Related Experiment Video
Updated: May 7, 2026

Genome-Wide CRISPR Screen for Unveiling Radiosensitive and Radioresistant Genes
Published on: May 23, 2025
Systematic screen identifies miRNAs that target RAD51 and RAD51D to enhance chemosensitivity
Jen-Wei Huang1, Yemin Wang, Kiranjit K Dhillon
1Fred Hutchinson Cancer Research Center, 1100 Fairview Avenue North, C1-015, Seattle, WA 98109-1024. ttaniguc@fhcrc.org.
Unlabelled:
Homologous recombination mediates error-free repair of DNA double-strand breaks (DSB). RAD51 is an essential protein for catalyzing homologous recombination and its recruitment to DSBs is mediated by many factors including RAD51, its paralogs, and breast/ovarian cancer susceptibility gene products BRCA1/2. Deregulation of these factors leads to impaired DNA repair, genomic instability, and cellular sensitivity to chemotherapeutics such as cisplatin and PARP inhibitors. microRNAs (miRNA) are short, noncoding RNAs that posttranscriptionally regulate gene expression; however, the contribution of miRNAs in the regulation of homologous recombination is not well understood. To address this, a library of human miRNA mimics was systematically screened to pinpoint several miRNAs that significantly reduce RAD51 foci formation in response to ionizing radiation in human osteosarcoma cells. Subsequent study focused on two of the strongest candidates, miR-103 and miR-107, as they are frequently deregulated in cancer. Consistent with the inhibition of RAD51 foci formation, miR-103 and miR-107 reduced homology-directed repair and sensitized cells to various DNA-damaging agents, including cisplatin and a PARP inhibitor. Mechanistic analyses revealed that both miR-103 and miR-107 directly target and regulate RAD51 and RAD51D, which is critical for miR-103/107-mediated chemosensitization. Furthermore, endogenous regulation of RAD51D by miR-103/107 was observed in several tumor subtypes. Taken together, these data show that miR-103 and miR-107 overexpression promotes genomic instability and may be used therapeutically to chemosensitize tumors.
Implications:
These findings demonstrate a role for miR-103 and -107 in regulating DNA damage repair, thereby identifying new players in the progression of cancer and response to chemotherapy.
Insights
MicroRNAs miR-103 and miR-107 regulate DNA repair by targeting RAD51 and RAD51D. Their overexpression promotes genomic instability and may sensitize tumors to chemotherapy.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Homologous recombination is crucial for DNA double-strand break repair.
- RAD51 and BRCA1/2 are key proteins in this process, and their deregulation causes genomic instability and chemoresistance.
- The role of microRNAs (miRNAs) in homologous recombination is largely unknown.
Purpose of the Study:
- To investigate the role of miRNAs in regulating homologous recombination.
- To identify specific miRNAs that impact RAD51 foci formation and DNA repair.
- To explore the therapeutic potential of identified miRNAs in cancer treatment.
Main Methods:
- Screening of a human miRNA mimic library in osteosarcoma cells.
- Assessing RAD51 foci formation after ionizing radiation.
- Measuring homology-directed repair and chemosensitivity to cisplatin and PARP inhibitors.
- Performing mechanistic analyses to identify miRNA targets.
Main Results:
- miR-103 and miR-107 significantly reduced RAD51 foci formation.
- These miRNAs impaired homology-directed repair and sensitized cells to DNA-damaging agents.
- miR-103 and miR-107 were found to directly target and regulate RAD51 and RAD51D.
- Endogenous regulation of RAD51D by miR-103/107 was observed in tumor subtypes.
Conclusions:
- miR-103 and miR-107 play a regulatory role in DNA damage repair pathways.
- Overexpression of miR-103/107 contributes to genomic instability.
- These miRNAs represent potential therapeutic targets for enhancing chemosensitivity in tumors.

