Vglut1 and ZnT3 co-targeting mechanisms regulate vesicular zinc stores in PC12 cells

被引:75
作者
Salazar, G
Craige, B
Love, R
Kalman, D
Faundez, V
机构
[1] Emory Univ, Dept Cell Biol, Atlanta, GA 30322 USA
[2] Emory Univ, Ctr Neurodegenerat Dis, Atlanta, GA 30322 USA
[3] Emory Univ, Dept Pathol & Lab Med, Atlanta, GA 30322 USA
关键词
zinc; Vglut1; ZnT3; synaptic vesicle; AP-3;
D O I
10.1242/jcs.02319
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The lumenal ionic content of an organelle is determined by its complement of channels and transporters. These proteins reach their resident organelles by adaptor-dependent mechanisms. This concept is illustrated in AP-3 deficiencies, in which synaptic vesicle zinc is depleted because the synaptic-vesicle-specific zinc transporter 3 does not reach synaptic vesicles. However, whether zinc transporter 3 is the only membrane protein defining synaptic-vesicle zinc content remains unknown. To address this question, we examined whether zinc transporter 3 and the vesicular glutamate transporter Vglut1 (a transporter that coexists with zinc transporter 3 in brain nerve terminals) were co-targeted to synaptic-like microvesicle fractions in PC12 cells. Deconvolution microscopy and subcellular fractionation demonstrated that these two transporters were present on the same vesicles in PC12 cells. Vglut1 content in synaptic-like microvesicle fractions and brain synaptic vesicles was partially sensitive to pharmacological and genetic perturbation of AP-3 function. Whole-cell flow-cytometry analysis of PC12 cell lines expressing zinc transporter 3, Vglut1 or both showed that vesicular zinc uptake was increased by Vglut1 expression. Conversely, production of zinc transporter 3 increased the vesicular uptake of glutamate in a zinc-dependent fashion. Our results suggest that the coupling of zinc transporter 3 and Vglut1 transport mechanisms regulates neurotransmitter content in secretory vesicles.
引用
收藏
页码:1911 / 1921
页数:11
相关论文
共 59 条
[41]   Molecular cloning and functional identification of mouse vesicular glutamate transporter 3 and its expression in subsets of novel excitatory neurons [J].
Schäfer, MKH ;
Varoqui, H ;
Defamie, N ;
Weihe, E ;
Erickson, JD .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (52) :50734-50748
[42]   Genetic analysis of the neuronal and ubiquitous AP-3 adaptor complexes reveals divergent functions in brain [J].
Seong, E ;
Wainer, BH ;
Hughes, ED ;
Saunders, TL ;
Burmeister, M ;
Faundez, V .
MOLECULAR BIOLOGY OF THE CELL, 2005, 16 (01) :128-140
[43]   Neuroendocrine synaptic vesicles are formed in vitro by both clathrin-dependent and clathrin-independent pathways [J].
Shi, GY ;
Faúndez, V ;
Roos, J ;
Dell'Angelica, EC ;
Kelly, RB .
JOURNAL OF CELL BIOLOGY, 1998, 143 (04) :947-955
[44]   Taurine-, aspartate- and glutamate-like immunoreactivity identifies chemically distinct subdivisions of Kenyon cells in the cockroach mushroom body [J].
Sinakevitch, I ;
Farris, SM ;
Strausfeld, NJ .
JOURNAL OF COMPARATIVE NEUROLOGY, 2001, 439 (03) :352-367
[45]   QUANTIFICATION OF IMMUNOGOLD LABELING REVEALS ENRICHMENT OF GLUTAMATE IN MOSSY AND PARALLEL FIBER TERMINALS IN CAT CEREBELLUM [J].
SOMOGYI, P ;
HALASY, K ;
SOMOGYI, J ;
STORMMATHISEN, J ;
OTTERSEN, OP .
NEUROSCIENCE, 1986, 19 (04) :1045-1050
[46]   1ST VISUALIZATION OF GLUTAMATE AND GABA IN NEURONS BY IMMUNOCYTOCHEMISTRY [J].
STORMMATHISEN, J ;
LEKNES, AK ;
BORE, AT ;
VAALAND, JL ;
EDMINSON, P ;
HAUG, FMS ;
OTTERSEN, OP .
NATURE, 1983, 301 (5900) :517-520
[47]  
STORMMATHISEN J, 1986, MED BIOL, V64, P127
[48]  
Swedlow J., 1997, DECONVOLUTION IMAGES, V2, P284
[49]  
Takamori S, 2000, J NEUROSCI, V20, P4904
[50]   Identification of a vesicular glutamate transporter that defines a glutamatergic phenotype in neurons [J].
Takamori, S ;
Rhee, JS ;
Rosenmund, C ;
Jahn, R .
NATURE, 2000, 407 (6801) :189-194