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December 8, 2025Nature Communications4 citationsOpen Access

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

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MSMatthew A. SchaichJRJennifer A RakowskiVRVera Roginskaya

Key Points

  • PARP1 binds DNA strand breaks effectively, illustrating its role in chromatin binding dynamics.
  • Fluorescence microscopy showed strong interactions with DNA breaks, linking to therapeutic strategies.
  • Analysis used single-molecule techniques to assess PARP1 dynamics on chromatin and DNA.
  • These findings may enable pharmacological advancements targeting PARP1 in DNA damage responses.

Abstract

Poly(ADP-ribose) polymerase 1 (PARP1) detects DNA strand breaks that occur in duplex DNA and chromatin. Here, correlative optical tweezers and fluorescence microscopy reveal 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 binds nicks with nanomolar affinity but does not engage undamaged dsDNA regions. In contrast, PARP1 avidly binds undamaged NCPs, and partial NCP unwrapping induced by DNA tension significantly increases PARP1 on rate and affinity. Catalytically dead PARP1 or EB-47 inhibition greatly increases PARP1 affinity to DNA nicks and undamaged NCP, implicating a mechanism where PARP1 reverse allostery regulates PARP1 retention to undamaged chromatin. We also monitor 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.

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Cite This Study

Schaich et al. (2025) studied this question.

synapsesocial.com/papers/69401f002d562116f28f9c5chttps://doi.org/10.1038/s41467-025-67071-2
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