{"entity":{"id":"paper-chang-nat-rev-mol-cell-biol","kind":"paper","name":"Non-homologous DNA end joining and alternative pathways to double-strand break repair","aka":[],"tldr":"Paper cited by one pathway page, indexed on Europe PMC as PubMed record 28512351 and published in Nature reviews. Molecular cell biology; the citing page links this DOI, which is how the record was matched.","summary":"DNA double-strand breaks (DSBs) are the most dangerous type of DNA damage because they can result in the loss of large chromosomal regions. In all mammalian cells, DSBs that occur throughout the cell cycle are repaired predominantly by the non-homologous DNA end joining (NHEJ) pathway. Defects in NHEJ result in sensitivity to ionizing radiation and the ablation of lymphocytes. The NHEJ pathway utilizes proteins that recognize, resect, polymerize and ligate the DNA ends in a flexible manner. This flexibility permits NHEJ to function on a wide range of DNA-end configurations, with the resulting repaired DNA junctions often containing mutations. In this Review, we discuss the most recent findings regarding the relative involvement of the different NHEJ proteins in the repair of various DNA-end configurations. We also discuss the shunting of DNA-end repair to the auxiliary pathways of alternative end joining (a-EJ) or single-strand annealing (SSA) and the relevance of these different pathways to human disease.\n\nIndexed on Europe PMC as PubMed record 28512351 (DOI 10.1038/nrm.2017.48). Matched by DOI alone: one pathway page cites this DOI among its external links (the pages are listed under Related), and this page was written so that the citation resolves inside OnCo. No figure has been checked by an editor.","asOf":"2026-09-22","links":[{"label":"Nat Rev Mol Cell Biol 2017","url":"https://doi.org/10.1038/nrm.2017.48"},{"label":"PubMed","url":"https://pubmed.ncbi.nlm.nih.gov/28512351/"},{"label":"Europe PMC","url":"https://europepmc.org/article/MED/28512351"}],"tags":["europepmc-ingest"],"related":["homologous-recombination-repair"],"cancers":[],"sections":[],"technologies":[],"targets":[],"drugs":[],"companies":[],"institutions":[],"pathways":[],"terms":[],"trials":[],"people":[],"bottlenecks":[],"keyPapers":[],"journals":[],"dependsOn":[],"notes":[],"journal":"Nature reviews. Molecular cell biology","year":2017,"doi":"10.1038/nrm.2017.48","pmid":"28512351","authors":"Chang HHY, Pannunzio NR, Adachi N, et al.","paperType":"review","findings":[],"whatItMeans":"One pathway page on OnCo cites this paper by its DOI; this record gives the citation a page of its own so a reader can follow it without leaving OnCo. Read the abstract above alongside the citing page listed under Related; the record was created automatically from the Europe PMC entry and its figures have not been checked by hand.","caveats":["Matched to the citing OnCo records by DOI alone; the summary reproduces the Europe PMC abstract and no figure has been verified against the full paper."]},"route":"/key-papers/paper-chang-nat-rev-mol-cell-biol/","neighbours":{"pathway":[{"id":"homologous-recombination-repair","kind":"pathway","name":"Double-strand break repair: HR versus end joining","route":"/pathways/homologous-recombination-repair/"}]}}