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Updated: Jun 11, 2025

Author Spotlight: Decoding DNA Repair by Extrachromosomal NHEJ Assay and HR Assays
Published on: February 2, 2024
VGLL3 modulates chemosensitivity through promoting DNA double-strand break repair
Wei Wu1,2, Zhenzhen Fan1,2, Hui Fu1,2,3
1China National Center for Bioinformation, Beijing 100101, China.
Abstract:
Transcription cofactor vestigial-like 3 (VGLL3), as a master regulator of female-biased autoimmunity, also functions in tumor development, while the underlying mechanisms remain largely elusive. Here, we report that VGLL3 plays an important role in DNA damage response (DDR). VGLL3 can be recruited to damage sites in a PARylation-dependent manner. VGLL3 depletion impairs the accumulation of RNF8 and RAD51 at sites of DNA damage, leading to reduced homologous recombination efficiency and increased cellular sensitivity to chemotherapeutic drugs. Mechanistically, VGLL3 can prevent CtIP from KLHL15-mediated ubiquitination and degradation through competitive binding with KLHL15 and, meanwhile, stabilize MDC1 by limiting TRIP12-MDC1 but promoting USP7-MDC1 associations for optimal RNF8 signaling initiation. Consistently, VGLL3 depletion delays tumor development and sensitizes the xenografts to etoposide treatment. Overall, our results reveal an unexpected role of VGLL3 in DDR, which is distinct from its transcriptional cofactor function and not conserved among VGLL family members.
Insights
Vestigial-like 3 (VGLL3) protein is crucial for DNA damage response (DDR) and homologous recombination. Its depletion impacts tumor development and chemotherapy sensitivity.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- Transcription cofactor vestigial-like 3 (VGLL3) regulates autoimmunity and tumor development.
- The precise mechanisms of VGLL3 in these processes are not fully understood.
Purpose of the Study:
- To investigate the role of VGLL3 in DNA damage response (DDR).
- To elucidate the molecular mechanisms by which VGLL3 influences DDR and homologous recombination.
Main Methods:
- Investigated VGLL3 recruitment to DNA damage sites.
- Assessed the impact of VGLL3 depletion on DNA repair protein accumulation (RNF8, RAD51).
- Analyzed homologous recombination efficiency and cellular sensitivity to chemotherapeutic drugs.
- Examined protein-protein interactions involving VGLL3, KLHL15, CtIP, MDC1, TRIP12, and USP7.
Main Results:
- VGLL3 is recruited to DNA damage sites via PARylation.
- VGLL3 depletion reduces RNF8 and RAD51 accumulation at damage sites, impairing homologous recombination.
- VGLL3 stabilizes MDC1 and prevents CtIP degradation, facilitating RNF8 signaling.
- VGLL3 depletion delays tumor growth and increases sensitivity to etoposide in xenografts.
Conclusions:
- VGLL3 plays a novel, non-transcriptional role in DNA damage response.
- VGLL3 is essential for efficient homologous recombination repair.
- VGLL3's function in DDR is distinct from its known transcriptional cofactor activity and not conserved across VGLL family members.
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