Literature DB >> 28454847

Inherited mutations in DNA repair genes and cancer risk.

Nuria Romero-Laorden1, Elena Castro2.   

Abstract

Although most cancer cases are due to somatic mutations, up to 10% of cases are attributable to germline mutations. This inherited cancer predisposition is mostly due to the loss of function of suppressor genes rather than the activation of oncogenes. Defects in DNA repair genes are the genetic events most commonly involved in hereditary cancers. The implementation of high-throughput sequencing in diagnostic testing has uncovered new predisposition genes. Furthermore, for some tumor types these sequencing techniques have also unveiled a prevalence of germline mutations significantly higher than previous estimations. The clinical implications of many of these repair defects are yet to be defined. Further studies will need to be conducted to establish the most appropriated management of unaffected carriers that are likely to grow in numbers. On the contrary, the presence of DNA repair defects provides a unique opportunity for the development of treatments that take advantage of a tumor feature. In this review article, we summarize not only the most common syndromes linked to DNA repair defects but also less known entities. We address the underlying genetics and the clinical implications of each DNA repair defect as well as the current recommendations for cancer surveillance.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  DNA repair; Germline mutations; Hereditary breast and ovarian cancer syndrome; Hereditary cancer syndromes; Lynch syndrome

Year:  2017        PMID: 28454847     DOI: 10.1016/j.currproblcancer.2017.02.009

Source DB:  PubMed          Journal:  Curr Probl Cancer        ISSN: 0147-0272            Impact factor:   3.187


  14 in total

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Review 2.  Genetic intersection of male infertility and cancer.

Authors:  Liina Nagirnaja; Kenneth I Aston; Donald F Conrad
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3.  The Perils of Single-Site Genetic Testing for Hereditary Cancer Syndromes in the Era of Next-Generation Sequencing.

Authors:  Nicole Casasanta; Elizabeth Stark; Allison McHenry; Tara Biagi; Rebecca Kaltman
Journal:  Oncologist       Date:  2018-02-14

4.  Genetic modifiers of radon-induced lung cancer risk: a genome-wide interaction study in former uranium miners.

Authors:  Albert Rosenberger; Rayjean J Hung; David C Christiani; Neil E Caporaso; Geoffrey Liu; Stig E Bojesen; Loic Le Marchand; Ch A Haiman; Demetrios Albanes; Melinda C Aldrich; Adonina Tardon; G Fernández-Tardón; Gad Rennert; John K Field; B Kiemeney; Philip Lazarus; Aage Haugen; Shanbeh Zienolddiny; Stephen Lam; Matthew B Schabath; Angeline S Andrew; Hans Brunnsstöm; Gary E Goodman; Jennifer A Doherty; Chu Chen; M Dawn Teare; H-Erich Wichmann; Judith Manz; Angela Risch; Thomas R Muley; Mikael Johansson; Paul Brennan; Maria Teresa Landi; Christopher I Amos; Beate Pesch; Georg Johnen; Thomas Brüning; Heike Bickeböller; Maria Gomolka
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7.  Efficacy of Radium-223 in Bone-metastatic Castration-resistant Prostate Cancer with and Without Homologous Repair Gene Defects.

Authors:  Pedro Isaacsson Velho; Fahad Qazi; Sayeedul Hassan; Michael A Carducci; Samuel R Denmeade; Mark C Markowski; Daniel L Thorek; Theodore L DeWeese; Daniel Y Song; Phuoc T Tran; Mario A Eisenberger; Emmanuel S Antonarakis
Journal:  Eur Urol       Date:  2018-10-04       Impact factor: 20.096

Review 8.  Genomic Instability in Multiple Myeloma: A "Non-Coding RNA" Perspective.

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Journal:  Cancers (Basel)       Date:  2021-04-28       Impact factor: 6.639

9.  Hereditary cancer genes are highly susceptible to splicing mutations.

Authors:  Christy L Rhine; Kamil J Cygan; Rachel Soemedi; Samantha Maguire; Michael F Murray; Sean F Monaghan; William G Fairbrother
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Review 10.  A Survey of Reported Disease-Related Mutations in the MRE11-RAD50-NBS1 Complex.

Authors:  Samiur Rahman; Marella D Canny; Tanner A Buschmann; Michael P Latham
Journal:  Cells       Date:  2020-07-13       Impact factor: 6.600

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