Whole-Genome Sequencing Reveals Breast Cancers with Mismatch Repair Deficiency
Helen Davies1, Sandro Morganella1, Colin A Purdie2
1Wellcome Trust Sanger Institute, Hinxton, United Kingdom.
Abstract:
Mismatch repair (MMR)-deficient cancers have been discovered to be highly responsive to immune therapies such as PD-1 checkpoint blockade, making their definition in patients, where they may be relatively rare, paramount for treatment decisions. In this study, we utilized patterns of mutagenesis known as mutational signatures, which are imprints of the mutagenic processes associated with MMR deficiency, to identify MMR-deficient breast tumors from a whole-genome sequencing dataset comprising a cohort of 640 patients. We identified 11 of 640 tumors as MMR deficient, but only 2 of 11 exhibited germline mutations in MMR genes or Lynch Syndrome. Two additional tumors had a substantially reduced proportion of mutations attributed to MMR deficiency, where the predominant mutational signatures were related to APOBEC enzymatic activity. Overall, 6 of 11 of the MMR-deficient cases in this cohort were confirmed genetically or epigenetically as having abrogation of MMR genes. However, IHC analysis of MMR-related proteins revealed all but one of 10 samples available for testing as MMR deficient. Thus, the mutational signatures more faithfully reported MMR deficiency than sequencing of MMR genes, because they represent a direct pathophysiologic readout of repair pathway abnormalities. As whole-genome sequencing continues to become more affordable, it could be used to expose individually abnormal tumors in tissue types where MMR deficiency has been rarely detected, but also rarely sought. Cancer Res; 77(18); 4755-62. ©2017 AACR.
Insights
Mutational signatures accurately identify mismatch repair (MMR)-deficient cancers, crucial for predicting response to immunotherapy. This method proved more reliable than gene sequencing for detecting MMR deficiency in breast tumors.
Area of Science:
- Oncology
- Genomics
- Cancer Research
Background:
- Mismatch repair (MMR) deficiency in cancers predicts high response rates to immune checkpoint blockade therapies.
- Accurate identification of MMR-deficient tumors is critical for guiding patient treatment decisions, especially given their rarity.
Purpose of the Study:
- To investigate the utility of mutational signatures derived from whole-genome sequencing for identifying MMR-deficient breast tumors.
- To compare the efficacy of mutational signatures versus MMR gene sequencing and IHC analysis in detecting MMR deficiency.
Main Methods:
- Whole-genome sequencing of 640 breast tumors to analyze mutational signatures.
- Genetic and epigenetic analysis of MMR genes.
- Immunohistochemistry (IHC) analysis of MMR-related proteins.
Main Results:
- 11 of 640 tumors were identified as MMR-deficient based on mutational signatures.
- Mutational signatures were more sensitive in detecting MMR deficiency compared to germline MMR gene sequencing.
- IHC analysis confirmed MMR deficiency in most tested samples, aligning with mutational signature findings.
Conclusions:
- Mutational signatures serve as a robust pathophysiologic readout for detecting MMR deficiency, outperforming traditional gene sequencing.
- Whole-genome sequencing offers a powerful tool for identifying MMR-deficient tumors, even in cancer types where this deficiency is rarely investigated.
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