In vivo trafficking and targeting of N-cadherin to nascent presynaptic terminals

被引:65
作者
Jontes, JD [1 ]
Emond, MR [1 ]
Smith, SJ [1 ]
机构
[1] Stanford Univ, Sch Med, Dept Cellular & Mol Physiol, Stanford, CA 94305 USA
关键词
adhesion; imaging; spinal; synaptogenesis; Rohon-Beard; in vivo;
D O I
10.1523/JNEUROSCI.5399-04.2004
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
N-cadherin is a prominent component of developing and mature synapses, yet very little is known about its trafficking within neurons. To investigate N-cadherin dynamics in developing axons, we used in vivo two-photon time-lapse microscopy of N-cadherin - green fluorescent protein (Ncad - GFP), which was expressed in Rohon - Beard neurons of the embryonic zebrafish spinal cord. Ncad - GFP was present as either stable accumulations or highly mobile transport packets. The mobile transport packets were of two types: tubulovesicular structures that moved preferentially in the anterograde direction and discrete - punctate structures that exhibited bidirectional movement. Stable puncta of Ncad - GFP accumulated in the wake of the growth cone with a time course. Colocalization of Ncad - GFP puncta with synaptic markers suggests that N-cadherin is a very early component of nascent synapses. Expression of deletion mutants revealed a potential role of the extracellular domain in appropriate N-cadherin trafficking and targeting. These results are the first to characterize the trafficking of a synaptic cell-adhesion molecule in developing axons in vivo. In addition, we have begun to investigate the cell biology of N-cadherin trafficking and targeting in the context of an intact vertebrate embryo.
引用
收藏
页码:9027 / 9034
页数:8
相关论文
共 47 条
[21]   Tracing transgene expression in living zebrafish embryos [J].
Köster, RW ;
Fraser, SE .
DEVELOPMENTAL BIOLOGY, 2001, 233 (02) :329-346
[22]  
KRASZEWSKI K, 1995, J NEUROSCI, V15, P4328
[23]  
Lele Z, 2002, DEVELOPMENT, V129, P3281
[24]   Biogenesis of N-cadherin-dependent cell-cell contacts in living fibroblasts is a microtubule-dependent kinesin-driven mechanism [J].
Mary, S ;
Charrasse, S ;
Meriane, M ;
Comunale, F ;
Travo, P ;
Blangy, A ;
Gauthier-Rouvière, C .
MOLECULAR BIOLOGY OF THE CELL, 2002, 13 (01) :285-301
[25]   TRANSMEMBRANE CONTROL OF CADHERIN-MEDIATED CELL-ADHESION - A 94 KDA PROTEIN FUNCTIONALLY ASSOCIATED WITH A SPECIFIC REGION OF THE CYTOPLASMIC DOMAIN OF E-CADHERIN [J].
NAGAFUCHI, A ;
TAKEICHI, M .
CELL REGULATION, 1989, 1 (01) :37-44
[26]   Visualization of the dynamics of synaptic vesicle and plasma membrane proteins in living axons [J].
Nakata, T ;
Terada, S ;
Hirokawa, N .
JOURNAL OF CELL BIOLOGY, 1998, 140 (03) :659-674
[27]   In vivo imaging of synapse formation on a growing dendritic arbor [J].
Niell, CM ;
Meyer, MP ;
Smith, SJ .
NATURE NEUROSCIENCE, 2004, 7 (03) :254-260
[28]   THE NEURON-SPECIFIC KINESIN SUPERFAMILY PROTEIN KIF1A IS A UNIQUE MONOMERIC MOTOR FOR ANTEROGRADE AXONAL-TRANSPORT OF SYNAPTIC VESICLE PRECURSORS [J].
OKADA, Y ;
YAMAZAKI, H ;
SEKINEAIZAWA, Y ;
HIROKAWA, N .
CELL, 1995, 81 (05) :769-780
[29]   THE CYTOPLASMIC DOMAIN OF THE CELL-ADHESION MOLECULE UVOMORULIN ASSOCIATES WITH 3 INDEPENDENT PROTEINS STRUCTURALLY RELATED IN DIFFERENT SPECIES [J].
OZAWA, M ;
BARIBAULT, H ;
KEMLER, R .
EMBO JOURNAL, 1989, 8 (06) :1711-1717
[30]   The presynaptic particle web: Ultrastructure, composition, dissolution, and reconstitution [J].
Phillips, GR ;
Huang, JK ;
Wang, Y ;
Tanaka, H ;
Shapiro, L ;
Zhang, WD ;
Shan, WS ;
Arndt, K ;
Frank, M ;
Gordon, RE ;
Gawinowicz, MA ;
Zhao, YM ;
Colman, DR .
NEURON, 2001, 32 (01) :63-77