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Genomic Complexity Profiling Reveals That HORMAD1 Overexpression Contributes to Homologous Recombination Deficiency in Triple-Negative Breast Cancers
Author(s) -
Johnathan Watkins,
Daniel Weekes,
Vandna Shah,
Patrycja Gazińska,
Shalaka Joshi,
Bhavna Sidhu,
Cheryl Gillett,
Sarah E. Pinder,
Fabio Vanoli,
Maria Jasin,
Markus Mayrhofer,
Anders Isaksson,
Maggie C.U. Cheang,
Hasan Mirza,
Jessica Frankum,
Christopher J. Lord,
Alan Ashworth,
Shaveta Vinayak,
James M. Ford,
Melinda L. Telli,
Anita Grigoriadis,
Andrew Tutt
Publication year - 2015
Publication title -
cancer discovery
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.795
H-Index - 163
eISSN - 2159-8290
pISSN - 2159-8274
DOI - 10.1158/2159-8290.cd-14-1092
Subject(s) - homologous recombination , rad51 , genome instability , biology , dna repair , triple negative breast cancer , breast cancer , cancer research , gene expression profiling , parp inhibitor , gene , genetics , dna damage , gene expression , cancer , dna , poly adp ribose polymerase , polymerase
Triple-negative breast cancers (TNBC) are characterized by a wide spectrum of genomic alterations, some of which might be caused by defects in DNA repair processes such as homologous recombination (HR). Despite this understanding, associating particular patterns of genomic instability with response to therapy has been challenging. Here, we show that allelic-imbalanced copy-number aberrations (AiCNA) are more prevalent in TNBCs that respond to platinum-based chemotherapy, thus providing a candidate predictive biomarker for this disease. Furthermore, we show that a high level of AiCNA is linked with elevated expression of a meiosis-associated gene, HORMAD1. Elevated HORMAD1 expression suppresses RAD51-dependent HR and drives the use of alternative forms of DNA repair, the generation of AiCNAs, as well as sensitizing cancer cells to HR-targeting therapies. Our data therefore provide a mechanistic association between HORMAD1 expression, a specific pattern of genomic instability, and an association with response to platinum-based chemotherapy in TNBC.

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