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Published on: June 26, 2020
Functional defects of cancer-associated MDC1 mutations in DNA damage repair
Rong Xie1, Zhenzhen Yan1, Ju Jing1
1School of Life Sciences, Institute of Life Sciences and Green Development, Hebei University, Baoding, Hebei Province 071002, China.
Abstract:
Mediator of DNA damage checkpoint protein 1 (MDC1) serves as a docking platform to promote the localization of various DNA damage response (DDR) components to DNA double-strand break (DSB) sites. MDC1 is vital in controlling proper DDR and maintaining genomic stability. In cancers, genomic instability results from mutations in DNA repair genes and drives cancer development. The mutations of MDC1 in human cancers have not been systematically examined and little is known about the molecular phenotypes caused by these genetic changes. Here, we summarized cancer-associated mutations of MDC1 including insertion/deletion mutations as well as missense mutations in key functional domains of MDC1 from ICGC, TCGA and COSMIC databases. We analyzed 711 somatic mutations of MDC1 across 26 types of human cancers and examined the functional defects of these cancer-associated mutations of MDC1 in the context of DNA damage repair. 6 truncation mutations and 7 missense mutations of MDC1 were chosen for further study. 6 truncation mutations which abolish MDC1-γH2AX interaction abrogate its biological functions in DNA damage repair. 2 missense mutations in FHA domain impaired ATM (ataxia telangiectasia mutated) phosphorylation. 5 missense mutations in BRCT domain also abolished its interaction with γH2AX, resulting in defects in foci formation of MDC1, 53BP1 and BRCA1 as well as defects in G2/M checkpoints. We further used structural modeling to analyze the potential molecular mechanism by which the 7 missense mutations cause the DNA damage repair defects. Taken together, our results reveal these cancer-associated MDC1 mutations can result in functional defects in DNA damage response and may serve as biomarkers for cancer diagnostics in future.
Insights
Mediator of DNA damage checkpoint protein 1 (MDC1) mutations in cancer disrupt DNA repair pathways. These genetic changes impair genomic stability and could serve as future cancer diagnostic biomarkers.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Mediator of DNA damage checkpoint protein 1 (MDC1) is crucial for DNA double-strand break (DSB) repair and genomic stability.
- Genomic instability, driven by mutations in DNA repair genes, is a hallmark of cancer.
- The impact of MDC1 mutations in human cancers and their resulting molecular phenotypes remain largely unexplored.
Purpose of the Study:
- To systematically analyze cancer-associated mutations in MDC1.
- To investigate the functional consequences of these MDC1 mutations on DNA damage response (DDR) pathways.
- To explore the potential of MDC1 mutations as cancer diagnostic biomarkers.
Main Methods:
- Curated and analyzed 711 somatic MDC1 mutations across 26 cancer types from ICGC, TCGA, and COSMIC databases.
- Selected 6 truncation and 7 missense mutations for functional analysis of DNA damage repair defects.
- Employed structural modeling to elucidate the molecular mechanisms underlying mutation-induced DDR defects.
Main Results:
- Truncation mutations abrogated MDC1's interaction with γH2AX, impairing DNA repair functions.
- Missense mutations in the FHA domain affected ATM phosphorylation.
- Missense mutations in the BRCT domain disrupted MDC1-γH2AX interaction, leading to defects in MDC1, 53BP1, and BRCA1 foci formation, and G2/M checkpoints.
Conclusions:
- Cancer-associated MDC1 mutations lead to functional impairments in DNA damage response pathways.
- These mutations disrupt critical interactions and processes necessary for maintaining genomic stability.
- MDC1 mutations represent potential biomarkers for cancer diagnostics.
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