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Biology subjects

Balu, K.

Publications and source records attributed to Balu, K..

2 recordsLinked to original sources

Single-molecule analysis of gap and nick binding by LIG1 and LIG3α at the final step of DNA repair

DNA ligase (LIG) 1 and LIG3 repair broken single-strand breaks in the phosphodiester backbone at the final ligation step of DNA excision repair pathways, and complement each other during nuclear replication in case of unligated Okazaki fragments. We previously reported that both ligases discriminate against nicks containing non-canonical ends and ligate gap intermediate if left unfilled by DNA polymerases. However, it remains unknown how the dynamics of DNA binding differ for gap versus nick substrates by LIG1 and LIG3 at single-molecule level. Here, using total internal reflection fluorescence (TIRF) and ligation assays, we showed that LIG3 binds less frequently but forms longer-lived complex than LIG1 for nicks containing canonical A:T, mismatch G:T, and damaged 8oxoG:A, and they exhibit subtle differences in discriminating unusual ends. Moreover, our results identified gap DNA as a new target to which LIG1 and LIG3 can bind as efficient as their preferential nick sites. We showed gap ligation and observed that more percentage of LIG1 molecules form stable long-lived complex on DNA containing one nucleotide gap, whereas LIG3 forms short-lived gap complex without any differences in the percentage of molecule forming gap-bound complex. Finally, our findings demonstrated that LIG1 can still stably bind to larger gaps with better recognition, whereas LIG3 binding becomes further infrequent and shorter-lived. Overall, our study provides single-molecule insights into intricate differences between LIG1 and LIG3 for binding to a range of mutagenic and deleterious DNA repair and replication intermediates that could be a threat for maintaining genome stability at the final step.

biochemistry↗

Biochemical, structural, and single-molecule characterization of LIG1 active site mutants demonstrate role of F635 and F872 residues for faithful ligation

Human DNA ligase 1 (LIG1) finalizes DNA repair pathways by an ultimate ligation step and discriminates against nicks containing unusual ends, yet the contribution of the conserved active site residues for faithful end joining remains unknown. Here, using biochemistry, X-ray crystallography, and single-molecule approaches, we comprehensively characterized LIG1 mutants carrying Ala(A) and Leu(L) substitutions at the active site residues Phe(F)635 and Phe(F)872. Our results showed an abolished ligation of nick DNA substrates with all 12 non-canonical mismatches, while the mutagenic nick sealing of oxidatively damaged ends by wild-type enzyme is significantly reduced by F635A/L and F872A/L substitutions. Furthermore, sugar discrimination against a single ribonucleotide at 3- or 5-end of nick DNA is distinctly affected depending on architecture of 3-terminus:template base pairing. Finally, our LIG1 structures demonstrated the importance of DNA end alignment governed by the distance to nick site through F635 and F872 residues, and single-molecule measurements showed similar nick DNA binding modes for LIG1 wild-type and active site mutants in real-time. Overall, our study provides a mechanistic insight into the mechanism by which conserved F635 and F872 residues contribute to ligation efficiency of nick repair intermediates that mimic DNA polymerase-mediated mismatch, damaged, or ribonucleotide insertion products and how LIG1 ensures faithful end joining at the final step of DNA repair to maintain genome integrity.

biochemistry↗