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Temporal coincidence between synaptic vesicle fusion and quantal secretion of acetylcholine.突触小泡融合与乙酰胆碱量子分泌之间的时间巧合。
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2
Measurement of quantal secretion induced by ouabain and its correlation with depletion of synaptic vesicles.哇巴因诱导的量子分泌的测量及其与突触小泡耗竭的相关性。
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Synaptic vesicle exocytosis captured by quick freezing and correlated with quantal transmitter release.通过快速冷冻捕获的突触小泡胞吐作用及其与量子递质释放的关联。
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Increase in the number of presynaptic large intramembrane particles during synaptic transmission at the Torpedo nerve-electroplaque junction.电鳐神经 - 电板连接处突触传递过程中突触前大膜内颗粒数量的增加。
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Structural changes after transmitter release at the frog neuromuscular junction.蛙神经肌肉接头处递质释放后的结构变化。
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A chloride channel blocker reduces acetylcholine uptake into synaptic vesicles at the frog neuromuscular junction.一种氯离子通道阻滞剂会减少青蛙神经肌肉接头处乙酰胆碱摄入突触小泡的量。
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本文引用的文献

1
An analysis of the end-plate potential recorded with an intracellular electrode.用细胞内电极记录的终板电位分析。
J Physiol. 1951 Nov 28;115(3):320-70. doi: 10.1113/jphysiol.1951.sp004675.
2
A STUDY OF EXTRACELLULAR SPACE IN CENTRAL NERVOUS TISSUE BY FREEZE-SUBSTITUTION.用冷冻置换法对中枢神经组织细胞外间隙的研究
J Cell Biol. 1965 Apr;25(1):117-37. doi: 10.1083/jcb.25.1.117.
3
THE MEASUREMENT OF SYNAPTIC DELAY, AND THE TIME COURSE OF ACETYLCHOLINE RELEASE AT THE NEUROMUSCULAR JUNCTION.神经肌肉接头处突触延迟的测量以及乙酰胆碱释放的时间进程。
Proc R Soc Lond B Biol Sci. 1965 Feb 16;161:483-95. doi: 10.1098/rspb.1965.0016.
4
ELECTRON MICROSCOPY AFTER RAPID FREEZING ON A METAL SURFACE AND SUBSTITUTION FIXATION.在金属表面快速冷冻及置换固定后的电子显微镜检查
Anat Rec. 1964 Jul;149:381-5. doi: 10.1002/ar.1091490307.
5
The fine structure of the neuromuscular junction of the frog.青蛙神经肌肉接头的精细结构。
J Physiol. 1960 Jan;150(1):134-44. doi: 10.1113/jphysiol.1960.sp006378.
6
The effect of calcium on the myelinated nerve fibre.钙对有髓神经纤维的作用。
J Physiol. 1957 Jul 11;137(2):245-60. doi: 10.1113/jphysiol.1957.sp005809.
7
Biophysical aspects of neuro-muscular transmission.神经肌肉传递的生物物理方面。
Prog Biophys Biophys Chem. 1956;6:121-70.
8
Quantal components of the end-plate potential.终板电位的量子成分。
J Physiol. 1954 Jun 28;124(3):560-73. doi: 10.1113/jphysiol.1954.sp005129.
9
Ultrastructural and thermocouple evaluation of rapid freezing technique.快速冷冻技术的超微结构及热电偶评估
Cryobiology. 1980 Dec;17(6):571-84. doi: 10.1016/0011-2240(80)90072-3.
10
Acetylcholine content and release in denervated or botulinum poisoned rat skeletal muscle.去神经支配或肉毒杆菌中毒的大鼠骨骼肌中乙酰胆碱的含量及释放
J Physiol. 1981;319:253-9. doi: 10.1113/jphysiol.1981.sp013905.

突触小泡融合与乙酰胆碱量子分泌之间的时间巧合。

Temporal coincidence between synaptic vesicle fusion and quantal secretion of acetylcholine.

作者信息

Torri-Tarelli F, Grohovaz F, Fesce R, Ceccarelli B

出版信息

J Cell Biol. 1985 Oct;101(4):1386-99. doi: 10.1083/jcb.101.4.1386.

DOI:10.1083/jcb.101.4.1386
PMID:2995407
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2113930/
Abstract

We applied the quick-freezing technique to investigate the precise temporal coincidence between the onset of quantal secretion and the appearance of fusions of synaptic vesicles with the prejunctional membrane. Frog cutaneous pectoris nerve-muscle preparations were soaked in modified Ringer's solution with 1 mM 4-aminopyridine, 10 mM Ca2+, and 10(-4) M d-Tubocurarine and quick-frozen 1-10 ms after a single supramaximal shock. The frozen muscles were then either freeze-fractured or cryosubstituted in acetone with 13% OsO4 and processed for thin section electron microscopy. Temporal resolution of less than 1 ms can be achieved using a quick-freeze device that increases the rate of freezing of the muscle after it strikes the chilled copper block (15 degrees K) and that minimizes the precooling of the muscle during its descent toward the block. We minimized variations in transmission time by examining thin sections taken only from the medial edge of the muscle, which was at a fixed distance from the point of stimulation of the nerve. The ultrastructure of the cryosubstituted preparations was well preserved to a depth of 5 - 10 micron, and within this narrow band vesicles were found fused with the axolemma after a minimum delay of 2.5 ms after stimulation of the nerve. Since the total transmission time to this edge of the muscle was approximately 3 ms, these results indicate that the vesicles fuse with the axolemma precisely at the same time the quanta are released. Freeze-fracture does not seem to be an adequate experimental technique for this work because in the well-preserved band of the muscle the fracture plane crosses, but does not cleave, the inner hydrophobic domain of the plasmalemma. Fracture faces may form in deeper regions of the muscle where tissue preservation is unsatisfactory and freezing is delayed.

摘要

我们应用快速冷冻技术来研究量子分泌开始与突触小泡与突触前膜融合出现之间精确的时间一致性。将青蛙胸皮神经 - 肌肉标本浸泡在含有1 mM 4 - 氨基吡啶、10 mM Ca2+和10(-4) M d - 筒箭毒碱的改良林格氏溶液中,在单次超强刺激后1 - 10毫秒进行快速冷冻。然后将冷冻的肌肉进行冷冻断裂,或者在含有13% OsO4的丙酮中进行低温替代,接着进行超薄切片电子显微镜处理。使用一种快速冷冻装置可以实现小于1毫秒的时间分辨率,该装置在肌肉撞击冷却的铜块(15°K)后提高肌肉的冷冻速率,并在肌肉下降到铜块的过程中尽量减少其预冷。我们通过仅检查从肌肉内侧边缘获取的超薄切片来尽量减少传输时间的变化,该内侧边缘与神经刺激点保持固定距离。低温替代标本的超微结构在5 - 10微米的深度范围内保存良好,在这个狭窄区域内,发现神经刺激后至少延迟2.5毫秒,小泡与轴突膜融合。由于到肌肉这个边缘的总传输时间约为3毫秒,这些结果表明小泡与轴突膜融合的时间恰好与量子释放的时间相同。冷冻断裂似乎不是这项工作的合适实验技术,因为在肌肉保存良好的区域,断裂平面穿过但未劈开质膜的内部疏水区域。在肌肉更深的区域可能会形成断裂面,那里的组织保存不佳且冷冻延迟。