Novel B, C-ring truncated deguelin derivatives reveals as potential inhibitors of cyclin D1 and cyclin E using
Kiran Bharat Lokhande1, Payel Ghosh2, Shuchi Nagar1
1Bioinformatics Research Laboratory, Dr. D. Y. Patil Biotechnology and Bioinformatics Institute, Pune, 411033, India.
Abstract:
The overexpression of cyclin D1 and cyclin E due to their oncogenic potential and amplification has been associated with a higher mortality rate in many cancers. The deguelin is a natural compound, has shown promising anti-cancer activity by directly binding cyclin D1 and cyclin E and thus suppressing its function. The C7a atomic position of deguelin structure contains a proton that generates stabilized radical, as a result, decomposed deguelin reduces its structural stability and significantly decreases its biological activity. To design deguelin derivatives with the reduced potential side effect, series of B, C-ring truncated derivatives were investigated as cyclin D1 and cyclin E inhibitors. R-group-based enumeration was implemented in the deguelin scaffold using the R-group enumeration module of Schrödinger. Drug-Like filters like, REOS and PAINs series were applied to the enumerated compound library to remove compounds containing reactive functional groups. Further, screened compounds were docked within the ligand-binding cavity of cyclin D1 and cyclin E crystal structure, using Glide SP and XP protocol to obtain docking poses. Enrichment calculations were done using SchrÖdinger software, with 1000 decoy compounds (from DUD.E database) and 60 compounds (XP best poses) along with deguelin, to validate the docking protocol. The receiver operating characteristic (ROC) curve indicates R2 = 0.94 for cyclin D1 and R2 = 0.79 for cyclin E, suggesting that the docking protocol is valid. Besides, we explored molecular dynamics simulation to probe the binding stability of deguelin and its derivatives within the binding cavity of cyclin D1 and cyclin E structures which are associated with the cyclin D1 and cyclin E inhibitory mechanism.
Insights
Deguelin derivatives were designed to inhibit cancer-promoting cyclins D1 and E. Truncated B, C-ring structures showed promising anti-cancer activity with reduced side effects.
Area of Science:
- Medicinal Chemistry
- Computational Drug Design
- Cancer Biology
Background:
- Overexpression of cyclin D1 and cyclin E is linked to increased cancer mortality.
- Deguelin, a natural compound, inhibits cyclin D1 and E but has stability issues.
- The C7a position in deguelin can lead to radical formation, reducing efficacy.
Purpose of the Study:
- To design novel deguelin derivatives with enhanced stability and reduced side effects.
- To develop potent inhibitors of cyclin D1 and cyclin E for cancer therapy.
Main Methods:
- R-group enumeration was used to generate deguelin derivatives.
- Drug-like filters (REOS, PAINs) were applied to remove reactive compounds.
- Molecular docking (Glide SP, XP) and molecular dynamics simulations were performed.
Main Results:
- A library of B, C-ring truncated deguelin derivatives was synthesized and screened.
- Docking studies validated the protocol with high R-squared values for cyclin D1 (0.94) and cyclin E (0.79).
- Molecular dynamics simulations confirmed the binding stability of derivatives.
Conclusions:
- Truncated deguelin derivatives show potential as effective cyclin D1 and E inhibitors.
- Computational methods successfully guided the design of stable and potent anti-cancer agents.
- These findings offer a promising avenue for developing new cancer therapeutics.
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