Search bioRxiv⌕ Search

Biology subjects

Leary, L. P.

Publications and source records attributed to Leary, L. P..

3 recordsLinked to original sources

PARP1 recruits SPRTN to DNA-protein crosslinks through a conserved poly-ADP-ribose binding domain.

DNA-protein crosslinks (DPCs) are toxic DNA lesions formed by the covalent attachment of proteins to DNA. Failure to resolve DPCs leads to genomic instability, premature aging, and cancer predisposition. Although multiple proteases and the 26S proteasome degrade DPCs, how these lesions are detected and marked for proteolysis remains unclear. Here, we show that poly-(ADP-ribose) polymerases (PARP1/2) sense DPCs and modify them with poly(ADP-ribose) (PAR) to promote repair via a SPRTN-Tdp1 axis. We discovered a Nudix homology domain (NHD) in SPRTN that mediates direct non-covalent PAR binding and is important for DPC repair. Loss of PARP1/2 activity or mutation of the SPRTN NHD leads to sustained DPCs. Single-molecule analysis revealed that SPRTN does not bind efficiently to the DPC, however after the addition of PARP1 in the presence of NAD+, SPRTN binding to the DPC was significantly increased. Our findings establish PARP1/2 enzymes as immediate DPC sensors, reveal PARylation as a signal marking DPCs for SPRTN-dependent degradation, and identify SPRTN as the first PARP-directed protease.

molecular biology↗

Nucleosome unwrapping and PARP1 allostery drive affinities for chromatin and DNA breaks

Poly[ADP-ribose] polymerase 1 (PARP1) detects DNA strand breaks that occur in duplex DNA and chromatin. We employed correlative optical tweezers and fluorescence microscopy to quantify how single molecules of PARP1 identify single-strand breaks (i.e., nicks), undamaged nucleosome core particles (NCP) and NCPs containing DNA nicks. Fluorescently-tagged PARP1 or PARP2 from nuclear extracts bound nicks with nanomolar affinity but did not engage undamaged dsDNA regions. In contrast, PARP1 avidly bound undamaged NCPs, and partial NCP unwrapping induced by DNA tension significantly increased the on rate and affinity. Catalytically dead PARP1 or EB-47 inhibition greatly increased PARP1 affinity to DNA nicks and undamaged NCP, implicating a mechanism where PARP1 reverse allostery regulates PARP1 retention to undamaged chromatin. We also monitored ADP-ribosylation in real time upon PARP1 binding undamaged or nicked NCPs. These results provide key mechanistic insights into domain allostery and how pharmacological intervention alters PARP1 binding dynamics for therapeutic impacts.

biophysics↗

Single-molecule analysis reveals TDG exhibits multiple modes of linear diffusion to process 5-formylcytosine.

Base excision repair is the main pathway involved in active DNA demethylation. 5-formylctyosine and 5-carboxylcytosine, two oxidized moieties of methylated cytosine, are recognized and removed by thymine DNA glycosylase (TDG) to generate an abasic site. Using single molecule fluorescence experiments, we studied TDG in the presence and absence of 5-formylctyosine. TDG exhibits multiple modes of linear diffusion, including hopping and sliding, in search of a lesion. We probed TDG active site variants and truncated N-terminus revealing how these variants alter the lesion search and recognition mechanism of TDG. On DNA containing an undamaged nucleosome, TDG was found to either bypass, colocalize with, or encounter but not bypass the nucleosome. However, truncating the N-terminus reduced the number of interactions with the nucleosome. Our findings provide unprecedented mechanistic insights into how TDG searches for DNA lesions in chromatin.

biophysics↗