Single-molecule visualization of human RECQ5 interactions with single-stranded DNA recombination intermediates

Author:

Xue Chaoyou1,Molnarova Lucia2,Steinfeld Justin B1,Zhao Weixing3,Ma Chujian1,Spirek Mario2,Kaniecki Kyle1,Kwon Youngho3,Beláň Ondrej4,Krejci Katerina25,Boulton Simon J4,Sung Patrick3,Greene Eric C1ORCID,Krejci Lumir256ORCID

Affiliation:

1. Department of Biochemistry & Molecular Biophysics, Columbia University, New York, NY 10032, USA

2. Department of Biology, Masaryk University, Brno 62500, Czech Republic

3. Department of Biochemistry and Structural Biology, University of Texas Health Science Center at San Antonio, TX 78229, USA

4. DSB Repair Metabolism Lab, The Francis Crick Institute, Midland Road, London NW1 1AT, UK

5. International Clinical Research Center, St. Anne's University Hospital Brno, Brno 65691, Czech Republic

6. National Centre for Biomolecular Research, Masaryk, Brno 62500, Czech Republic

Abstract

Abstract RECQ5 is one of five RecQ helicases found in humans and is thought to participate in homologous DNA recombination by acting as a negative regulator of the recombinase protein RAD51. Here, we use kinetic and single molecule imaging methods to monitor RECQ5 behavior on various nucleoprotein complexes. Our data demonstrate that RECQ5 can act as an ATP-dependent single-stranded DNA (ssDNA) motor protein and can translocate on ssDNA that is bound by replication protein A (RPA). RECQ5 can also translocate on RAD51-coated ssDNA and readily dismantles RAD51–ssDNA filaments. RECQ5 interacts with RAD51 through protein–protein contacts, and disruption of this interface through a RECQ5–F666A mutation reduces translocation velocity by ∼50%. However, RECQ5 readily removes the ATP hydrolysis-deficient mutant RAD51–K133R from ssDNA, suggesting that filament disruption is not coupled to the RAD51 ATP hydrolysis cycle. RECQ5 also readily removes RAD51–I287T, a RAD51 mutant with enhanced ssDNA-binding activity, from ssDNA. Surprisingly, RECQ5 can bind to double-stranded DNA (dsDNA), but it is unable to translocate. Similarly, RECQ5 cannot dismantle RAD51-bound heteroduplex joint molecules. Our results suggest that the roles of RECQ5 in genome maintenance may be regulated in part at the level of substrate specificity.

Funder

Czech Science Foundation

European Structural and Investment Funds

National Program of Sustainability II

Wellcome Trust

National Institutes of Health

National Science Foundation

V Foundation Scholar Award

Young Investigator Award

Publisher

Oxford University Press (OUP)

Subject

Genetics

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