Literature DB >> 29635281

Germline genetic variants in somatically significantly mutated genes in tumors are associated with renal cell carcinoma risk and outcome.

Xiang Shu1, Jianchun Gu1,2, Maosheng Huang1, Nizar M Tannir3, Surena F Matin4, Jose A Karam4, Christopher G Wood4, Xifeng Wu1, Yuanqing Ye1.   

Abstract

Genome-wide association studies (GWAS) have identified 13 susceptibility loci for renal cell carcinoma (RCC). Additional genetic loci of risk remain to be explored. Moreover, the role of germline genetic variants in predicting RCC recurrence and overall survival (OS) is less understood. In this study, we focused on 127 significantly mutated genes from The Cancer Genome Atlas (TCGA) Pan-Cancer Analysis across 12 major cancer sites to identify potential genetic variants predictive of RCC risk and clinical outcomes. In a three-phase design with a total of 2657 RCC cases and 5315 healthy controls, two single nucleotide polymorphisms (SNPs) that map to PIK3CG (rs6466135:A, ORmeta = 0.85, 95% CI = 0.77-0.94, Pmeta = 1.4 × 10-3) and ATM (rs611646:T, ORmeta = 1.17, 95% CI = 1.05-1.31, Pmeta = 3.5 × 10-3) were significantly associated with RCC risk. With respect to RCC recurrence and OS, two separate datasets with a total of 661 stages I-III RCC patients (discovery: 367; validation: 294) were analyzed. The most significant association was observed for rs10932384:C (ERBB4) with both outcomes (recurrence: HRmeta = 0.52, 95% CI = 0.39-0.68, Pmeta = 3.81 × 10-6; OS: HRmeta = 0.50, 95% CI = 0.37-0.67, Pmeta = 6.00 × 10-6). In addition, six SNPs were significantly associated with either RCC recurrence or OS but not both (Pmeta < 0.01). Rs10932384:C was significantly correlated with mutation frequency of ERBB4 in clear cell RCC (ccRCC) patients (P = 0.003, Fisher's exact test). Cis-eQTL was observed for several SNPs in blood/transformed fibroblasts but not in RCC tumor tissues. In summary, we identified promising genetic predictors of recurrence and OS among RCC patients with localized disease.

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Year:  2018        PMID: 29635281      PMCID: PMC5972595          DOI: 10.1093/carcin/bgy021

Source DB:  PubMed          Journal:  Carcinogenesis        ISSN: 0143-3334            Impact factor:   4.944


  43 in total

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Authors:  Moubin Lin; Liren Zhang; Michelle A T Hildebrandt; Maosheng Huang; Xifeng Wu; Yuanqing Ye
Journal:  Oncotarget       Date:  2017-08-24

2.  BAP1 inhibits the ER stress gene regulatory network and modulates metabolic stress response.

Authors:  Fangyan Dai; Hyemin Lee; Yilei Zhang; Li Zhuang; Hui Yao; Yuanxin Xi; Zhen-Dong Xiao; M James You; Wei Li; Xiaoping Su; Boyi Gan
Journal:  Proc Natl Acad Sci U S A       Date:  2017-03-08       Impact factor: 11.205

3.  The polymorphisms in the VHL and HIF1A genes are associated with the prognosis but not the development of renal cell carcinoma.

Authors:  C Qin; Q Cao; X Ju; M Wang; X Meng; J Zhu; F Yan; P Li; Q Ding; J Chen; M Gu; W Zhang; C Yin; Z Zhang
Journal:  Ann Oncol       Date:  2011-07-21       Impact factor: 32.976

4.  Associations of single nucleotide polymorphisms in the vascular endothelial growth factor gene with the characteristics and prognosis of renal cell carcinomas.

Authors:  Yoshihisa Kawai; Shigeru Sakano; Yoshihito Korenaga; Satoshi Eguchi; Katsusuke Naito
Journal:  Eur Urol       Date:  2007-01-30       Impact factor: 20.096

5.  Effects on survival of BAP1 and PBRM1 mutations in sporadic clear-cell renal-cell carcinoma: a retrospective analysis with independent validation.

Authors:  Payal Kapur; Samuel Peña-Llopis; Alana Christie; Leah Zhrebker; Andrea Pavía-Jiménez; W Kimryn Rathmell; Xian-Jin Xie; James Brugarolas
Journal:  Lancet Oncol       Date:  2013-01-16       Impact factor: 41.316

6.  Genome-wide association study of renal cell carcinoma identifies two susceptibility loci on 2p21 and 11q13.3.

Authors:  Mark P Purdue; Mattias Johansson; Diana Zelenika; Jorge R Toro; Ghislaine Scelo; Lee E Moore; Egor Prokhortchouk; Xifeng Wu; Lambertus A Kiemeney; Valerie Gaborieau; Kevin B Jacobs; Wong-Ho Chow; David Zaridze; Vsevolod Matveev; Jan Lubinski; Joanna Trubicka; Neonila Szeszenia-Dabrowska; Jolanta Lissowska; Péter Rudnai; Eleonora Fabianova; Alexandru Bucur; Vladimir Bencko; Lenka Foretova; Vladimir Janout; Paolo Boffetta; Joanne S Colt; Faith G Davis; Kendra L Schwartz; Rosamonde E Banks; Peter J Selby; Patricia Harnden; Christine D Berg; Ann W Hsing; Robert L Grubb; Heiner Boeing; Paolo Vineis; Françoise Clavel-Chapelon; Domenico Palli; Rosario Tumino; Vittorio Krogh; Salvatore Panico; Eric J Duell; José Ramón Quirós; Maria-José Sanchez; Carmen Navarro; Eva Ardanaz; Miren Dorronsoro; Kay-Tee Khaw; Naomi E Allen; H Bas Bueno-de-Mesquita; Petra H M Peeters; Dimitrios Trichopoulos; Jakob Linseisen; Börje Ljungberg; Kim Overvad; Anne Tjønneland; Isabelle Romieu; Elio Riboli; Anush Mukeria; Oxana Shangina; Victoria L Stevens; Michael J Thun; W Ryan Diver; Susan M Gapstur; Paul D Pharoah; Douglas F Easton; Demetrius Albanes; Stephanie J Weinstein; Jarmo Virtamo; Lars Vatten; Kristian Hveem; Inger Njølstad; Grethe S Tell; Camilla Stoltenberg; Rajiv Kumar; Kvetoslava Koppova; Olivier Cussenot; Simone Benhamou; Egbert Oosterwijk; Sita H Vermeulen; Katja K H Aben; Saskia L van der Marel; Yuanqing Ye; Christopher G Wood; Xia Pu; Alexander M Mazur; Eugenia S Boulygina; Nikolai N Chekanov; Mario Foglio; Doris Lechner; Ivo Gut; Simon Heath; Hélène Blanche; Amy Hutchinson; Gilles Thomas; Zhaoming Wang; Meredith Yeager; Joseph F Fraumeni; Konstantin G Skryabin; James D McKay; Nathaniel Rothman; Stephen J Chanock; Mark Lathrop; Paul Brennan
Journal:  Nat Genet       Date:  2010-12-05       Impact factor: 38.330

7.  Germline BAP1 mutations predispose to malignant mesothelioma.

Authors:  Joseph R Testa; Mitchell Cheung; Jianming Pei; Jennifer E Below; Yinfei Tan; Eleonora Sementino; Nancy J Cox; A Umran Dogan; Harvey I Pass; Sandra Trusa; Mary Hesdorffer; Masaki Nasu; Amy Powers; Zeyana Rivera; Sabahattin Comertpay; Mika Tanji; Giovanni Gaudino; Haining Yang; Michele Carbone
Journal:  Nat Genet       Date:  2011-08-28       Impact factor: 38.330

8.  BAP1 loss defines a new class of renal cell carcinoma.

Authors:  Samuel Peña-Llopis; Silvia Vega-Rubín-de-Celis; Arnold Liao; Nan Leng; Andrea Pavía-Jiménez; Shanshan Wang; Toshinari Yamasaki; Leah Zhrebker; Sharanya Sivanand; Patrick Spence; Lisa Kinch; Tina Hambuch; Suneer Jain; Yair Lotan; Vitaly Margulis; Arthur I Sagalowsky; Pia Banerji Summerour; Wareef Kabbani; S W Wendy Wong; Nick Grishin; Marc Laurent; Xian-Jin Xie; Christian D Haudenschild; Mark T Ross; David R Bentley; Payal Kapur; James Brugarolas
Journal:  Nat Genet       Date:  2012-06-10       Impact factor: 38.330

9.  BAP1 regulates IP3R3-mediated Ca2+ flux to mitochondria suppressing cell transformation.

Authors:  Angela Bononi; Carlotta Giorgi; Simone Patergnani; David Larson; Kaitlyn Verbruggen; Mika Tanji; Laura Pellegrini; Valentina Signorato; Federica Olivetto; Sandra Pastorino; Masaki Nasu; Andrea Napolitano; Giovanni Gaudino; Paul Morris; Greg Sakamoto; Laura K Ferris; Alberto Danese; Andrea Raimondi; Carlo Tacchetti; Shafi Kuchay; Harvey I Pass; El Bachir Affar; Haining Yang; Paolo Pinton; Michele Carbone
Journal:  Nature       Date:  2017-06-14       Impact factor: 49.962

10.  Mutational landscape and significance across 12 major cancer types.

Authors:  Cyriac Kandoth; Michael D McLellan; Fabio Vandin; Kai Ye; Beifang Niu; Charles Lu; Mingchao Xie; Qunyuan Zhang; Joshua F McMichael; Matthew A Wyczalkowski; Mark D M Leiserson; Christopher A Miller; John S Welch; Matthew J Walter; Michael C Wendl; Timothy J Ley; Richard K Wilson; Benjamin J Raphael; Li Ding
Journal:  Nature       Date:  2013-10-17       Impact factor: 49.962

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  8 in total

1.  Two synchronous malignancies: nodular melanoma and renal cell carcinoma in a patient with an underlying germline BRCA2 mutation.

Authors:  Anson Snow; Charite Ricker; Gino K In
Journal:  BMJ Case Rep       Date:  2019-06-20

Review 2.  Germline Variants Impact Somatic Events during Tumorigenesis.

Authors:  Johnny R Ramroop; Madelyn M Gerber; Amanda Ewart Toland
Journal:  Trends Genet       Date:  2019-05-22       Impact factor: 11.639

3.  Overview of Research on Germline Genetic Variation in Immune Genes and Cancer Outcomes.

Authors:  Brittany N Chao; Danielle M Carrick; Kelly K Filipski; Stefanie A Nelson
Journal:  Cancer Epidemiol Biomarkers Prev       Date:  2022-03-01       Impact factor: 4.090

4.  Disease-related mutations in PI3Kγ disrupt regulatory C-terminal dynamics and reveal a path to selective inhibitors.

Authors:  Zied Gaieb; Kaelin D Fleming; Manoj K Rathinaswamy; Chiara Borsari; Noah J Harris; Brandon E Moeller; Matthias P Wymann; Rommie E Amaro; John E Burke
Journal:  Elife       Date:  2021-03-04       Impact factor: 8.140

Review 5.  Function, Regulation and Biological Roles of PI3Kγ Variants.

Authors:  Bernd Nürnberg; Sandra Beer-Hammer
Journal:  Biomolecules       Date:  2019-08-30

6.  The Modulatory Properties of Astragalus membranaceus Treatment on Triple-Negative Breast Cancer: An Integrated Pharmacological Method.

Authors:  Cun Liu; Kejia Wang; Jing Zhuang; Chundi Gao; Huayao Li; Lijuan Liu; Fubin Feng; Chao Zhou; Kang Yao; Laijun Deng; Lu Wang; Jia Li; Changgang Sun
Journal:  Front Pharmacol       Date:  2019-10-14       Impact factor: 5.810

7.  Determination of Exosome Mitochondrial DNA as a Biomarker of Renal Cancer Aggressiveness.

Authors:  Elena Arance; Viviana Ramírez; Alejandro Rubio-Roldan; Francisco M Ocaña-Peinado; Catalina Romero-Cachinero; Ana Belén Jódar-Reyes; Fernando Vazquez-Alonso; Luis Javier Martinez-Gonzalez; Maria Jesus Alvarez-Cubero
Journal:  Cancers (Basel)       Date:  2021-12-31       Impact factor: 6.639

Review 8.  Germline Variants That Affect Tumor Progression.

Authors:  Ajay Chatrath; Aakrosh Ratan; Anindya Dutta
Journal:  Trends Genet       Date:  2020-11-14       Impact factor: 11.639

  8 in total

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