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Deacetylation Assays to Unravel the Interplay between Sirtuins SIRT2 and Specific Protein-substrates
Published on: February 27, 2016
Bioactive fungal metabolites as SIRT2 antagonists: A computational quest for cancer treatment
Md Habib Ullah Masum1, Syed Mohammad Lokman2, Kazi Chamonara3
1Department of Genomics and Bioinformatics, Faculty of Biotechnology and Genetic Engineering, Chattogram Veterinary and Animal Sciences University, Khulshi, Bangladesh.
Abstract:
SIRT2, a member of the sirtuin protein family, plays a pivotal role in regulating tumor progression by modulating key metabolic pathways and signaling proteins. The regulatory role of this protein has been documented across a variety of cancers. Emphasizing its role in cancer biology, this study employed computer aided drug design (CADD) approach, including molecular docking, dynamics and pharmacoinformatics, to screen fungal metabolites as potential anticancer agents. Subsequent assessments of pharmacokinetics and toxicity revealed that all tested fungal metabolites possessed oral bioavailability, drug-like characteristics, and favorable ADMET profiles. The metabolites also exhibited no hepatotoxicity, carcinogenicity, or mutagenicity, highlighting their significant therapeutic potential and favorable safety profile. The docking analysis further revealed strong binding affinities of the metabolites with the SIRT2, with the MSID001658 showing the highest score (-10.9 kcal/mol), followed by the MSID000672 (-10.2 kcal/mol). Further molecular dynamics simulation evaluated the structural and dynamic stabilities of the SIRT2 in association with the ligands. Although both complexes showed overall stability, the MSID000672 had larger RMSD variations, whereas the MSID001658 maintained consistent structural integrity throughout the simulation. Furthermore, the binding of MSID000672 was associated with increased solvent exposure, in contrast to the more compact molecular surface area (MolSA) and radius of gyration (Rg) profile observed for the MSID001658. The PCA indicated compact clustering (53.6%) for the SIRT2_MSID000672 complex, whereas the SIRT2_MSID001658 had a larger variance (70.9%) of flexibility. The DCCM further revealed enhanced coordination of internal movements in the SIRT2_MSID000672 complexes. Finally, the MSID001658 fosters a compact, stable complex with the SIRT2, whereas the MSID000672 increases conformational flexibility and solvent accessibility. These results support the notion that the MSID000672 might be an effective anticancer agent if subjected to more experimental trials.
Insights
This study screened fungal metabolites as potential anticancer agents targeting SIRT2 using computational methods. MSID000672 showed promising anticancer potential with favorable safety and drug-like properties.
Area of Science:
- Biochemistry
- Computational Chemistry
- Pharmacology
Background:
- Sirtuin 2 (SIRT2) is a key regulator of tumor progression in various cancers.
- Targeting SIRT2 presents a potential strategy for anticancer drug development.
Purpose of the Study:
- To screen fungal metabolites as potential SIRT2 inhibitors using a computer-aided drug design (CADD) approach.
- To evaluate the pharmacokinetic, toxicity, and binding profiles of identified potential anticancer agents.
Main Methods:
- Computer-aided drug design (CADD), including molecular docking, molecular dynamics, and pharmacoinformatics.
- Assessment of ADMET properties, hepatotoxicity, carcinogenicity, and mutagenicity.
- Analysis of binding affinity, stability, and conformational changes using docking, molecular dynamics, PCA, and DCCM.
Main Results:
- All tested fungal metabolites exhibited favorable pharmacokinetic and safety profiles, with no observed hepatotoxicity, carcinogenicity, or mutagenicity.
- Molecular docking identified strong binding affinities for metabolites with SIRT2, with MSID001658 (-10.9 kcal/mol) and MSID000672 (-10.2 kcal/mol) showing the highest scores.
- Molecular dynamics simulations indicated that MSID001658 forms a stable complex with SIRT2, while MSID000672 enhances conformational flexibility and solvent accessibility, suggesting potential therapeutic efficacy.
Conclusions:
- Fungal metabolites, particularly MSID000672, demonstrate significant therapeutic potential as anticancer agents targeting SIRT2.
- The CADD approach successfully identified drug-like compounds with favorable safety profiles.
- Further experimental validation is warranted to confirm the anticancer efficacy of MSID000672.
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