Ribonucleotide incorporation enables repair of chromosome breaks by nonhomologous end joining.
basic_science · Level V
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- Record sourced from PubMed, PMID 30213916.
- Also identified by DOI 10.1126/science.aat2477 and PMC identifier 6252249.
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Abstract
The nonhomologous end-joining (NHEJ) pathway preserves genome stability by ligating the ends of broken chromosomes together. It employs end-processing enzymes, including polymerases, to prepare ends for ligation. We show that two such polymerases incorporate primarily ribonucleotides during NHEJ-an exception to the central dogma of molecular biology-both during repair of chromosome breaks made by Cas9 and during V(D)J recombination. Moreover, additions of ribonucleotides but not deoxynucleotides effectively promote ligation. Repair kinetics suggest that ribonucleotide-dependent first-strand ligation is followed by complementary strand repair with deoxynucleotides, then by replacement of ribonucleotides embedded in the first strand with deoxynucleotides. Our results indicate that as much as 65% of cellular NHEJ products have transiently embedded ribonucleotides, which promote flexibility in repair at the cost of more fragile intermediates.
Medical subject headings
- Chromosome Breakage
- DNA End-Joining Repair
- DNA Repair
- DNA-Directed DNA Polymerase
- Ribonucleotides