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Genetic and molecular analysis of synaptic vesicle recycling in Drosophila.

机译:果蝇突触小泡回收的遗传和分子分析。

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Following exocytosis, one of the major presynaptic events is replenishing synaptic vesicles (SVs) to ensure the possibility of continuous synaptic transmission. The nerve terminal is thought to recycle SVs through clathrin-mediated endocytosis and by a clathrin-independent pathway called kiss and run organism, the fruit fly (Drosophila melanogaster), in dissecting the molecular mechanisms of clathrin-mediated endocytosis in recycling SVs at neuromuscular junctions (NMJs). Analyses of endocytotic mutants in Drosophila indicate that clathrin-mediated endocytosis may be essential for SV recycling, including a putative fast recycling mechanism uncovered recently. Further, a rather complex picture begins to emerge suggesting that clathrin-mediated endocytosis involves several sequential steps mediated by a large number of proteins. Finally, these studies also reveal that SV proteins may be selectively retrieved into nascent SVs by clathrin accessory proteins and defects in protein retrieval have significantimpacts on synaptic transmission. Following the completion of the Drosophila Genome Project and the development of gene targeting and RNAi approaches, genetic studies in Drosophila have become increasingly efficient. Hence, Drosophila is expected to continue to serve as an important model organism for studies of SV recycling.
机译:胞吐作用后,主要的突触前事件之一是补充突触小泡(SV),以确保连续突触传递的可能性。人们认为神经末梢通过网格蛋白介导的内吞作用和不依赖网格蛋白的途径称为吻和逃跑的有机体果蝇(果蝇(Drosophila melanogaster))来回收SV,从而剖析了网格蛋白介导的内吞作用在神经肌肉接头处回收SV的分子机制。 (NMJ)。果蝇中的内吞突变体的分析表明网格蛋白介导的内吞作用可能是SV回收必不可少的,包括最近发现的假定的快速回收机制。此外,开始出现相当复杂的图景,说明网格蛋白介导的内吞作用涉及由大量蛋白质介导的几个连续步骤。最后,这些研究还表明,可以通过网格蛋白辅助蛋白将SV蛋白选择性地回收到新生SV中,并且蛋白回收中的缺陷对突触传递具有重要影响。随着果蝇基因组计划的完成以及基因靶向和RNAi方法的发展,果蝇的遗传研究变得越来越有效。因此,果蝇有望继续作为SV回收研究的重要模式生物。

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