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◆ Research square2026-09-15

Distinct structural mechanisms drive gain-of-function activation of TMEM16E in gnathodiaphyseal dysplasia.

Alessio Accardi, Eleonora Di Zanni, Omar Alvarenga, Nicole Rychlik, Zhang Feng, Elizabeth Kim, George Khelashvili

原始摘要(英文原文)· Original abstract
In cells TMEM16E (ANO5) mediates Ca²⁺-dependent currents and lipid scrambling. Its mutations cause muscular dystrophies and gnathodiaphyseal dysplasia 1 (GDD), but its activation mechanism is unknown. We show purified TMEM16E is a scramblase and determined cryoEM structures in apo and Ca²⁺-bound states. Unlike other TMEM16s, apo TMEM16E has a straight TM6 helix and preformed orthosteric sites; Ca²⁺ binding induces no rearrangements, and one site remains partially unoccupied in saturating Ca²⁺. Structures of two GDD gain-of-function mutants, G503E and R582I, show that despite similar functional phenotypes they act through distinct mechanisms: G503E disrupts the TM3-TM4 interface, while R582I remodels an extracellular loop network and increases S2 occupancy. Molecular dynamics simulations show G503E favors an X-shaped groove that scrambles lipids outside the groove, resembling active TMEM16F, rather than the open-groove mechanism of the ER-resident TMEM16K. Thus, phenotypically convergent mutations act through distinct pathways, paving the way for development of targeted therapies. .
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Distinct structural mechanisms drive gain-of-function activation of TMEM16E in gnathodiaphyseal dysplasia. — 科研速览 Science Skim