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PARP1-modulated chromatin remodeling is a new target for cancer treatment
Saptarshi Sinha1, Sefinew Molla1, Chanakya Nath Kundu2
1Cancer Biology Division, School of Biotechnology, Kalinga Institute of Industrial Technology (KIIT), Deemed to be University, Campus-11, Patia, Bhubaneswar, Odisha, 751024, India.
Abstract:
Cancer progression requires certain tumorigenic mutations in genes encoding for different cellular and nuclear proteins. Altered expressions of these mutated genes are mediated by post-translational modifications and chromatin remodeling. Chromatin remodeling is mainly regulated by the chromatin remodeling enzyme complexes and histone modifications. Upon DNA damage, Poly-(ADP-ribose) Polymerase1 (PARP1) plays a very important role in the induction of chromatin modifications and activation of DNA repair pathways to repair the DNA lesion. It has been targeted to develop different anti-cancer therapeutic interventions and PARP inhibitors have been approved by the U.S. Food and Drug Administration (FDA) for clinical use. But it has been found that the cancer cells often develop resistance to these PARP inhibitors and chromatin remodeling helps in enhancing this process. Hence, it may be beneficial to target PARP1-mediated chromatin remodeling, which may allow to reverse the drug resistance. In the current review, we have discussed the role of chromatin remodeling in DNA repair, how PARP1 regulates modifications of chromatin dynamics, and the role of chromatin modifications in cancer. It has also been discussed how the PARP1-mediated chromatin remodeling can be targeted by PARP inhibitors alone or in combination with other chemotherapeutic agents to establish novel anti-cancer therapeutics. We have also considered the use of PARG inhibitors that may enhance the action of PARP inhibitors to target different types of cancers.
Insights
Targeting Poly-(ADP-ribose) Polymerase1 (PARP1)-mediated chromatin remodeling may reverse cancer drug resistance. This review explores PARP1
Area of Science:
- Molecular Biology
- Cancer Research
- Epigenetics
Background:
- Cancer progression involves genetic mutations and altered gene expression.
- Post-translational modifications and chromatin remodeling regulate gene expression.
- Poly-(ADP-ribose) Polymerase1 (PARP1) is crucial for DNA repair and chromatin modification.
Purpose of the Study:
- To review the role of chromatin remodeling in DNA repair and cancer.
- To discuss how PARP1 regulates chromatin dynamics and modifications.
- To explore targeting PARP1-mediated chromatin remodeling to overcome drug resistance.
Main Methods:
- Literature review of studies on chromatin remodeling, PARP1, and cancer.
- Analysis of mechanisms by which PARP1 influences chromatin dynamics.
- Evaluation of therapeutic strategies targeting PARP1-mediated chromatin remodeling.
Main Results:
- Chromatin remodeling plays a significant role in DNA repair and cancer development.
- PARP1 activity is integral to inducing chromatin modifications and DNA repair.
- Cancer cells develop resistance to PARP inhibitors, partly through chromatin remodeling.
Conclusions:
- Targeting PARP1-mediated chromatin remodeling offers a potential strategy to reverse drug resistance.
- PARP inhibitors, alone or in combination, show promise for novel anti-cancer therapeutics.
- PARG inhibitors may enhance PARP inhibitor efficacy in treating various cancers.
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