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Anirudhan, V.

Publications and source records attributed to Anirudhan, V..

2 recordsLinked to original sources

Broad-Spectrum HIV-1 Detection and Neutralization via Multivalent Designer DNA Nanostructures

Early and accurate detection of HIV-1 remains a critical unmet need, particularly during the acute phase of infection when viral loads are low and transmission risk is highest. Here, we report a modular diagnostic and antiviral platform based on designer DNA nanostructures engineered for high-affinity recognition of the HIV-1 envelope glycoprotein (GP120). A custom DNA aptamer, termed HINT, was developed to bind GP120 across major HIV-1 subtypes (Groups M and P; subtypes A and B) with nanomolar affinity. To amplify binding strength, HINT aptamers were spatially patterned onto a net-shaped DNA nanostructure (DNA-NetHINT) that geometrically matches the trimeric GP120 spikes on the viral surface. Using multivalent interactions, the nanostructure enabled up to 104-fold improvement in binding affinity (sub-picomolar KD), confirmed by surface plasmon resonance. Integration of DNA-NetHINT into a paper-based lateral flow assay produced a low-cost, saliva-compatible self-testing device capable of detecting intact HIV-1 virions at concentrations as low as 328 viral copies per test, outperforming commercial fourth-generation rapid diagnostic tests. In addition to its diagnostic capabilities, the DNA-NetHINT construct exhibited potent antiviral activity, reducing pseudovirus infection with an EC50 of [~]1.8 nM, nearly 1,000-fold more effective than free aptamers. This work demonstrates a dual-function DNA nanotechnology platform that enables both ultrasensitive HIV-1 detection and entry inhibition. The approach is broadly applicable to other enveloped viruses and represents a promising step toward next-generation molecular theranostics for infectious disease management.

bioengineering↗

Engineering Versatile Two-Dimensional Nanobody-Origami Architectures for Enhanced Antiviral Activity

Considering the serious global health burden posed by pathogenic viruses, the development of effective antiviral molecules and therapeutic strategies is critical for improving human health. Designing and synthesizing a versatile and biocompatible molecular platform offering neutralization of both coronaviruses and retroviruses, two virus families that are greatly problematic to the human population, remains a significant challenge. Here, we report a programmable and versatile platform built on a two-dimensional (2D) DNA origami that enables nanoscale spatial control of multivalent nanobody (Nb) patterns for a broad-spectrum antiviral application. By site-selectively conjugating a Nb to a DNA oligonucleotide and placing multiple of them to predefined sites on 2D DNA origami, we synthesized hybrid nano-architectures with tunable Nb patterns designed to approximately match the geometric presentation of viral surface proteins. We demonstrate that such specific Nb spatial configurations significantly enhance both viral binding affinity and neutralization potency. For SARS-CoV-2, a coronavirus, a triangular Nb pattern with matched spacing with the spike proteins achieved an IC50 of 1.52 nM, representing a 171-fold improvement over monomeric Nbs. Extending this strategy to a retroviral virus, Human Immunodeficiency Virus (HIV) by utilizing a gp120 spike-binding Nb, we observed a 233-fold increase in neutralization efficiency using a patterned 2D Nb nano-architecture. These findings suggest a generalizable and versatile platform strategy for engineering potent antiviral agents through spatially optimized Nb presentation for a corresponding viral pathogen, offering a promising avenue for future antibody and Nb-based drug development.

bioengineering↗