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Biology subjects

Basu Choudhury, G.

Publications and source records attributed to Basu Choudhury, G..

2 recordsLinked to original sources

Structure-Guided Discovery and Characterization of Novel FLT3 Inhibitors for Acute Myeloid Leukemia Treatment

FLT3 (FMS-like tyrosine kinase 3), a receptor tyrosine kinase, is frequently mutated in acute myeloid leukemia (AML), a hematologic malignancy marked by aggressive proliferation, poor prognosis, and high relapse rates. Although FDA-approved FLT3 inhibitors exist, their clinical efficacy is often undermined by resistance and off-target effects, underscoring the critical necessity for more effective and selective agents. Here, we employed a structure-based computational approach combining pharmacophore screening via Pharmit and the MolPort compound library to identify novel FLT3 inhibitors. Pharmacophore modeling, virtual screening, and docking identified two promising leads, MolPort-002-705-878 and MolPort-007-550-904, with binding affinities of -11.33 and -10.66 kcal/mol, correspondingly. These compounds were further characterized through molecular dynamics (MD) simulations, incorporating Principal Component Analysis (PCA), free energy landscape (FEL) analysis, density functional theory (DFT) calculations, and ADMET profiling. MD results supported the integrity of the FLT3-lead complexes; DFT revealed favorable reactivity, and ADMET predictions indicated drug-likeness with low toxicity, pending experimental confirmation. This integrated in silico pipeline highlights the potential of these molecules as next-generation FLT3 inhibitors and offers a scalable strategy for targeted AML therapeutics.

biochemistry↗

Implication of structural constrains facilitating the functional evolution of Pseudomonas aeruginosa KPR2 into a versatile α-keto acid reductase.

Protein structure and function dynamics in molecular evolution are intertwined. Theoretical concepts linking structure, function, and evolution of a protein, while often intuitive, necessitate validation through investigations in real-world systems. Our study empirically explores the implications of multiple panE2 gene copies in an organism, shedding light on the functional roles and evolutionary trajectories of Pseudomonas aeruginosas second copy of Ketopantoate reductase (PaKPR2) and its inactivity against the natural substrate Ketopantoate. Evolutionary changes in functional traits were examined around the active site through crystal structures and biochemical analysis. Primarily, apoKPR2 structures reveal a transformed active site cleft, forming a two-sided pocket, while substrate entry is regulated by a molecular gate. Despite cleft closure, molecular interaction properties and activity analysis of PaKPR2 suggest that it can be a versatile keto-acid reductase. However, detailed structural insights from the ligand-bound binary complex of PaKPR2-NADPH and PaKPR2-Ketoisoleucine reveal that the ligand-binding interactions at the active site are conserved and restricted to the molecules of appropriate shape and size that can be accommodated in the available space. Finally, a ternary complex structure, PaKPR2-NADP+-KIC, was solved to understand its functional evolution in terms of the residue microenvironment at the catalytic site. Collectively, the results give detailed visual experiences of different structural perspectives of the proteins functional evolution.

biochemistry↗