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HPF1 completes the PARP active site for DNA damage-induced ADP-ribosylation
Marcin J Suskiewicz1, Florian Zobel1, Tom E H Ogden2
1Sir William Dunn School of Pathology, University of Oxford, Oxford, UK.
Abstract:
The anti-cancer drug target poly(ADP-ribose) polymerase 1 (PARP1) and its close homologue, PARP2, are early responders to DNA damage in human cells1,2. After binding to genomic lesions, these enzymes use NAD+ to modify numerous proteins with mono- and poly(ADP-ribose) signals that are important for the subsequent decompaction of chromatin and the recruitment of repair factors3,4. These post-translational modifications are predominantly serine-linked and require the accessory factor HPF1, which is specific for the DNA damage response and switches the amino acid specificity of PARP1 and PARP2 from aspartate or glutamate to serine residues5-10. Here we report a co-structure of HPF1 bound to the catalytic domain of PARP2 that, in combination with NMR and biochemical data, reveals a composite active site formed by residues from HPF1 and PARP1 or PARP2 . The assembly of this catalytic centre is essential for the addition of ADP-ribose moieties after DNA damage in human cells. In response to DNA damage and occupancy of the NAD+-binding site, the interaction of HPF1 with PARP1 or PARP2 is enhanced by allosteric networks that operate within the PARP proteins, providing an additional level of regulation in the induction of the DNA damage response. As HPF1 forms a joint active site with PARP1 or PARP2, our data implicate HPF1 as an important determinant of the response to clinical PARP inhibitors.
Insights
HPF1 forms a composite active site with PARP1/PARP2, crucial for DNA damage repair via serine ADP-ribosylation. This interaction is vital for the cell's response to DNA damage and clinical PARP inhibitors.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Poly(ADP-ribose) polymerase 1 (PARP1) and PARP2 are key responders to DNA damage.
- They modify proteins with ADP-ribose signals, aiding chromatin decompaction and repair factor recruitment.
- Serine-linked modifications require HPF1, which alters PARP1/PARP2 specificity for DNA damage response.
Purpose of the Study:
- To elucidate the structural and functional role of HPF1 in PARP-mediated DNA damage response.
- To investigate the formation of the composite active site involving HPF1 and PARP enzymes.
- To understand the regulation of HPF1-PARP interactions in response to DNA damage.
Main Methods:
- Co-structure determination of HPF1 with the catalytic domain of PARP2.
- Nuclear Magnetic Resonance (NMR) spectroscopy.
- Biochemical assays to assess enzyme activity and interactions.
Main Results:
- A composite active site formed by HPF1 and PARP1/PARP2 residues was revealed.
- This catalytic center is essential for ADP-ribose addition post-DNA damage.
- Allosteric networks enhance HPF1-PARP interaction upon DNA damage and NAD+ binding, regulating the DNA damage response.
Conclusions:
- HPF1 is integral to forming the active site of PARP1 and PARP2 for DNA damage repair.
- HPF1 acts as a crucial determinant in the cellular response to DNA damage.
- HPF1's role in the composite active site implicates it in the efficacy of clinical PARP inhibitors.
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