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Journal Article

Mechanisms of α-latrotoxin actin

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Henkel,  Andreas Wolfram
Department of Biomedical Optics, Max Planck Institute for Medical Research, Max Planck Society;

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Citation

Henkel, A. W., & Sankaranarayanan, S. (1999). Mechanisms of α-latrotoxin actin. Cell and Tissue Research, 296, 229-233. doi:10.1007/s004410051284.


Cite as: https://hdl.handle.net/11858/00-001M-0000-0024-7612-A
Abstract
The major component of black widow spider venom, α-latrotoxin, triggers massive exocytosis in a variety of neurosecretory cells. An important trigger for exocytosis is the calcium influx via α-latrotoxin-induced channels in biological membranes. However, this mechanism fails to explain exocytosis which occurred in the complete absence of extracellular calcium. Recently, sophisticated biochemical and molecular techniques have led to the discovery of novel α-latrotoxin-binding membrane receptors: neurexins and latrophilin/CIRL (calcium-independent receptor for α-latrotoxin). Neurexins are single transmembrane proteins which bind to α-latrotoxin in a calcium-dependent manner and also interact with the synaptic vesicle protein, synaptotagmin. On the other hand, latrophilin is a seven-transmembrane protein and belongs to the family of G-protein-coupled receptors. The multitude of effects of α-latrotoxin on exocytosis in different cell systems and the nature of its membrane targets are discussed in this article. The molecular details of how α-latrotoxin binding is transduced eventually to exocytosis remain to be elucidated