首页> 外文期刊>The Journal of Physiology >'Delayed' endocytosis is regulated by extracellular Ca2+ in snake motor boutons.
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'Delayed' endocytosis is regulated by extracellular Ca2+ in snake motor boutons.

机译:“延迟的”内吞作用由蛇运动钮扣中的细胞外Ca2 +调节。

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摘要

When cooled below approximately 7 degrees C, recently endocytosed vesicles in the motor terminals of the garter snake fail to shed their clathrin coats. Perhaps as a result, the terminals complete only about one-half of the compensatory endocytosis expected after a given period of stimulation. Upon return to room temperature (RT), endocytosis resumes immediately and is complete within minutes. This "delayed" endocytosis following release from cold block provides an opportunity to study clathrin-dependent endocytotic mechanisms in temporal isolation from those events, such as Ca2+ entry and consequent exocytosis, that are normally associated with the activation of nerve terminals. We have taken advantage of clathrin decoating blockade to examine the rate, temperature dependence and extracellular Ca2+ dependence of endocytosis at the snake nerve-muscle synapse. Endocytosis was fast at RT (complete in < 1 min) and markedly faster still at 35 degrees C. Moreover, the rate of endocytosis varied significantly with change in [Ca2+]o; the rate at 7.2 mM (single exponential time constant, approximately 3 s) was approximately double that at 0 mM (single exponential time constant, approximately 7 s). Thus, membrane retrieval via clathrin is rapid and, due to its dependence on [Ca2+]o, potentially regulated by changes in the milieu of the synaptic cleft during neural activity.
机译:当冷却到约7摄氏度以下时,吊袜带蛇的运动末端最近被内吞的囊泡无法脱去网格蛋白被膜。可能的结果是,在给定的刺激时间之后,末端仅完成预期的代偿性内吞作用的约一半。返回室温(RT)后,内吞作用立即恢复,并在数分钟内完成。从冷阻滞释放后的这种“延迟的”内吞作用提供了研究与网格蛋白依赖的内吞机制的机会,这些机制与这些事件(如通常与神经末梢激活相关的Ca 2+进入和随后的胞吐作用)在时间上隔离开来。我们利用网格蛋白脱涂层阻滞剂来检查蛇神经-肌肉突触内吞作用的速率,温度依赖性和细胞外Ca2 +依赖性。内吞作用在RT时最快(<1分钟内完成),而在35摄氏度时仍显着更快。此外,内吞作用的速率随[Ca2 +] o的变化而显着变化。 7.2 mM(单指数时间常数,约3 s)时的速率大约是0 mM(单指数时间常数,约7 s)时的速率的两倍。因此,通过网格蛋白的膜恢复是快速的,并且由于其对[Ca2 +] o的依赖性,可能在神经活动过程中受到突触裂隙环境变化的调节。

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