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bioRxiv · 10.64898/2026.09.02.748787

Experimental and In Silico Analysis of the Structural Dynamics of Dengue NS2B-NS3 Protease

Abstract

The Dengue virus (DENV), a major global health concern, causes dengue fever, predominantly affecting tropical and subtropical regions. The NS2B-NS3 protease complex of DENV is critical for viral replication, making it a promising target for antiviral drug development. This study investigates the structural dynamics of the NS2B-NS3 protease under varying pH conditions, integrating experimental and computational approaches. The recombinant NS2B-NS3 protease was expressed in E. coli, purified using affinity chromatography, and analysed for purity via SDS-PAGE. Circular dichroism (CD) spectroscopy revealed pH-dependent secondary structural changes, indicating stability at neutral to slightly basic pH and destabilization under acidic and highly basic conditions. Dynamic light scattering (DLS) analysis demonstrated protein aggregation and structural heterogeneity under extreme pH levels. Complementary in silico techniques, including homology modelling and molecular dynamics (MD) simulations, provided detailed insights into the conformational changes of the protease. The modelled structure, validated and refined through computational tools, revealed structural stability at physiological pH, with notable disruptions at pH extremes. DSSP (Dictionary of Secondary Structure of Proteins) and principal component analyses highlighted significant secondary structural transitions, especially at acidic pH where -helices and {beta}-sheets transformed into random coils Docking and MD simulation was carried out with the small molecule for therapeutic analysis between Dengue NS2bNS3 and small molecule. This study emphasizes the pH-dependent conformational plasticity of the NS2B-NS3 protease, contributing to the understanding of its functional mechanisms and providing a foundation for the rational design of pH-specific inhibitors. These findings underscore the importance of structural biology in advancing therapeutic strategies against dengue fever.

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BibTeXRIS

Muthuvel, s. k., BALAKRISHNAN, S. S., MANJINI, S., DHAL, K., DAS, S., S, D.. 2026-09-04. Experimental and In Silico Analysis of the Structural Dynamics of Dengue NS2B-NS3 Protease. https://doi.org/10.64898/2026.09.02.748787

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