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Biology subjects

Joshi, H. J.

Publications and source records attributed to Joshi, H. J..

2 recordsLinked to original sources

Insights into Spontaneous Curvature in Complex Membranes from Dual-Tether Pulling Experiments

Spontaneous curvature characterizes the propensity of a membrane to bend in a specific direction. It is therefore crucial in the multitude of cellular processes that involve membrane shape remodelling. Yet, experimentally quantifying the spontaneous curvature remains a significant challenge in complex biological membranes, as their heterogeneity causes ambiguities in spontaneous curvatures physical interpretation. Here, we introduce a general experiment-simulation framework to measure an effective spontaneous curvature using dual-direction tether pulling from cell-attached giant plasma membrane vesicles (GPMVs) and mesoscale simulations. For homogeneous membranes, the force difference between inward and outward pulls yields a tension-independent readout of spontaneous curvature. We show that this continuum observable can be generalized to the mean of the spontaneous curvature in a heterogeneous membrane, independent of the underlying microscopic spontaneous curvature distribution. Applied to HEK-derived GPMVs, a baseline negative spontaneous curvature of the plasma membrane is revealed. Sucrose treatment and extracellular addition of Annexin A5 systematically shift the effective spontaneous curvature, while mucin reporter overexpression does not measurably alter it under the conditions tested. We also measure the curvature imprint of individual fluorescently tagged proteins through a sorting index. Benchmarked with Annexin A5, our scheme recovers curvature imprints very similar to previous atomistic molecular dynamics simulations. Taken together this makes spontaneous curvature accessible as a directly measurable material property of native membranes and membrane-proteins, enabling quantitative studies of membrane remodelling across diverse cellular processes.

biophysics↗

Structure and mechanism of the human TMEM260 O-mannosyltransferase

Protein O-linked mannose (O-Man) glycosylation is essential for mammalian development, and mutations in its biosynthetic glycosyltransferases cause severe muscular, neurological and cardiac disorders. Despite its biological and clinical importance, the structural basis of mammalian O-Man biosynthesis has remained unknown. Here we report cryo-electron microscopy (cryo-EM) structures of human TMEM260, an endoplasmic reticulum glycosyltransferase that selectively catalyzes O-mannosylation of semaphorin plexin receptors and receptor tyrosine kinases cMET and RON, key regulators of cell guidance and migration. Structures of TMEM260 in a ternary complex with its natural donor dolichyl-phosphate-{beta}-mannose (Dol-P-Man) and an acceptor peptide derived from plexin-B2, together with binary complexes with Dol-P-Man or a synthetic donor analogue, capture physiologically relevant, substrate-loaded states and reveal the structural basis of O-Man transfer. We identify a conserved O-mannosylation sequon that underlies acceptor specificity and show that TMEM260 modifies extended polypeptide substrates, consistent with a co-translational glycosylation mechanism. These findings establish the molecular mechanism of a mammalian O-mannosyltransferase required for the maturation of physiologically critical receptors and provide a structural framework for interpreting TMEM260-associated congenital malformations.

biophysics↗