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The global impact of the COVID-19 crisis has underscored the need for novel therapeutic candidates capable of efficiently targeting essential viral proteins. Existing therapeutic strategies continue to encounter limitations such as reduced efficacy against emerging variants, safety concerns, and suboptimal pharmacodynamics, which emphasize the potential of natural-origin compounds as supportive agents with immunomodulatory, anti-inflammatory, and antioxidant benefits. The present study significantly advances prior molecular docking research through comprehensive virtual screening of structurally related analogs derived from antiviral phytochemicals. These compounds were evaluated specifically against the SARS-CoV-2 main protease (3CLpro) and papain-like protease (PLpro). Utilizing chemical similarity algorithms via the ChEMBL database, over 600 candidate molecules were retrieved and subjected to automated docking, interaction pattern analysis, and comprehensive ADMET profiling. Several analogs showed enhanced binding scores relative to their parent scaffolds, with CHEMBL1720210 (a shogaol-derived analog) demonstrating strong interaction with PLpro (-9.34 kcal/mol), and CHEMBL1495225 (a 6-gingerol derivative) showing high affinity for 3CLpro (-8.04 kcal/mol). Molecular interaction analysis revealed that CHEMBL1720210 forms hydrogen bonds with key PLpro residues including GLY163, LEU162, GLN269, TYR265, and TYR273, complemented by hydrophobic interactions with TYR268 and PRO248. CHEMBL1495225 establishes multiple hydrogen bonds with the 3CLpro residues ASP197, ARG131, TYR239, LEU272, and GLY195, along with hydrophobic contacts with LEU287. Gene expression predictions via DIGEP-Pred indicated that the top-ranked compounds could influence biological pathways linked to inflammation and oxidative stress, processes implicated in COVID-19's pathology. Notably, CHEMBL4069090 emerged as a lead compound with favorable drug-likeness and predicted binding to PLpro. Overall, the applied in silico framework facilitated the rational prioritization of bioactive analogs with promising pharmacological profiles, supporting their advancement toward experimental validation and therapeutic exploration against SARS-CoV-2.
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http://dx.doi.org/10.3390/cimb47070577 | DOI Listing |
Org Lett
September 2025
Department of Chemistry, Indian Institute of Techology Bombay, Powai, Mumbai 400076, India.
The direct α-α coupling of 3-pyrrolyl boron dipyrromethenes (BODIPYs) affords helical near-infrared (NIR)-active dimers in one step via a radical Pd-catalyzed process. X-ray analysis reveals Z-type helical packing stabilized by π-π stacking and hydrogen-bonding interactions. These dimers showed pronounced bathochromic absorption shifts compared to monomers and solvent-dependent charge-transfer bands up to 905 nm with fluorescence quenching.
View Article and Find Full Text PDFJ Comput Chem
September 2025
Wilhelm-Ostwald-Institut für Physikalische und Theoretische Chemie, Leipzig University, Leipzig, Germany.
We investigated primary and secondary geometric isotope effects (H, D, T) on charge-inverted hydrogen bonds (CIHB) and dihydrogen bonds (DHB) using nuclear-electronic orbital density functional theory (NEO-DFT). The dianionic but electrophilic boron cluster [BH] served as a bonding partner, exhibiting a negatively polarized hydrogen atom in the BH bond. CIHB systems included interactions with Lewis acids (AlH, BH, GaH) and carbenes (CF, CCl, CBr), while DHBs were analyzed with NH, HF, HCl, and HBr.
View Article and Find Full Text PDFChemistry
September 2025
Department of Chemistry, Birla Institute of Technology and Science-Pilani, K K Birla Goa Campus, Zuarinagar, Goa, 403726, India.
This study investigates the unique syneresis (self-shrinking) behavior of N-Terminally Fmoc-protected amino acid, Fmoc-hPhe-OH (Fmoc-homo-L-phenylalanine, abbreviated in this work as hF)-based hydrogel, and its potential in environmental remediation applications. Fmoc-hPhe-OH (hF) forms a hydrogel in 50 mM phosphate buffer (PB) of pH 7.4.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
September 2025
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, China.
Enhancing the energy conversion efficiency of fuel cells necessitates optimization of oxygen reduction reaction (ORR) under high-voltage conditions through improved Pt catalysis. This study introduces an electrocatalyst that uniformly anchors a high loading (40 wt%) of small Pt nanoparticles (3.2 nm) on a novel support: tellurium and nitrogen co-mediated graphitized mesoporous carbon (Te-N-GMC).
View Article and Find Full Text PDFACS Appl Mater Interfaces
September 2025
School of Petrochemical Engineering, Liaoning Petrochemical University, Fushun 113001, China.
Strong intermolecular interactions facilitate the formation of efficient ion transport channels, which, in turn, significantly boost the performance of anion exchange membranes (AEMs). Herein, 9-anthracene methanol with both π-π stacking and hydrogen bonding intermolecular forces is used as a bifunctional unit to synthesize high-performance AEMs through the Friedel-Crafts superacid catalytic reaction for the first time. The π-π stacking in the bifunctional units can induce hydrophilic pyridine cations to aggregate, and the hydrogen bonding can provide transport sites for OH and water molecules in the hydrophobic component.
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