蛙运动神经末梢肌肉长度对递质释放的调节。整合素- ecm相互作用的动态效应和作用。

B M Chen, A D Grinnell
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引用次数: 0

摘要

肌肉长度的变化导致青蛙运动神经末梢释放递质的概率发生很大变化。从静止长度拉伸5% ~ 10%可使EPP振幅或mEPP频率增加100%以上。这种现象是完全可逆的,而且速度极快。在拉伸的7-10毫秒内,增强就完成了,只要拉伸持续,它基本上就保持在新的水平上。鉴于这些特性,释放的长度调节无疑具有重要的功能,强烈地放大了脊髓拉伸反射。在0 Ca++, 2 mM Mg++林格中,拉伸诱导的发射机释放增强在较低的水平上持续存在。这一发现表明缺乏对终端外钙离子内流的依赖。不能排除靠近释放点的细胞内储存的ca2 +释放是一个促成因素。然而,我们的结果表明,细胞外基质和神经末梢之间的物理连接机制可以直接改变释放概率。在通过神经肌肉连接处的深蚀刻冻裂的显微照片中,形态学证据可以证明可能负责的连接。假设负责拉伸效应的ECM-神经终端连接涉及整合素家族的蛋白质,并且知道许多整合素-ECM结合相互作用发生在含有RGD氨基酸序列的ECM蛋白质上,我们用0 Ca++, 2 mM Mg++ Ringer处理制剂以减少整合素结合,然后将含有0.1-0.2 mM含有RGD序列的六氨基酸肽的肌肉恢复到正常的Ringer。该肽强烈抑制拉伸效应,而对照肽(RGE)没有作用。50 μ m Ca++/50 μ m Mg++ Ringer对拉伸增强作用不大,但当RGD存在时,对拉伸增强有较强的抑制作用。ECM分子、整合素的身份和增强释放的机制尚不清楚。然而,我们的研究结果表明,释放概率的大部分或全部长度依赖性调节是由rgd敏感的整合素- ecm相互作用介导的,这种相互作用更多地依赖于外部钙离子而不是镁离子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Regulation of transmitter release by muscle length in frog motor nerve terminals. Dynamics of the effect and the role of integrin-ECM interactions.

Changes in muscle length cause large changes in the probability of transmitter release from frog motor nerve terminals. A 5% to 10% stretch from rest length can increase EPP amplitude or mEPP frequency by more than 100%. The phenomenon is fully reversible and extremely rapid. Within 7-10 milliseconds of the stretch, the enhancement is complete, and it is maintained essentially constant at the new level for as long as the stretch is sustained. Given these properties, the length modulation of release is unquestionably of functional importance, strongly amplifying the spinal stretch reflex. The stretch-induced enhancement of transmitter release persists at a reduced level in a 0 Ca++, 2 mM Mg++ Ringer. This finding indicates a lack of dependence on Ca++ influx from outside the terminal. Release of Ca++ from intracellular stores close to release sites cannot be ruled out as a contributing factor. Our results, however, suggest a mechanism involving physical connections between the extracellular matrix and the nerve terminal that can alter release probability directly. Morphological evidence for connections that might be responsible can be demonstrated in micrographs of deep-etched freeze fractures through neuromuscular junctions. Hypothesizing that the ECM-nerve terminal connections responsible for the stretch effect involve proteins from the integrin family and knowing that many of the integrin-ECM binding interactions occur at sites on the ECM proteins containing the amino acid sequence RGD, we treated preparations with 0 Ca++, 2 mM Mg++ Ringer to reduce integrin binding and then returned the muscle to normal Ringer containing 0.1-0.2 mM of a six-amino-acid peptide containing the RGD sequence. This peptide strongly suppressed the stretch effect, while a control peptide (RGE) had no effect. A 50 microM Ca++/50 microM Mg++ Ringer had little effect on stretch enhancement but permitted a strong inhibition of enhancement when RGD was present. The identity of the ECM molecule(s), the integrin(s), and the mechanism of enhancement of release are unknown. However, our findings imply that much or all of the length-dependent modulation of release probability is mediated by an RGD-sensitive integrin-ECM interaction that depends more on external Ca++ than on Mg++.

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