Computer-assisted design of arylethylbenzamides as predicted nanomolar inhibitors of papain-like cysteine protease of SARS-CoV-2.

Publication date: Jul 02, 2026

The pandemic of the new coronavirus SARS-CoV-2, which causes the severe acute respiratory syndrome COVID-19, represents a long-term threat to the health of the human population. Therefore, the continuous development of new small-molecule antivirals remains essential to effectively address current infections and ensure preparedness for future pandemic threats. The objective of the study was to computationally design, optimize, and prioritize (R)-arylethylbenzamide (AREB) analogs as potential inhibitors of SARS-CoV-2 papain-like protease (PL), a conserved antiviral target involved in viral polyprotein cleavage and host immune evasion signaling. We hypothesize that receptor-structure-guided expansion of the AREB scaffold in four distinct regions – reaching towards the BL2-groove, the Cys111 catalytic site, the electrostatic Glu167/Asp164 region, and the Val70 pocket adjacent to ubiquitin – can produce candidates with predicted low-nanomolar inhibitory potency while maintaining the drug-like properties of the new analogs. Multiple published PL-inhibitor crystal structures were used as templates after molecular mechanics refinement. A QSAR model was built from 51 published AREB inhibitors by correlating the calculated relative enzyme-inhibitor interaction energies (ΔΔE) with the experimentally determined pIC values using linear regression and extensive 5-fold cross-validation. Four virtual combinatorial libraries were designed and enumerated for substitution sites (R – R) of a common scaffold and screened by extra-precision docking followed by MM-GB/SA rescoring. The predicted IC values were used for the potency ranking of the new AREB analogs. Predicted ADME-related descriptors guided iterative virtual library focusing and filtering. For selected leads, QM/MM interaction energies (ΔΔE) and TIP4P explicit-solvent 200 ns MD simulations were used to assess the stability of the binding mode of promising new PL inhibitors. The QSAR model demonstrated strong internal validity and predictability, enabling the prioritization of designed analogs. After ADME-based filtering, three final drug candidates with predicted IC = 5. 2-5. 3 nM and an estimated 18-fold increase in potency compared to the most potent reference inhibitor considered (IC = 94 nM) were prioritized. The top candidates preserved the hallmark BL2-loop closure binding mode while extending stabilizing interaction networks to additional subsites targeted by the individual R-group design strategy. MD trajectories supported stable pocket occupancy over a 200 ns simulation and sustained key hydrogen bonds and hydrophobic contacts. An integrated QSAR and structure-guided computational workflow prioritized synthetically available drug-like AREB analogs as putative SARS-CoV-2 PL inhibitors with predicted low nanomolar potency. Although the presented findings are mostly computational and require experimental validation, the identified lead compounds represent promising candidates for further antiviral agent development.

Open Access PDF

Concepts Keywords
Arylethylbenzamides Computer-aided drug design
Coronavirus Molecular dynamics
Library QM/MM calculations
Pandemic QSAR
Precision

Semantics

Type Source Name
drug DRUGBANK Papain
drug DRUGBANK L-Cysteine
disease MESH severe acute respiratory syndrome
disease MESH COVID-19
disease MESH infections
pathway REACTOME Reproduction
disease MESH included
pathway KEGG Viral replication
pathway REACTOME Interferon Signaling
disease MESH cytokine storm
disease MESH inflammation
pathway REACTOME Deubiquitination
disease MESH coronavirus infections
drug DRUGBANK Water
drug DRUGBANK Amino acids
drug DRUGBANK Glutamic Acid
drug DRUGBANK Flunarizine
drug DRUGBANK Aspartame
disease MESH MAE
disease MESH PSA
drug DRUGBANK Hyaluronic acid
drug DRUGBANK Racivir
drug DRUGBANK Glycine
drug DRUGBANK Pentaerythritol tetranitrate
drug DRUGBANK Activated charcoal
disease MESH star
drug DRUGBANK Urea
drug DRUGBANK Cimetidine
pathway REACTOME Methylation
pathway REACTOME Release
drug DRUGBANK Oxygen
drug DRUGBANK Cyanamide
drug DRUGBANK Nitrogen
drug DRUGBANK Aniline
disease MESH respiratory infections
drug DRUGBANK Isoxaflutole
pathway REACTOME Metabolism
disease MESH virus infection
disease MESH Dis
drug DRUGBANK Diethylstilbestrol
disease MESH Des
disease MESH David
drug DRUGBANK L-Alanine
disease MESH Ischemia
drug DRUGBANK Resveratrol
drug DRUGBANK Lipoic Acid
drug DRUGBANK Ubidecarenone
drug DRUGBANK Isoniazid
pathway REACTOME Acetylation
disease MESH influenza

Original Article

(Visited 2 times, 1 visits today)

Leave a Comment

Your email address will not be published. Required fields are marked *