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Biology subjects

Hester, S. S.

Publications and source records attributed to Hester, S. S..

3 recordsLinked to original sources

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↗

Menin maintains enhancer-promoter interactions in a leukemia-specific manner

Inhibition of the protein-protein interaction between Mixed Lineage Leukemia (MLL) and Menin is a promising therapy for both high-risk MLL-rearranged and NPM1-mutant (NPM1c) acute leukemias, yet the mechanistic basis of this dependency in distinct contexts remains unclear. By comparing the transcriptional responses of MLL::AF4 and NPM1c leukemia models to Menin inhibition, we find broad, acute transcriptional dysregulation in MLL::AF4 cells, but minor transcriptional consequences in NPM1c cells, despite similarities in Menin promoter occupancy. Using high-resolution Micro Capture-C, we discover that Menin drives enhancer activity and maintains enhancer-promoter contacts in MLL::AF4 cells but not in NPM1c cells. Crucially, Menin is also essential for patient-specific enhancer function in primary MLL-rearranged leukemia samples. Proteomic analysis further demonstrates that Menin associates with distinct transcriptional and elongation complexes in MLL::AF4 compared to NPM1c cells, supporting a context-dependent mechanism of action. Together, these findings establish that Menin is not a uniform transcriptional cofactor, but a context-dependent regulator of enhancer connectivity, and identifies enhancer-promoter architecture as a selective vulnerability in MLL-rearranged leukemia.

cancer biology↗

Tracking tau and cellular responses in human iPSC-microglia from uptake to seedable secretion in extracellular vesicles

The templated spread of tau aggregates in tauopathies has been attributed to neuron-to- neuron spread, but microglia have also been implicated through mouse studies. Here we examine in detail the uptake, processing, release and seeding of tau using human iPS- derived microglia (iMGL). We show that tau is taken up by iMGL via LRP1 and heparan sulfate proteoglycans, with a role for LRRK2 in LRP1 trafficking, and that phagocytosed fibrils can escape into the cytoplasm. Monomeric tau has minimal effects on iMGL, but recombinant or brain-derived tau fibrils induce a shift towards chemokine and interferon response subtypes, alongside downregulation of homeostatic and MHC genes. Endogenous tau protein is undetectable in iMGL, and monomeric internalised tau is digested to completion, but fibrillar tau is more resistant to degradation and becomes phosphorylated on two specific residues. Finally, fibrillar tau is released by iMGL, visualized within extracellular vesicles by cryo-EM, and can seed tau aggregation in downstream neurons.

cell biology↗