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Biology subjects

Chaplin, A. K.

Publications and source records attributed to Chaplin, A. K..

3 recordsLinked to original sources

UFMylation orchestrates chromatin engagement of core NHEJ components to promote DNA double-strand break repair

DNA double-strand breaks (DSBs) are highly cytotoxic lesions whose misrepair can lead to genomic instability, cancer and developmental disorders. Through systematic screening of understudied ubiquitin-like modifiers (UBLs), we identify UFM1 as a previously unrecognised regulator of non-homologous end-joining (NHEJ). Using a structure-guided chemical biology strategy, we develop a photo-crosslinkable UFM1 probe and, together with high-resolution NMR, uncover non-canonical UFM1-binding regions in core NHEJ components, including XRCC4. Mechanistically, proximity-dependent proteomics reveals Ku70 as a key UFMylation substrate, establishing a functional axis in which XRCC4 engages UFMylated Ku70 to promote the chromatin assembly of NHEJ factors. Perturbation of UFM1 signalling, via UFSP2 depletion or a hypomorphic UBA5 allele in patient-derived fibroblasts, impairs these processes, linking UFMylation defects to altered regulation of DSB repair. Our findings define a complete UFM1 signalling module in genome maintenance and uncover a molecular connection between hereditary UFMylation disorders and dysregulated DSB repair pathways.

molecular biology↗

Targeting DNA-PK is a highly conserved poxvirus innate immune evasion mechanism

The sensing of viral nucleic acid by pattern recognition receptors (PRRs) is essential for initiation of a type-I interferon response against infection. Intracellular DNA sensing PRRs are responsible for initiating innate immune responses to poxviruses and other double-stranded DNA viruses. Poxviruses, in turn, encode an armoury of immunomodulators that inhibit this host defence mechanism. DNA-dependent protein kinase (DNA-PK) is an essential component of the cGAS/STING-dependent viral DNA sensing machinery that leads to the initiation of a type-I interferon response during poxvirus infection. Poxviruses counter this host sensing mechanism using the C4/C10 family of proteins that target DNA-PK, interfering with its ability to bind viral DNA. Although the DNA-PK complex, known also for its role in double strand break repair, is conserved across multiple taxa, its function in innate immunity outside mammals is unexplored. Here we analysed the contribution of DNA-PK to poxvirus DNA sensing in chickens, a species that is evolutionarily distant from mammals, but that is also infected by poxviruses. We found that DNA-PK functions as a DNA sensor in chickens, and this process is countered by C4/C10 family members found in fowlpox virus. This host/pathogen interaction is conserved across a broader range of species than other mechanisms of poxvirus antagonism of innate immune sensing, which may reflect the difficulty of the host in evolving escape mechanisms that interfere with a protein that is essential for maintenance of genomic stability.

immunology↗

DNA polymerase Lambda is anchored within the NHEJ synaptic complex via Ku70/80

Non-homologous end joining (NHEJ) is the predominant pathway by which double-strand DNA breaks (DSBs) are repaired in mammals. To enable final break closure, various NHEJ end-processing factors respond to the chemistry of the damaged DNA ends. Amongst these factors is DNA polymerase lambda (Pol {lambda}), a member of the Pol X family. How members of the Pol X family engage with the NHEJ complex is unknown. Here, we present cryo-EM structures of Pol {lambda} in complex with the Ku70/80 DSB sensor whilst engaged with the DNA-PK holoenzyme in a long-range synaptic complex. These structures reveal a specific interaction site between Ku70/80 and the Pol {lambda} BRCT domain. The functionality of this interaction is assessed by generating point mutations on either side of the Pol {lambda} BRCT:Ku70/80 interface. Using these mutants in two orthogonal assays in cells (live protein recruitment at biphoton laser-damaged nuclear sites and transfection with an original gap-filling reporter plasmid) defines the molecular basis and essentiality of the BRCT domain for the recruitment and activity of the Pol {lambda} within the NHEJ complex. Ultimately, these data explain the role of this interaction in cell survival to DSBs. Finally, we propose a unified model for the interaction of the three Pol X family members bearing BRCT domains with the same site of Ku70/80.

biochemistry↗