Targeting Germline- and Tumor-Associated Nucleotide Excision Repair Defects in Cancer
Sabine Topka1,2,3, Zoe Steinsnyder4,2, Vignesh Ravichandran4,2,3
1Department of Medicine, Memorial Sloan Kettering Cancer Center, New York, New York. topkas@mskcc.org josephv@mskcc.org offitk@mskcc.org.
Purpose:
Nucleotide excision repair (NER) gene alterations constitute potential cancer therapeutic targets. We explored the prevalence of NER gene alterations across cancers and putative therapeutic strategies targeting these vulnerabilities.
Experimental Design:
We interrogated our institutional dataset with mutational data from more than 40,000 patients with cancer to assess the frequency of putative deleterious alterations in four key NER genes. Gene-edited isogenic pairs of wild-type and mutant ERCC2 or ERCC3 cell lines were created and used to assess response to several candidate drugs.
Results:
We found that putative damaging germline and somatic alterations in NER genes were present with frequencies up to 10% across multiple cancer types. Both in vitro and in vivo studies showed significantly enhanced sensitivity to the sesquiterpene irofulven in cells harboring specific clinically observed heterozygous mutations in ERCC2 or ERCC3. Sensitivity of NER mutants to irofulven was greater than to a current standard-of-care agent, cisplatin. Hypomorphic ERCC2/3-mutant cells had impaired ability to repair irofulven-induced DNA damage. Transcriptomic profiling of tumor tissues suggested codependencies between DNA repair pathways, indicating a potential benefit of combination therapies, which were confirmed by in vitro studies.
Conclusions:
These findings provide novel insights into a synthetic lethal relationship between clinically observed NER gene deficiencies and sensitivity to irofulven and its potential synergistic combination with other drugs.See related commentary by Jiang and Greenberg, p. 1833.
Insights
Alterations in nucleotide excision repair (NER) genes are common in cancer. NER-deficient cells show increased sensitivity to irofulven, a potential new cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Nucleotide excision repair (NER) gene alterations are emerging as critical targets for cancer therapy.
- Understanding the prevalence and therapeutic implications of these alterations is crucial.
Purpose of the Study:
- To investigate the frequency of NER gene alterations across diverse cancer types.
- To identify and evaluate potential therapeutic strategies targeting NER gene vulnerabilities.
Main Methods:
- Analysis of mutational data from over 40,000 cancer patients to determine NER gene alteration frequencies.
- Creation of gene-edited cell lines (wild-type vs. mutant ERCC2/ERCC3) for drug response assessment.
- In vitro and in vivo studies evaluating drug sensitivity and DNA repair capacity.
Main Results:
- Clinically relevant germline and somatic alterations in NER genes were found in up to 10% of cancers.
- Cells with ERCC2 or ERCC3 mutations exhibited heightened sensitivity to irofulven compared to cisplatin.
- Irofulven-induced DNA damage repair was impaired in hypomorphic ERCC2/3-mutant cells.
Conclusions:
- A synthetic lethal relationship exists between NER gene deficiencies and irofulven sensitivity.
- Irofulven represents a promising therapeutic agent for cancers with specific NER gene alterations.
- Combination therapies involving irofulven may offer synergistic benefits.
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