Abstract
Syt1 (synaptotagmin 1), a major Ca2+ sensor for fast neurotransmitter release, contains tandem Ca2+-binding C2 domains (C2AB), a single transmembrane α-helix and a highly charged 60-residue-long linker in between. Using single-vesicle-docking and content-mixing assays we found that the linker region of Syt1 is essential for its two signature functions: Ca2+-independent vesicle docking and Ca2+-dependent fusion pore opening. The linker contains the basic-amino-acid-rich N-terminal region and the acidic-amino-acid-rich C-terminal region. When the charge segregation was disrupted, fusion pore opening was slowed, whereas docking was unchanged. Intramolecular disulfide cross-linking between N- and C-terminal regions of the linker or deletion of 40 residues from the linker reduced docking while enhancing pore opening, although the changes were subtle. EPR analysis showed Ca2+-induced line broadening reflecting a conformational change in the linker region. Thus the results of the present study suggest that the electrostatically bipartite linker region may extend for docking and fold to facilitate pore opening.
MeSH Terms
Animals
Calcium/chemistry
Cations, Divalent
Cross-Linking Reagents/chemistry
Disulfides/chemistry
Lipids/chemistry
Membrane Fusion
Membranes, Artificial
Mutagenesis, Site-Directed
Protein Conformation
Rats
SNARE Proteins/chemistry
Static Electricity
Synaptic Vesicles/chemistry
Synaptotagmin I/chemistry,genetics
Chemicals
Cations, Divalent
Cross-Linking Reagents
Disulfides
Lipids
Membranes, Artificial
SNARE Proteins
Synaptotagmin I
Calcium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Lai Ying
*Department of Biochemistry, Biophysics and Molecular Biology, Iowa State University, Ames, IA 50011, U.S.A.
Lou Xiaochu
Jho Yongseok
Yoon Tae-Young
Shin Yeon-Kyun
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