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Author

Abha Mishra

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Sep 2026

Structure-based discovery of potent SMO inhibitors guided by MM/GBSA binding free energies in hedgehog-driven cancers.

The Hedgehog (Hh) signaling pathway, crucial for embryonic development and tissue homeostasis, is frequently dysregulated in cancers, making its core component, the Smoothened (SMO) receptor, a prime therapeutic target. This study employed an integrative computational strategy to identify novel SMO inhibitors. Virtual screening of the ZINC database highlighted ZINC000299767263 (ZINC7263) as a top candidate, exhibiting a Glide score of -10.86 and MM/GBSA binding energy of -65.3 kJ/mol, comparable to the FDA-approved inhibitor Vismodegib. Molecular docking revealed critical interactions with SMO residues Asp384, Arg400, and Gln477, supported by hydrophobic contacts with Phe484 and Trp480. Molecular dynamics simulations (200 ns) demonstrated stable binding, with root-mean-square deviation (RMSD) and fluctuation (RMSF) analyses confirming complex stability. Free energy decomposition underscored contributions from Asp384, Arg400, and Gln477, aligning with Vismodegib's binding mechanism. ZINC7263 adhered to drug-likeness criteria (Lipinski's rule of five, Jorgensen's rule of three) and exhibited favorable pharmacokinetics, including high oral absorption (89.45%) and blood-brain barrier permeability (logBB = -1.01). Induced-fit docking further validated its binding mode, highlighting a conserved interaction profile. These findings position ZINC7263 as a novel, potent SMO inhibitor with a stable binding affinity, dynamic interaction stability, and promising preclinical potential for targeting Hh-driven cancers. Its unique scaffold and optimized pharmacokinetic profile advocate for advanced in vitro and in vivo studies to translate these computational insights into therapeutic applications.

Arpit Sharma, Alok Shukla, S. Raut et al. · 0 citations
Aug 2026

Folic acid-functionalized PLGA-cystamine nanoparticles for glutathione-responsive capecitabine delivery in pancreatic cancer: in vitro and in vivo evaluation.

Due to high systemic toxicity associated with conventional chemotherapy and limited drug accumulation at the tumour site, pancreatic cancer is still challenging to eliminate. To improve the intracellular transport of capecitabine, a glutathione-responsive nanocarrier system based on poly(lactic-co-glycolic acid) (PLGA) was designed. PLGA coupled with cystamine was used to create the nanoformulation, which introduced disulphide bonds that are stable in extracellular environments but cleaved in a reductive intracellular environment enriched with glutathione. This redox-sensitive mechanism enables rapid drug release specifically within cancer cells. The nanoparticle surface was functionalised with folic acid to promote folate receptor-mediated endocytosis, which is often overexpressed on pancreatic cancer, thereby further enhancing cellular uptake. DLS and TEM Microscopy confirmed a consistent nanoparticle size of FoA-PLGA-Cys-CAP 261.3 ± 2.8 nm with uniform shape, indicating suitability for therapeutic delivery. In vitro cytotoxicity studies showed an IC50 value of 77.52 ± 1.33 μg/mL and increased reactive oxygen species generation in treated cells. For in vivo evaluation, PANC1 cells were subcutaneously implanted to establish a pancreatic tumour model. Over 12 days, tumour size increased from 20.617 mm2 to 57.71 mm2. Following 10 days of treatment with the nanoformulation, tumour size significantly decreased from 57.71 mm2 to 43.099 mm2, demonstrating promising therapeutic efficacy.

Abhay Dev Tripathi, S. Katiyar, Vivek K. Chaturvedi et al. · 0 citations

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