4.8 Article

HPF1 dynamically controls the PARP1/2 balance between initiating and elongating ADP-ribose modifications

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NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-021-27043-8

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  1. Canadian Institutes of Health Research [PJT173370]
  2. Natural Sciences and Engineering Research Council of Canada [RTI-2018-00894]
  3. National Institutes of Health [R35GM130302]
  4. National Cancer Institute grant Structural Biology of DNA Repair (SBDR) [CA92584]

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HPF1 dynamically regulates the ADP-ribosylation activity of PARP1/2 by accelerating the initiation rate on serine residues; HPF1 efficiently modulates the catalytic output of PARP1/2 to ensure it does not interfere with PAR chain elongation; The study provides evidence for the prevalence of serine-ADP-ribose modification in cells and its importance in an acute DNA damage response.
HPF1 controls the ADP-ribosylation activity of PARP1/2 in response to DNA breaks. Here, the authors show that HPF1 regulates the balance between ADP-ribose initiation and elongation through a dynamic interaction that accelerates the initiation rate on serine residues. PARP1 and PARP2 produce poly(ADP-ribose) in response to DNA breaks. HPF1 regulates PARP1/2 catalytic output, most notably permitting serine modification with ADP-ribose. However, PARP1 is substantially more abundant in cells than HPF1, challenging whether HPF1 can pervasively modulate PARP1. Here, we show biochemically that HPF1 efficiently regulates PARP1/2 catalytic output at sub-stoichiometric ratios matching their relative cellular abundances. HPF1 rapidly associates/dissociates from multiple PARP1 molecules, initiating serine modification before modification initiates on glutamate/aspartate, and accelerating initiation to be more comparable to elongation reactions forming poly(ADP-ribose). This hit and run mechanism ensures HPF1 contributions to PARP1/2 during initiation do not persist and interfere with PAR chain elongation. We provide structural insights into HPF1/PARP1 assembled on a DNA break, and assess HPF1 impact on PARP1 retention on DNA. Our data support the prevalence of serine-ADP-ribose modification in cells and the efficiency of serine-ADP-ribose modification required for an acute DNA damage response.

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