Conserved N-terminal cysteine motif is essential for homo- and heterodimer formation of synaptotagmins III, V, VI, and X

被引:150
作者
Fukuda, M
Kanno, E
Mikoshiba, K
机构
[1] RIKEN, Inst Phys & Chem Res, Brain Sci Inst, Dev Neurobiol Lab, Wako, Saitama 3510198, Japan
[2] Univ Tokyo, Inst Med Sci, Dept Mol Neurobiol, Minato Ku, Tokyo 1088639, Japan
[3] Japan Sci & Technol Corp, Calciosignal Net Project, Bunkyo Ku, Tokyo 1130021, Japan
关键词
D O I
10.1074/jbc.274.44.31421
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The synaptotagmins now constitute a large family of membrane proteins characterized by one transmembrane region and two C2 domains. Dimerization of synaptotagmin (Syt) I, a putative low affinity Ca2+ sensor for neurotransmitter release, is thought to be important for expression of function during exocytosis of synaptic vesicles. However, little is known about the self-dimerization properties of other isoforms. In this study, we demonstrate that a subclass of synaptotagmins (III, V, VI, and X) (Ibata, K., Fukuda, Ri., and Mikoshiba, K. (1998) J. Biol. Chem. 273, 12267-12273) forms beta-mercaptoethanol-sensitive homodimers and identify three evolutionarily conserved cysteine residues at the N terminus (N-terminal cysteine motif, at amino acids 10, 21, and 33 of mouse Syt III) that are not conserved in other isoforms. Site-directed mutagenesis of these cysteine residues and co-immunoprecipitation experiments clearly indicate that the first cysteine residue is essential for the stable homodimer formation of Syt III, V, or VI, and heterodimer formation between Syts II, V, VI, and X. We also show that native Syt III from mouse brain forms a beta-mercaptoethanol-sensitive homodimer. Our results suggest that the cysteine-based heterodimerization between Syt III and Syt V, VI, or X, which have different biochemical properties, may modulate the proposed function of Syt III as a putative high affinity Ca2+ sensor for neurotransmitter release.
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页码:31421 / 31427
页数:7
相关论文
共 44 条
[22]   The first C-2 domain of synaptotagmin is required for exocytosis of insulin from pancreatic beta-cells: action of synaptotagmin at low micromolar calcium [J].
Lang, JC ;
Fukuda, M ;
Zhang, H ;
Mikoshiba, K ;
Wollheim, CB .
EMBO JOURNAL, 1997, 16 (19) :5837-5846
[23]   CA2+-DEPENDENT AND CA2+-INDEPENDENT ACTIVITIES OF NEURAL AND NONNEURAL SYNAPTOTAGMINS [J].
LI, C ;
ULLRICH, B ;
ZHANG, JZ ;
ANDERSON, RGW ;
BROSE, N ;
SUDHOF, TC .
NATURE, 1995, 375 (6532) :594-599
[24]   DISTINCT CA2+ AND SR2+ BINDING-PROPERTIES OF SYNAPTOTAGMINS - DEFINITION OF CANDIDATE CA2+ SENSORS FOR THE FAST AND SLOW COMPONENTS OF NEUROTRANSMITTER RELEASE [J].
LI, C ;
DAVLETOV, BA ;
SUDHOF, TC .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (42) :24898-24902
[25]  
Linial M, 1997, J NEUROCHEM, V69, P1781
[26]  
LITTLETON JT, 1995, TRENDS NEUROSCI, V18, P177
[27]   ROLE OF THE C2A DOMAIN OF SYNAPTOTAGMIN IN TRANSMITTER RELEASE AS DETERMINED BY SPECIFIC ANTIBODY INJECTION INTO THE SQUID GIANT SYNAPSE PRETERMINAL [J].
MIKOSHIBA, K ;
FUKUDA, M ;
MOREIRA, JE ;
LEWIS, FMT ;
SUGIMORI, M ;
NIINOBE, M ;
LLINAS, R .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1995, 92 (23) :10703-10707
[28]   PEF-BOS, A POWERFUL MAMMALIAN EXPRESSION VECTOR [J].
MIZUSHIMA, S ;
NAGATA, S .
NUCLEIC ACIDS RESEARCH, 1990, 18 (17) :5322-5322
[29]  
MIZUTA M, 1994, J BIOL CHEM, V269, P11675
[30]  
Mochida S, 1997, NEUROSCIENCE, V77, P937