Search bioRxiv⌕ Search

Biology subjects

Bohn, N.

Publications and source records attributed to Bohn, N..

3 recordsLinked to original sources

A mechanism-aware stoichiometry platform resolves functional viral thresholds and induces antiviral hypersensitivity

Antiviral discovery is frequently hindered by a stoichiometric blind spot--a lack of resolution regarding the functional density of viral enzymes required for replication. Traditional screening pipelines rely on target-based or phenotypic assays that cannot distinguish between simple molecular binding and the crossing of a functional stoichiometric cliff. Here, we present a mechanism-aware platform that resolves these enzymatic requirements with single-virion precision. By integrating quantitative cryo-electron microscopy and genomic validation with Monte Carlo modeling, we map the stoichiometric landscapes of HIV-1 Protease (PR) and Reverse Transcriptase (RT). We uncover a striking disparity in enzymatic demand: a high-redundancy buffering capacity for PR ([~]40 monomers) contrasted with a high-threshold requirement for RT ([~]95 subunits). We demonstrate that by systematically de-buffering the virion, our platform induces a state of antiviral hypersensitivity, enabling the detection of therapeutic activity in novel and clinical inhibitors that remain invisible to traditional workflows. Furthermore, this multiplexed profiling enables de novo target identification, as inhibitors trigger failure exclusively on their respective stoichiometric arms. This platform provides a deterministic roadmap for de-risking drug discovery and identifying viral sub-stoichiometric vulnerabilities.

biophysics↗

Cryo-ET Reveals Distinct Gag Lattice Architectures in Virus-like Particles and Immature HIV-1

HIV-1 is released from infected cells as immature virions whose membranes are supported by a Gag lattice. During maturation, this lattice is cleaved by the viral protease to release capsid proteins that assemble into the mature core. The architecture of the Gag lattice is central to this process, and the Gag lattice is targeted by maturation inhibitors that block cleavage. Using cryo-electron tomography, we compared Gag-only virus-like particles (VLPs) with immature HIV-1 virions and found that VLPs assemble denser and more complete lattices, exhibiting a strong correlation between lattice curvature and Gag copy number. In contrast, immature virions incorporate fewer Gag molecules and display weaker coupling between curvature and Gag stoichiometry. These findings show that while Gag alone can form the canonical immature lattice, additional viral components fine-tune lattice organization and curvature, potentially regulating protease accessibility, virion release, and the onset of HIV-1 maturation.

biophysics↗

Enhanced Yield and Gentle Purification of HIV for Cryo-Electron Tomography Analysis of Virion Maturation.

HIV is a lentivirus characterized by the formation of its mature core. Visualization and structural examination of HIV requires purification of virions to high concentrations. The yield and integrity of these virions are crucial for ensuring a uniform representation of all viral particles in subsequent analyses. In this study, we present a method for purification of HIV virions which minimizes forces applied to virions while maximizing the efficiency of collection. This method allows us to capture between 1,000 and 5,000 HIV virions released from individual HEK293 cells after transfection with the NL4.3 HIV backbone, a 10 fold advantage over other methods. We utilized this approach to investigate HIV core formation from several constructs: pNL4-3(RT:D185A&D186A) with an inactive reverse transcriptase, NL4.3(IN: V165A&R166A) with a type-II integrase mutation, and NL4.3(: {Delta}(105-278)&{Delta}(301-332)) featuring an edited packaging signal. Notably, virions from NL4.3(: {Delta}(105-278)&{Delta}(301-332)) displayed a mixed population, comprising immature virions, empty cores, and cores with detectable internal density. Conversely, virions derived from NL4.3(IN: V165A&R166A) exhibited a type II integrase mutant phenotype characterized by empty cores and RNP density localized around the cores, consistent with previous studies. In contrast, virions released from pNL4-3(RT:D185A&D186A) displayed mature cores containing detectable RNP density. We suggest that the purification methods developed in this study can significantly facilitate the characterization of enveloped viruses.

microbiology↗