Molecular modelling studies and identification of novel phytochemical inhibitor of DLL3
Bhrugesh Pravinchandra Joshi1, Vishwambhar Vishnu Bhandare2, Prittesh Patel1
1C. G. Bhakta Institute of Biotechnology, Uka Tarsadia University, Tarsadi, Gujarat, India.
Abstract:
Prostate cancer has been recently considered the most diagnosed cancer in male. DLL3 is overexpressed in CRPC-NE but not in localised prostate cancer or BPH. There are no effective treatments for neuroendocrine differentiated prostate cancer due to a lack of understanding of DLL3 structure and function. The structure of DLL3 is not yet determined using any experimental techniques. Hence, the structure-based drug discovery approach against prostate cancer has not shown great success. In present study, molecular modelling techniques were employed to generate three-dimensional structure of DLL3 and performed its thorough structural analysis. Further, all-atom molecular dynamics simulation was performed to obtain energetically favourable conformation. Further, we used a virtual screening using a library of >13800 phytochemicals from the IMPPAT database and other literature to select the best possible phytochemical inhibitor for DLL3 and identified the top five compounds. Relative binding affinity was calculated using the MM-PBSA approach. ADMET properties of the screened compounds reveal the toxic effect of Gnemonol C. We believe these studied physicochemical properties, functional domain identification, and binding site identification would be very useful to gain more structural and functional insights of DLL3; also, it can be used to infer their pharmacodynamics properties of DLL3 which was recently reported as an important prostate cancer target. The current study also proposes that Ergosterol Peroxide, Dioslupecin A, Mulberrofuran K, and Caracurine V have strong affinities and could serve as plausible inhibitors against DLL3. We believe this study would further help develop better drug candidates against neuroendocrine prostate cancer.Communicated by Ramaswamy H. Sarma.
Insights
This study used molecular modeling to determine the 3D structure of DLL3, a protein overexpressed in neuroendocrine prostate cancer. Researchers identified four phytochemicals as potential inhibitors, offering new avenues for treating this aggressive cancer.
Area of Science:
- Biochemistry
- Computational Biology
- Drug Discovery
Background:
- Prostate cancer is the most diagnosed cancer in males.
- DLL3 is overexpressed in castration-resistant neuroendocrine prostate cancer (CRPC-NE).
- Lack of structural and functional understanding of DLL3 hinders drug discovery for CRPC-NE.
Purpose of the Study:
- To determine the 3D structure of DLL3 using molecular modeling.
- To identify potential phytochemical inhibitors of DLL3.
- To provide insights for developing novel therapeutics against neuroendocrine prostate cancer.
Main Methods:
- Molecular modeling and structural analysis of DLL3.
- All-atom molecular dynamics simulations for conformational analysis.
- Virtual screening of >13,800 phytochemicals from the IMPPAT database.
- MM-PBSA for relative binding affinity calculations.
- ADMET property prediction for screened compounds.
Main Results:
- A stable 3D structure of DLL3 was generated and analyzed.
- Four phytochemicals (Ergosterol Peroxide, Dioslupecin A, Mulberrofuran K, Caracurine V) showed strong binding affinities to DLL3.
- Gnemonol C exhibited toxic effects based on ADMET predictions.
- Identified key structural and functional insights, including binding sites.
Conclusions:
- The study provides valuable structural and functional insights into DLL3.
- Identified promising phytochemical inhibitors for DLL3.
- Ergosterol Peroxide, Dioslupecin A, Mulberrofuran K, and Caracurine V are potential drug candidates for neuroendocrine prostate cancer.
- This research facilitates the development of targeted therapies for advanced prostate cancer.
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