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Histone ADP-ribosylation promotes resistance to PARP inhibitors by facilitating PARP1 release from DNA lesions
Siham Zentout1, Victor Imburchia1, Catherine Chapuis1
1University of Rennes, CNRS, Institut de génétique et développement de Rennes-UMR 6290, Biologie, Santé, Innovation Technologique (BIOSIT)-UMS3480, Rennes F-35000, France.
Abstract:
Poly(ADP-ribose) polymerase 1 (PARP1) has emerged as a central target for cancer therapies due to the ability of PARP inhibitors to specifically kill tumors deficient for DNA repair by homologous recombination. Upon DNA damage, PARP1 quickly binds to DNA breaks and triggers ADP-ribosylation signaling. ADP-ribosylation is important for the recruitment of various factors to sites of damage, as well as for the timely dissociation of PARP1 from DNA breaks. Indeed, PARP1 becomes trapped at DNA breaks in the presence of PARP inhibitors, a mechanism underlying the cytotoxitiy of these inhibitors. Therefore, any cellular process influencing trapping is thought to impact PARP inhibitor efficiency, potentially leading to acquired resistance in patients treated with these drugs. There are numerous ADP-ribosylation targets after DNA damage, including PARP1 itself as well as histones. While recent findings reported that the automodification of PARP1 promotes its release from the DNA lesions, the potential impact of other ADP-ribosylated proteins on this process remains unknown. Here, we demonstrate that histone ADP-ribosylation is also crucial for the timely dissipation of PARP1 from the lesions, thus contributing to cellular resistance to PARP inhibitors. Considering the crosstalk between ADP-ribosylation and other histone marks, our findings open interesting perspectives for the development of more efficient PARP inhibitor-driven cancer therapies.
Insights
Histone ADP-ribosylation, not just Poly(ADP-ribose) polymerase 1 (PARP1) automodification, is vital for releasing PARP1 from DNA damage sites. This finding impacts PARP inhibitor efficacy and resistance in cancer therapy.
Area of Science:
- Molecular Biology
- Cancer Research
- Biochemistry
Background:
- Poly(ADP-ribose) polymerase 1 (PARP1) is a key target in cancer therapy, particularly for tumors with homologous recombination deficiencies.
- PARP inhibitors kill cancer cells by trapping PARP1 at DNA breaks, a process influenced by PARP1 dissociation from lesions.
Purpose of the Study:
- To investigate the role of histone ADP-ribosylation in the dissociation of PARP1 from DNA damage sites.
- To determine if histone ADP-ribosylation impacts the efficiency and resistance to PARP inhibitors.
Main Methods:
- Investigated the impact of histone ADP-ribosylation on PARP1 dissociation from DNA lesions.
- Assessed the influence of this process on cellular resistance to PARP inhibitors.
Main Results:
- Demonstrated that histone ADP-ribosylation is crucial for the timely release of PARP1 from DNA breaks.
- Showed that impaired histone ADP-ribosylation contributes to cellular resistance to PARP inhibitors.
Conclusions:
- Histone ADP-ribosylation plays a significant role in regulating PARP1 dissociation, affecting PARP inhibitor efficacy.
- Findings suggest potential therapeutic strategies by targeting histone ADP-ribosylation to enhance PARP inhibitor-based cancer treatments.
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