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Updated: Jun 28, 2025

NMR-Based Fragment Screening in a Minimum Sample but Maximum Automation Mode
Published on: June 4, 2021
Leveraging shape screening and molecular dynamics simulations to optimize PARP1-Specific chemo/radio-potentiators for
Hifza Khizer1, Arooma Maryam2, Adnan Ansari1
1National Center for Bioinformatics, Quaid-i-Azam University, Islamabad, Pakistan.
Abstract:
PARP1 plays a pivotal role in DNA repair within the base excision pathway, making it a promising therapeutic target for cancers involving BRCA mutations. Current study is focused on the discovery of PARP inhibitors with enhanced selectivity for PARP1. Concurrent inhibition of PARP1 with PARP2 and PARP3 affects cellular functions, potentially causing DNA damage accumulation and disrupting immune responses. In step 1, a virtual library of 593 million compounds has been screened using a shape-based screening approach to narrow down the promising scaffolds. In step 2, hierarchical docking approach embedded in Schrödinger suite was employed to select compounds with good dock score, drug-likeness and MMGBSA score. Analysis supplemented with decomposition energy, molecular dynamics (MD) simulations and hydrogen bond frequency analysis, pinpointed that active site residues; H862, G863, R878, M890, Y896 and F897 are crucial for specific binding of ZINC001258189808 and ZINC000092332196 with PARP1 as compared to PARP2 and PARP3. The binding of ZINC000656130962, ZINC000762230673, ZINC001332491123, and ZINC000579446675 also revealed interaction involving two additional active site residues of PARP1, namely N767 and E988. Weaker or no interaction was observed for these residues with PARP2 and PARP3. This approach advances our understanding of PARP-1 specific inhibitors and their mechanisms of action, facilitating the development of targeted therapeutics.
Insights
Researchers identified novel PARP1 inhibitors with high selectivity, crucial for developing targeted cancer therapies. This discovery aids in creating drugs that specifically target PARP1, minimizing side effects associated with inhibiting PARP2 and PARP3.
Area of Science:
- Biochemistry
- Molecular Biology
- Drug Discovery
Background:
- Poly (ADP-ribose) polymerase 1 (PARP1) is vital for DNA repair via the base excision pathway.
- PARP1 is a key therapeutic target in cancers with BRCA mutations.
- Concurrent inhibition of PARP1, PARP2, and PARP3 can disrupt cellular functions and immune responses.
Purpose of the Study:
- To discover novel PARP inhibitors with enhanced selectivity for PARP1.
- To understand the molecular interactions driving PARP1 specificity.
Main Methods:
- Screened 593 million compounds using shape-based screening.
- Employed hierarchical docking, MMGBSA, molecular dynamics (MD) simulations, and hydrogen bond frequency analysis.
- Utilized Schrödinger suite for computational analysis.
Main Results:
- Identified specific compounds (e.g., ZINC001258189808, ZINC000092332196) with high affinity for PARP1.
- Pinpointed key active site residues (H862, G863, R878, M890, Y896, F897) crucial for PARP1-specific binding.
- Observed differential interactions with PARP2 and PARP3, confirming PARP1 selectivity.
Conclusions:
- The study advances the understanding of PARP1-specific inhibitors.
- Identified novel compounds with potential for targeted cancer therapeutics.
- The computational approach facilitates the development of selective PARP1 inhibitors.
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