Dimerization of human PARP15 is required for NAD + binding and automodification

Abstract PARP proteins are enzymes catalyzing ADP-ribosylation, a well-conserved post-translational modification. In addition to the catalytic domain present in all PARPs, these proteins have a wide selection of other domains possessing different functions. Additional domains present in human PARP15 are macrodomains, capable of binding ADP-ribose. PARP15 is the least studied of the macrodomain-containing human PARPs, and it is linked to different diseases from infections to cancer. We show that the full-length canonical isoform 1 of PARP15 auto-ADP-ribosylates robustly on glutamate and aspartate residues, which can be hydrolyzed by known ADP-ribosylhydrolases. We have been able to locate several modification sites to the region of tandem macrodomains. In agreement with earlier reports regarding the catalytic domain dimerization being the requirement for enzyme activity, we show this in the full-length context with the recombinant isoform 1 of PARP15. We show that dimerization is required for the efficient substrate NAD + binding, and we provide structural basis for this requirement with the help of a co-crystal structure of the catalytic domain dimer with an unhydrolyzable substrate analog.

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Publication Details

Journal
FEBS Journal
Published
2026-10-05
DOI
https://doi.org/10.1111/febs.70758
Primary Topic
PARP inhibition in cancer therapy
Type
article
Field-Weighted Citation Impact
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article

Dimerization of human PARP15 is required for NAD + binding and automodification

FEBS Journal
PARP inhibition in cancer therapy
article

Dimerization of human PARP15 is required for NAD + binding and automodification

article en

Abstract

Abstract PARP proteins are enzymes catalyzing ADP-ribosylation, a well-conserved post-translational modification. In addition to the catalytic domain present in all PARPs, these proteins have a wide selection of other domains possessing different functions. Additional domains present in human PARP15 are macrodomains, capable of binding ADP-ribose. PARP15 is the least studied of the macrodomain-containing human PARPs, and it is linked to different diseases from infections to cancer. We show that the full-length canonical isoform 1 of PARP15 auto-ADP-ribosylates robustly on glutamate and aspartate residues, which can be hydrolyzed by known ADP-ribosylhydrolases. We have been able to locate several modification sites to the region of tandem macrodomains. In agreement with earlier reports regarding the catalytic domain dimerization being the requirement for enzyme activity, we show this in the full-length context with the recombinant isoform 1 of PARP15. We show that dimerization is required for the efficient substrate NAD + binding, and we provide structural basis for this requirement with the help of a co-crystal structure of the catalytic domain dimer with an unhydrolyzable substrate analog.

FEBS Journal
RWTH Aachen University (DE), University of Oulu (FI)
Openalex Percentile: Top 100%
PARP inhibition in cancer therapy
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