Membrane lipids couple synaptotagmin to SNARE-mediated granule fusion in insulin-secreting cells

Author:

Amos Chase12,Kiessling Volker12,Kreutzberger Alex J. B.12,Schenk Noah A.3,Mohan Ramkumar3,Nyenhuis Sarah4,Doyle Catherine A.5,Wang Hong-Yin12,Levental Kandice12,Levental Ilya12,Anantharam Arun3,Tamm Lukas K.12

Affiliation:

1. Department of Molecular Physiology and Biological Physics, University of Virginia Health System, Charlottesville, VA 22908

2. Center for Membrane and Cell Physiology, University of Virginia, Charlottesville, VA 22908

3. Department of Neurosciences, University of Toledo, Toledo, OH 43614

4. Department of Chemistry, University of Virginia, Charlottesville, VA, 22904

5. Department of Pharmacology, University of Virginia Health System, Charlottesville, VA 22908

Abstract

Insulin secretion depends on the Ca2+-regulated fusion of granules with the plasma membrane. A recent model of Ca2+-triggered exocytosis in secretory cells proposes that lipids in the plasma membrane couple the calcium sensor Syt1 to the membrane fusion machinery (Kiessling et al., 2018). Specifically, Ca2+-mediated binding of Syt1’s C2 domains to the cell membrane shifts the membrane-anchored SNARE syntaxin-1a to a more fusogenic conformation, straightening its juxtamembrane linker. To test this model in live cells and extend it to insulin secretion, we enriched INS1 cells with a panel of lipids with different acyl chain compositions. Fluorescence lifetime measurements demonstrate that cells with more disordered membranes show an increase in fusion efficiency, and vice versa. Experiments with granules purified from INS1 cells and recombinant SNARE proteins reconstituted in supported membranes confirmed that lipid acyl chain composition determines SNARE conformation and that lipid disordering correlates with increased fusion. Addition of Syt1’s C2AB domains significantly decreased lipid order in target membranes and increased SNARE-mediated fusion probability. Strikingly, Syt’s action on both fusion and lipid order could be partially bypassed by artificially increasing unsaturated phosphatidylserines in the target membrane. Thus, plasma membrane lipids actively participate in coupling Ca2+/synaptotagmin-sensing to the SNARE fusion machinery in cells.

Publisher

American Society for Cell Biology (ASCB)

Subject

Cell Biology,Molecular Biology

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