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Makins, K.

Publications and source records attributed to Makins, K..

2 recordsLinked to original sources

Molecular characterization of MRI/CYREN reveals the Ku binding mode and the role of multimerization in stimulating the activity of NHEJ in DNA repair

Mammalian cells primarily repair DNA double-strand breaks through non-homologous end joining (NHEJ), a pathway that requires the Ku heterodimer, DNA-PKcs, XRCC4 complexed with DNA Ligase 4, and XLF as core components. In addition, several auxiliary proteins are involved in the regulation of NHEJ, whose importance has been underscored recently. Among them, MRI, also known as CYREN, is one of the most important auxiliary proteins. Despite its importance, the structural properties of MRI remain poorly characterized. In this study, we used solution NMR spectroscopy combined with cellular experiments to investigate two isoforms of human MRI (MRI1 and MRI2) at the residue level. Our findings reveal that both isoforms are predominantly disordered, and that the APLF-like Ku-binding motif (A-KBM) of MRI undergoes folding upon binding to the von Willebrand A domain of Ku80 (Ku80vWA). Moreover, an evolutionarily dominant leucine-to-methionine substitution in A-KBM significantly increases binding affinity for Ku80vWA by over 30 times without impacting cellular NHEJ efficiency. Importantly, we identified here a domain that drives MRI multimerization that is required for efficient NHEJ in cellular assays. This work further deciphers the increasingly recognized functional roles of disordered protein regions of the NHEJ machinery.

biophysics↗

53BP1/RIF1 and DNA-PKcs show distinct genetic interactions with diverse chromosomal break repair outcomes.

DNA double strand breaks (DSBs) are the effective lesion of cancer radiotherapy and induce gene editing. 53BP1 accumulates at DSBs and is implicated in end joining (EJ) repair, but its influence on DSB repair is distinct from canonical non-homologous end joining (C-NHEJ). We sought to define the genetic interplay of 53BP1 with C-NHEJ, focusing on the DNA-PKcs kinase. We examined Cas9 DSBs, which largely generates blunt DSBs, since blunt DSB EJ is dependent on C-NHEJ. Loss of 53BP1 does not affect blunt DSB EJ, but causes a reduction in such repair in DNA-PKcs deficient cells. In contrast, disrupting 53BP1 and DNA-PKcs, both alone and together, has similar effects on the type of deletion mutation (increase in microhomology deletions). We found similar effects on EJ with RIF1 loss, which is a downstream effector of 53BP1. Thus, 53BP1/RIF1 appear to play a backup role for DNA-PKcs during blunt DSB EJ, but function in the same pathway to suppress microhomology deletions. In contrast, 53BP1 and DNA-PKcs function independently to suppress homology-directed repair. Finally, DNA-PKcs kinase inhibition causes marked radiosensitivity, which is not additive with loss of 53BP1 and RIF1. Altogether, 53BP1/RIF1 and DNA-PKcs show distinct genetic interactions with diverse DSB repair outcomes.

molecular biology↗