» Articles » PMID: 23792210

Biochemical DSB-repair Model for Mammalian Cells in G1 and Early S Phases of the Cell Cycle

Overview
Journal Mutat Res
Publisher Elsevier
Specialty Genetics
Date 2013 Jun 25
PMID 23792210
Citations 39
Authors
Affiliations
Soon will be listed here.
Abstract

The paper presents a model of double strand breaks (DSB) repair in G1 and early S phases of the cell cycle. The model is based on a plethora of published information on biochemical modification of DSB induced by ionizing radiation. So far, three main DSB repair pathways have been identified, including nonhomologous end-joining (NHEJ), homologous recombination (HR), and microhomology-mediated end-joining (MMEJ). During G1 and early S phases of the cell cycle, NHEJ and MMEJ repair pathways are activated dependent on the type of double strand breaks. Simple DSB are a substrate for NHEJ, while complex DSB and DSB in heterochromatin require further end processing. Repair of all DSB start with NHEJ presynaptic processes, and depending on the type of DSB pursue simple ligation, further end processing prior to ligation, or resection. Using law of mass action the model is translated into a mathematical formalism. The solution of the formalism provides the step by step and overall repair kinetics. The overall repair kinetics are compared with the published experimental measurements. Our calculations are in agreement with the experimental results and show that the complex types of DSBs are repaired with slow repair kinetics. The G1 and early S phase model could be employed to predict the kinetics of DSB repair for damage induced by high LET radiation.

Citing Articles

Enhancing CRISPR-Cas-based gene targeting in tomato using a dominant-negative .

Vu T, Nguyen N, Kim J, Vu M, Song Y, Tran M Hortic Res. 2025; 12(2):uhae294.

PMID: 39906170 PMC: 11789525. DOI: 10.1093/hr/uhae294.


qTAG: an adaptable plasmid scaffold for CRISPR-based endogenous tagging.

Philip R, Sharma A, Matellan L, Erpf A, Hsu W, Tkach J EMBO J. 2024; 44(3):947-974.

PMID: 39668248 PMC: 11790981. DOI: 10.1038/s44318-024-00337-5.


A fast Monte Carlo cell-by-cell simulation for radiobiological effects in targeted radionuclide therapy using pre-calculated single-particle track standard DNA damage data.

Lim A, Andriotty M, Yusufaly T, Agasthya G, Lee B, Wang C Front Nucl Med. 2024; 3:1284558.

PMID: 39380956 PMC: 11460290. DOI: 10.3389/fnume.2023.1284558.


Comparison of Multiple Strategies for Precision Transgene Knock-In in Genome via Microhomology-Mediated End Joining.

Wang L, Sun J, Liu Z, Zheng Q, Wang G Int J Mol Sci. 2023; 24(21).

PMID: 37958714 PMC: 10649300. DOI: 10.3390/ijms242115731.


Dose-Dependent Shift in Relative Contribution of Homologous Recombination to DNA Repair after Low-LET Ionizing Radiation Exposure: Empirical Evidence and Numerical Simulation.

Belov O, Chigasova A, Pustovalova M, Osipov A, Eremin P, Vorobyeva N Curr Issues Mol Biol. 2023; 45(9):7352-7373.

PMID: 37754249 PMC: 10528584. DOI: 10.3390/cimb45090465.