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Autin, L.

Publications and source records attributed to Autin, L..

3 recordsLinked to original sources

Cryo-electron tomography of Nipah virus structural protein complexes in virus-like particles

Nipah virus (NiV) is a BSL-4 zoonotic paramyxovirus with [~]75% human mortality. The matrix protein (M) of NiV and other paramyxoviruses binds the inner leaflet of the cellular plasma membrane, orchestrating virion assembly by bringing together transmembrane glycoproteins (F/G) and ribonucleoprotein complexes (N). However, the interactions of these full-length proteins within membrane complexes remain elusive. Using cryo-electron tomography and subtomogram averaging of virus like particles (VLPs), we interrogated the protein:protein interactions of the main NiV structural proteins M/N/F/G. The M lattice structure determined to 7[A] revealed a novel M-dimer arrangement that yielded two distinct repeating holes. Notably, F-trimers were arranged above only one of the two holes, dependent on Fs cytoplasmic tail. G was enriched in regions of higher M-VLP curvature, while N dramatically increased M-VLP pleomorphism. This work provides novel insights into paramyxoviral protein complexes, structures, and morphology.

microbiology↗

Molecular architecture of Influenza A virions

Influenza A viruses (IAV) are clinically important pathogens that cause seasonal epidemics and pandemics in humans. IAV produce pleomorphic, enveloped virions, which can range from a spherical or bacilliform morphology, the predominant form in the most commonly studied laboratory strains, to long filamentous virions which are characteristic of clinical and veterinary isolates. Understanding the structure and function of filamentous virions is crucial for clarifying their role in viral persistence and immune evasion, and for informing the development of therapeutics that target their entry and/or egress pathways. Structural characterisation of influenza virions is challenging however owing to their fragility, heterogeneity and compared to most virus particles, unusually large size. Here, we combined structural and compositional approaches with integrative modelling to define the complete molecular architecture of influenza virions. In doing so we provide the first description of distinctive structural features of IAV filaments, including the selective incorporation of lipids, specific enrichment of viral and host proteins, and a viral cytoskeleton including a secondary helical layer within the viral capsid and extended fibrils of cofilactin. Collectively our findings suggest an important regulatory role for cofilactin in driving filament morphogenesis and provide important insights into the organisation and composition of IAV filamentous virions.

microbiology↗

Mesoscale Explorer - Visual Exploration of Large-Scale Molecular Models

The advent of cryo-electron microscopy (cryo-EM) and cryo-electron tomography (cryo-ET), coupled with computational modeling, has enabled the creation of integrative 3D models of viruses, bacteria, and cellular organelles. These models, composed of thousands of macromolecules and billions of atoms, have historically posed significant challenges for manipulation and visualization without specialized molecular graphics tools and hardware. With the recent advancements in GPU rendering power and web browser capabilities, it is now feasible to render interactively large molecular scenes directly on the web. In this work, we introduce Mesoscale Explorer, a web application built using the Mol* framework, dedicated to the visualization of large-scale molecular models ranging from viruses to cell organelles. Mesoscale Explorer provides unprecedented access and insight into the molecular fabric of life, enhancing perception, streamlining exploration, and simplifying visualization of diverse data types, showcasing the intricate details of these models with unparalleled clarity. Statement: Mesoscale Explorer leverages advanced GPU rendering and web technologies to facilitate and democratize the interactive 3D visualization of large-scale molecular models from viruses to cellular organelles composed of millions of atoms. Mesoscale Explorer enables broader exploration and deeper understanding of the complex structure of these large molecular landscapes.

bioinformatics↗