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Michael Way

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Open access Sep 2026

The actomyosin cortex controls t-tubule remodeling in skeletal muscle

A network of plasma membrane invaginations called t-tubules plays an essential role in controlling calcium release from the endoplasmic reticulum at the triads during muscle contraction. Although the importance of t-tubules for muscle physiology is well established, and abnormalities are found in muscle disorders, the mechanisms that mediate t-tubule growth are unknown. We show that the actomyosin cortex beneath the plasma membrane, regulated by Arp2/3 complexes containing Arpc5, acts as a gatekeeper for the membrane availability during t-tubule growth. Enlarged t-tubules are formed upon disruption of Arpc5, impairing the synchronization between plasma membrane depolarization and calcium release. Knockout of Arpc5 in mouse skeletal muscle results in impaired locomotion and posture. Furthermore, we show that human triadopathy patients and Arpc5 knockout mice accumulate enlarged t-tubules. We propose that cortex-dependent membrane availability affects muscle function, offering a potential pathophysiological mechanism for muscle disorders.

A. R. Pereira, Silvia Di Francescantonio, Ana da Rosa Soares et al. · 0 citations
Open access Jul 2026

In situ structure of the poxvirus portal complex.

Poxviruses are a family of large, complex double-stranded DNA viruses that includes human pathogens such as variola-the cause of smallpox-and monkeypox. Recent outbreaks of mpox underscore the need for a better understanding of poxvirus biology1,2. Poxvirus assembly is a conserved process that involves the formation of a biconcave core inside the membrane of the maturing virus3,4. Here we use cryo-electron tomography combined with subtomogram averaging and structure prediction to determine the structure and composition of the portal complex-a pore that spans the core wall-in vaccinia virus, the prototypical poxvirus. The hexameric complex consists of the E8, E6 and L3 proteins, which are conserved across poxviruses and essential for mRNA release during the establishment of infection5-7. E6, which is also required for virus assembly8-10, forms the central chamber of the portal and interacts with the surrounding core wall. A hexamer of E8 attaches to the exterior side of E6. L3, a target of TRIM5α-mediated restriction11, binds as a hexamer of dimers to the interior side. Furthermore, the viral helicase D5, which is required for genome release from cores12, associates with cytoplasmic cores during infection by docking onto the exterior E8 rim of the portal complex. We propose that the portal complex represents an attractive target for the development of anti-poxvirus therapeutics.

T. Calcraft, Miguel Hernández-González, Michael Way et al. · 0 citations

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