Abstract
The double-strand DNA break repair pathway, non-homologous DNA end joining (NHEJ), is distinctive for the flexibility of its nuclease, polymerase and ligase activities. Here we find that the joining of ends by XRCC4-ligase IV is markedly influenced by the terminal sequence, and a steric hindrance model can account for this. XLF (Cernunnos) stimulates the joining of both incompatible DNA ends and compatible DNA ends at physiologic concentrations of Mg2+, but only of incompatible DNA ends at higher concentrations of Mg2+, suggesting charge neutralization between the two DNA ends within the ligase complex. XRCC4-DNA ligase IV has the distinctive ability to ligate poly-dT single-stranded DNA and long dT overhangs in a Ku- and XLF-independent manner, but not other homopolymeric DNA. The dT preference of the ligase is interesting given the sequence bias of the NHEJ polymerase. These distinctive properties of the XRCC4-DNA ligase IV complex explain important aspects of its in vivo roles.
MeSH Terms
DNA/chemistry,metabolism
DNA Breaks, Double-Stranded
DNA Ligase ATP
DNA Ligases/metabolism
DNA Repair Enzymes/metabolism
DNA, Single-Stranded/metabolism
DNA-Binding Proteins/metabolism
Humans
Magnesium/chemistry
Chemicals
DNA, Single-Stranded
DNA-Binding Proteins
LIG4 protein, human
NHEJ1 protein, human
XRCC4 protein, human
DNA
DNA Ligases
DNA Repair Enzymes
DNA Ligase ATP
Magnesium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Gu Jiafeng
Department of Pathology, Biochemistry & Molecular Biology, Biological Sciences, Norris Comprehensive Cancer Center, University of Southern California Keck School of Medicine, Los Angeles, CA, USA.
Lu Haihui
Tsai Albert G
Schwarz Klaus
Lieber Michael R
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