Downloads provided by UsageCountsA Signaling Mechanism Coupling Netrin-1/Deleted in Colorectal Cancer Chemoattraction to SNARE-Mediated Exocytosis in Axonal Growth Cones
A Signaling Mechanism Coupling Netrin-1/Deleted in Colorectal Cancer Chemoattraction to SNARE-Mediated Exocytosis in Axonal Growth Cones
Directed cell migration and axonal guidance are essential steps in neural development. Both processes are controlled by specific guidance cues that activate the signaling cascades that ultimately control cytoskeletal dynamics. Another essential step in migration and axonal guidance is the regulation of plasmalemma turnover and exocytosis in leading edges and growth cones. However, the cross talk mechanisms linking guidance receptors and membrane exocytosis are not understood. Netrin-1 is a chemoattractive cue required for the formation of commissural pathways. Here, we show that the Netrin-1 receptor deleted in colorectal cancer (DCC) forms a protein complex with the t-SNARE (target SNARE) protein Syntaxin-1 (Sytx1). This interaction is Netrin-1 dependent bothin vitroandin vivo, and requires specific Sytx1 and DCC domains. Blockade of Sytx1 function by using botulinum toxins abolished Netrin-1-dependent chemoattraction of axons in mouse neuronal cultures. Similar loss-of-function experiments in the chicken spinal cordin vivousing dominant-negative Sytx1 constructs or RNAi led to defects in commissural axon pathfinding reminiscent to those described in Netrin-1 and DCC loss-of-function models. We also show that Netrin-1 elicits exocytosis at growth cones in a Sytx1-dependent manner. Moreover, we demonstrate that the Sytx1/DCC complex associates with the v-SNARE (vesicle SNARE) tetanus neurotoxin-insensitive vesicle-associated membrane protein (TI-VAMP) and that knockdown of TI-VAMP in the commissural pathway in the spinal cord results in aberrant axonal guidance phenotypes. Our data provide evidence of a new signaling mechanism that couples chemotropic Netrin-1/DCC axonal guidance and Sytx1/TI-VAMP SNARE proteins regulating membrane turnover and exocytosis.
Boron Compounds, Green Fluorescent Proteins, Growth Cones, Neurones, Hippocampus, Exocytosis, Càncer colorectal, Complement C1, Chlorocebus aethiops, Animals, Guanine Nucleotide Exchange Factors, Humans, Botulinum Toxins, Type A, Cells, Cultured, DCC, Neurons, Analysis of Variance, axon guidance, Brain-Derived Neurotrophic Factor, Chemotaxis, 2800 General Neuroscience, Gene Expression Regulation, Developmental, DCC Receptor, Embryo, Mammalian, Colorectal cancer, 10124 Institute of Molecular Life Sciences, Axons, commissural axons, Animals, Newborn, 570 Life sciences; biology, Syntaxin, NERVE GROWTH; PLASMA-MEMBRANE; IN-VIVO; NETRIN RECEPTOR; NEUROTRANSMITTER RELEASE; NEURONAL MIGRATION; COMMISSURAL AXONS; PROTEIN-SYNTHESIS; GOLGI-APPARATUS; CELL VIABILITY
Boron Compounds, Green Fluorescent Proteins, Growth Cones, Neurones, Hippocampus, Exocytosis, Càncer colorectal, Complement C1, Chlorocebus aethiops, Animals, Guanine Nucleotide Exchange Factors, Humans, Botulinum Toxins, Type A, Cells, Cultured, DCC, Neurons, Analysis of Variance, axon guidance, Brain-Derived Neurotrophic Factor, Chemotaxis, 2800 General Neuroscience, Gene Expression Regulation, Developmental, DCC Receptor, Embryo, Mammalian, Colorectal cancer, 10124 Institute of Molecular Life Sciences, Axons, commissural axons, Animals, Newborn, 570 Life sciences; biology, Syntaxin, NERVE GROWTH; PLASMA-MEMBRANE; IN-VIVO; NETRIN RECEPTOR; NEUROTRANSMITTER RELEASE; NEURONAL MIGRATION; COMMISSURAL AXONS; PROTEIN-SYNTHESIS; GOLGI-APPARATUS; CELL VIABILITY
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