HL, Deng N, Gan A, Lim KH, Ong CK, Huang D, Chin SY, Tan IB, Ng CC, Yu W, Wu Y, Lee M, Wu J, Poh D, Wan WK, Rha SY, So J, Salto-Tellez M, Yeoh KG, Wong WK, Zhu YJ, Futreal PA, Pang B, Ruan Y, Hillmer AM, Bertrand D, Nagarajan N, Rozen S, Teh BT, Tan P (2012) Exome sequencing of gastric adenocarcinoma identifies recurrent somatic mutations in cell adhesion and chromatin remodeling genes. Nat Genet 44:570–574

    CAS  PubMed  Google Scholar 

  • Zhang J, Lindroos A, Ollila S, Russell A, Marra G, Mueller H, Peltomaki P, Plasilova M, Heinimann K (2006) Gene conversion is a frequent mechanism of inactivation of the wild-type allele in cancers from MLH1/MSH2 deletion carriers. Cancer Res 66:659–664

    CAS  PubMed  Google Scholar 

  • Zhang J, Ding L, Holmfeldt L, Wu G, Heatley SL, Payne-Turner D, Easton J, Chen X, Wang J, Rusch M et al (2012) The genetic basis of early T-cell precursor acute lymphoblastic leukaemia. Nature 481:157–163

    PubMed Central  CAS  PubMed  Google Scholar 

  • Zhang B, Wang J, Wang X, Zhu J, Liu Q, Shi Z, Chambers MC, Zimmerman LJ, Shaddox KF, Kim S, Davies SR, Wang S, Wang P, Kinsinger CR, Rivers RC, Rodriguez H, Townsend RR, Ellis MJ, Carr SA, Tabb DL, Coffey RJ, Slebos RJ, Liebler DC, NCI CPTAC (2014a) Proteogenomic characterization of human colon and rectal cancer. Nature 513:382–387

    PubMed Central  CAS  PubMed  Google Scholar 

  • Zhang H, Lin Y, Mañas A, Zhao Y, Denning MF, Ma L, Xiang J (2014b) BaxΔ2 promotes apoptosis through caspase-8 activation in microsatellite-unstable colon cancer. Mol Cancer Res 12:1225–1232

    CAS  PubMed  Google Scholar 

  • Zighelboim I, Goodfellow PJ, Gao F, Gibb RK, Powell MA, Rader JS, Mutch DG (2007) Microsatellite instability and epigenetic inactivation of MLH1 and outcome of patients with endometrial carcinomas of the endometrioid type. J Clin Oncol 25:2042–2048

    CAS  PubMed  Google Scholar 

  • Zouridis H, Deng N, Ivanova T, Zhu Y, Wong B, Huang D, Wu YH, Wu Y, Tan IB, Liem N, Gopalakrishnan V, Luo Q, Wu J, Lee M, Yong WP, Goh LK, Teh BT, Rozen S, Tan P (2012) Methylation subtypes and large-scale epigenetic alterations in gastric cancer. Sci Transl Med 4:156ra140

    PubMed  Google Scholar 

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Yamamoto, H., Imai, K. Microsatellite instability: an update. Arch Toxicol 89, 899–921 (2015). https://doi.org/10.1007/s00204-015-1474-0

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