FANCD2 and RAD51 recombinase directly inhibit DNA2 nuclease at stalled replication forks and FANCD2 acts as a novel RAD51 mediator in strand exchange to promote genome stability

Author:

Liu Wenpeng12,Polaczek Piotr1,Roubal Ivan1,Meng Yuan32,Choe Won-chae1,Caron Marie-Christine4,Sedgeman Carl A1,Xi Yu2,Liu Changwei32,Wu Qiong3,Zheng Li3ORCID,Masson Jean-Yves45ORCID,Shen Binghui3ORCID,Campbell Judith L1ORCID

Affiliation:

1. Braun Laboratories, California Institute of Technology , Pasadena, CA 91125, USA

2. Colleges of Life Sciences, Zhejiang University , Hangzhou, Zhejiang 310027, China

3. Department of Cancer Genetics and Epigenetics, Beckman Research Institute , City of Hope, 1500 East Duarte Road, Duarte, CA 91010-3000 , USA

4. Genome Stability Laboratory, CHU de Québec Research Center , HDQ Pavilion, Oncology Division, 9 McMahon, Québec City, QC G1R 3S3, Canada

5. Department of Molecular Biology, Medical Biochemistry and Pathology; Laval University Cancer Research Center , Québec City, QC G1V 0A6, Canada

Abstract

Abstract FANCD2 protein, a key coordinator and effector of the interstrand crosslink repair pathway, is also required to prevent excessive nascent strand degradation at hydroxyurea-induced stalled forks. The RAD51 recombinase has also been implicated in regulation of resection at stalled replication forks. The mechanistic contributions of these proteins to fork protection are not well understood. Here, we used purified FANCD2 and RAD51 to study how each protein regulates DNA resection at stalled forks. We characterized three mechanisms of FANCD2-mediated fork protection: (1) The N-terminal domain of FANCD2 inhibits the essential DNA2 nuclease activity by directly binding to DNA2 accounting for over-resection in FANCD2 defective cells. (2) Independent of dimerization with FANCI, FANCD2 itself stabilizes RAD51 filaments to inhibit multiple nucleases, including DNA2, MRE11 and EXO1. (3) Unexpectedly, we uncovered a new FANCD2 function: by stabilizing RAD51 filaments, FANCD2 acts to stimulate the strand exchange activity of RAD51. Our work biochemically explains non-canonical mechanisms by which FANCD2 and RAD51 protect stalled forks. We propose a model in which the strand exchange activity of FANCD2 provides a simple molecular explanation for genetic interactions between FANCD2 and BRCA2 in the FA/BRCA fork protection pathway.

Funder

CIHR

USPS

FRQS

Publisher

Oxford University Press (OUP)

Subject

Genetics

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