All-atom molecular dynamics simulations of Synaptotagmin-SNARE-complexin complexes bridging a vesicle and a flat lipid bilayer

Author:

Rizo Josep123ORCID,Sari Levent14,Qi Yife5,Im Wonpil6789ORCID,Lin Milo M14ORCID

Affiliation:

1. Department of Biophysics, The University of Texas Southwestern Medical Center

2. Department of Biochemistry, University of Texas Southwestern Medical Center

3. Department of Pharmacology, University of Texas Southwestern Medical Center

4. Green Center for Systems Biology, The University of Texas Southwestern Medical Center

5. Department of Medicinal Chemistry, School of Pharmacy, Fudan University

6. Department of Biological Sciences, Lehigh University

7. Department of Chemistry, Lehigh University

8. Department of Bioengineering, Lehigh University

9. Department of Computer Science and Engineering, Lehigh University

Abstract

Synaptic vesicles are primed into a state that is ready for fast neurotransmitter release upon Ca2+-binding to Synaptotagmin-1. This state likely includes trans-SNARE complexes between the vesicle and plasma membranes that are bound to Synaptotagmin-1 and complexins. However, the nature of this state and the steps leading to membrane fusion are unclear, in part because of the difficulty of studying this dynamic process experimentally. To shed light into these questions, we performed all-atom molecular dynamics simulations of systems containing trans-SNARE complexes between two flat bilayers or a vesicle and a flat bilayer with or without fragments of Synaptotagmin-1 and/or complexin-1. Our results need to be interpreted with caution because of the limited simulation times and the absence of key components, but suggest mechanistic features that may control release and help visualize potential states of the primed Synaptotagmin-1-SNARE-complexin-1 complex. The simulations suggest that SNAREs alone induce formation of extended membrane-membrane contact interfaces that may fuse slowly, and that the primed state contains macromolecular assemblies of trans-SNARE complexes bound to the Synaptotagmin-1 C2B domain and complexin-1 in a spring-loaded configuration that prevents premature membrane merger and formation of extended interfaces, but keeps the system ready for fast fusion upon Ca2+ influx.

Funder

National Institute of Neurological Disorders and Stroke

Welch Foundation

National Science Foundation

Natural Science Foundation of Shanghai

University of Texas at Austin

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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