Xrs2/NBS1 promote end-bridging activity of the MRE11-RAD50 complex
Journal article, 2024

DNA double strand breaks (DSBs) can be detrimental to the cell and need to be efficiently repaired. A first step in DSB repair is to bring the free ends in close proximity to enable ligation by non-homologous end-joining (NHEJ), while the more precise, but less available, repair by homologous recombination (HR) requires close proximity of a sister chromatid. The human MRE11-RAD50-NBS1 (MRN) complex, Mre11-Rad50-Xrs2 (MRX) in yeast, is involved in both repair pathways. Here we use nanofluidic channels to study, on the single DNA molecule level, how MRN, MRX and their constituents interact with long DNA and promote DNA bridging. Nanofluidics is a suitable method to study reactions on DNA ends since no anchoring of the DNA end(s) is required. We demonstrate that NBS1 and Xrs2 play important, but differing, roles in the DNA tethering by MRN and MRX. NBS1 promotes DNA bridging by MRN consistent with tethering of a repair template. MRX shows a “synapsis-like” DNA end-bridging, stimulated by the Xrs2 subunit. Our results highlight the different ways MRN and MRX bridge DNA, and the results are in agreement with their key roles in HR and NHEJ, respectively, and contribute to the understanding of the roles of NBS1 and Xrs2 in DSB repair.

Xrs2

DNA repair

DNA-tethering

NBS1

Nanofluidic

Single molecule

Author

Carl Ivar Möller

Chalmers, Life Sciences, Chemical Biology

Rajhans Sharma

Chalmers, Life Sciences, Chemical Biology

Robin Öz

Chalmers, Life Sciences, Chemical Biology

Giordano Reginato

Istituto di Ricerca in Biomedicina, Bellinzona

Elda Cannavo

Istituto di Ricerca in Biomedicina, Bellinzona

Ilaria Ceppi

Istituto di Ricerca in Biomedicina, Bellinzona

Sriram Kesarimangalam

Chalmers, Life Sciences, Chemical Biology

Petr Cejka

Swiss Federal Institute of Technology in Zürich (ETH)

Istituto di Ricerca in Biomedicina, Bellinzona

Fredrik Westerlund

Chalmers, Life Sciences, Chemical Biology

Biochemical and Biophysical Research Communications

0006-291X (ISSN) 1090-2104 (eISSN)

Vol. 695 149464

Real-Time Visualization of DNA Repair - One Molecule at a Time

Swedish Research Council (VR) (2020-03400), 2021-01-01 -- 2024-12-31.

Next Generation Nanofluidic Devices for Single Molecule Analysis of DNA Repair Dynamics

European Commission (EC) (EC/H2020/866238), 2020-04-01 -- 2025-03-31.

Subject Categories

Biophysics

DOI

10.1016/j.bbrc.2023.149464

PubMed

38217957

More information

Latest update

1/24/2024