Přehled o publikaci
2024
Mechanism of BCDX2-mediated RAD51 nucleation on short ssDNA stretches and fork DNA
AKITA, Masaki; Paul GIRVAN; Mário ŠPÍREK; Jiří NOVÁČEK; David RUEDA et. al.Basic information
Original name
Mechanism of BCDX2-mediated RAD51 nucleation on short ssDNA stretches and fork DNA
Authors
AKITA, Masaki (392 Japan, belonging to the institution); Paul GIRVAN; Mário ŠPÍREK (703 Slovakia, belonging to the institution); Jiří NOVÁČEK (203 Czech Republic, belonging to the institution); David RUEDA; Zbyněk PROKOP (203 Czech Republic, belonging to the institution) and Lumír KREJČÍ (203 Czech Republic, guarantor, belonging to the institution)
Edition
Nucleic Acids Research, Oxford, Oxford University Press, 2024, 0305-1048
Other information
Language
English
Type of outcome
Article in a journal
Country of publisher
United Kingdom of Great Britain and Northern Ireland
Confidentiality degree
is not subject to a state or trade secret
References:
RIV identification code
RIV/00216224:14310/24:00137161
Organization
Přírodovědecká fakulta – Repository – Repository
UT WoS
001310711000001
EID Scopus
2-s2.0-85208082136
Keywords in English
HOMOLOGOUS RECOMBINATION; FANCONI-ANEMIA; NUCLEOPROTEIN FILAMENTS; CONFER SUSCEPTIBILITY; BRC REPEATS; REPAIR; MUTATIONS; IDENTIFICATION; REVERSAL; PARALOGS
Links
GX21-22593X, research and development project. LX22NPO5102, research and development project. 101158508, interní kód Repo. 857560, interní kód Repo. CIISB III, large research infrastructures. RECETOX RI II, large research infrastructures.
Changed: 18/6/2025 00:49, RNDr. Daniel Jakubík
Abstract
V originále
Homologous recombination (HR) factors are crucial for DSB repair and processing stalled replication forks. RAD51 paralogs, including RAD51B, RAD51C, RAD51D, XRCC2 and XRCC3, have emerged as essential tumour suppressors, forming two subcomplexes, BCDX2 and CX3. Mutations in these genes are associated with cancer susceptibility and Fanconi anaemia, yet their biochemical activities remain unclear. This study reveals a linear arrangement of BCDX2 subunits compared to the RAD51 ring. BCDX2 shows a strong affinity towards single-stranded DNA (ssDNA) via unique binding mechanism compared to RAD51, and a contribution of DX2 subunits in binding branched DNA substrates. We demonstrate that BCDX2 facilitates RAD51 loading on ssDNA by suppressing the cooperative requirement of RAD51 binding to DNA and stabilizing the filament. Notably, BCDX2 also promotes RAD51 loading on short ssDNA and reversed replication fork substrates. Moreover, while mutants defective in ssDNA binding retain the ability to bind branched DNA substrates, they still facilitate RAD51 loading onto reversed replication forks. Our study provides mechanistic insights into how the BCDX2 complex stimulates the formation of BRCA2-independent RAD51 filaments on short stretches of ssDNA present at ssDNA gaps or stalled replication forks, highlighting its role in genome maintenance and DNA repair.