Synaptotagmin rings as high-sensitivity regulators of synaptic vesicle docking and fusion

囊泡融合 化学 突触蛋白1 突触小泡 小泡 脂质双层融合 生物物理学 对接(动物) 快照25 C2域 接吻奔跑融合 生物化学 生物 医学 护理部
作者
Jie Zhu,Zachary A. McDargh,Feng Li,Shyam S. Krishnakumar,James E. Rothman,Ben O’Shaughnessy
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:119 (38) 被引量:1
标识
DOI:10.1073/pnas.2208337119
摘要

Synchronous release at neuronal synapses is accomplished by a machinery that senses calcium influx and fuses the synaptic vesicle and plasma membranes to release neurotransmitters. Previous studies suggested the calcium sensor synaptotagmin (Syt) is a facilitator of vesicle docking and both a facilitator and inhibitor of fusion. On phospholipid monolayers, the Syt C2AB domain spontaneously oligomerized into rings that are disassembled by Ca 2+ , suggesting Syt rings may clamp fusion as membrane-separating “washers” until Ca 2+ -mediated disassembly triggers fusion and release [J. Wang et al., Proc. Natl. Acad. Sci. U.S.A. 111, 13966–13971 (2014)].). Here, we combined mathematical modeling with experiment to measure the mechanical properties of Syt rings and to test this mechanism. Consistent with experimental results, the model quantitatively recapitulates observed Syt ring-induced dome and volcano shapes on phospholipid monolayers and predicts rings are stabilized by anionic phospholipid bilayers or bulk solution with ATP. The selected ring conformation is highly sensitive to membrane composition and bulk ATP levels, a property that may regulate vesicle docking and fusion in ATP-rich synaptic terminals. We find the Syt molecules hosted by a synaptic vesicle oligomerize into a halo, unbound from the vesicle, but in proximity to sufficiently phosphatidylinositol 4,5-bisphosphate (PIP2)-rich plasma membrane (PM) domains, the PM-bound trans Syt ring conformation is preferred. Thus, the Syt halo serves as landing gear for spatially directed docking at PIP2-rich sites that define the active zones of exocytotic release, positioning the Syt ring to clamp fusion and await calcium. Our results suggest the Syt ring is both a Ca 2+ -sensitive fusion clamp and a high-fidelity sensor for directed docking.

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