Muller D, Garcia-Segura L M, Parducz A, Dunant Y
Proc Natl Acad Sci U S A. 1987 Jan;84(2):590-4. doi: 10.1073/pnas.84.2.590.
Small pieces of Torpedo electric organ were cryofixed at 1-ms time intervals in a liquid medium at -190 degrees C before, during, and after the passage of a single nerve impulse. In contrast to studies using this or other preparations, these experiments were done without 4-aminopyridine or other drugs that potentiate transmitter release. Freeze-fracture replicas were made from the most superficial layers of the tissue, where the rate of cooling was rapid enough to retain ultrastructure in the absence of chemical fixation. We found that the transmission of an impulse was accompanied by the momentary appearance of a population of large intramembrane particles in both the protoplasmic (P) and the external (E) leaflets of the presynaptic plasma membrane. The change was very brief, appearing soon after the stimulus artifact. It lasted for 2-3 ms. Large pits denoting vesicle openings at the presynaptic membrane were found in a small proportion of nerve terminals; their number did not increase during transmission of the nerve impulse. Reducing the temperature from 16 to 5 degrees C slowed the time course of both the electrophysiological response and the change in intramembrane particles. The number of large particles did not increase when stimulation was applied in a low-Ca medium, a condition where the nerve terminals were still depolarized by the action potential but did not release the neurotransmitter. From these and other observations, we conclude that this transient change of intramembrane particles is closely linked to the mechanism of acetylcholine release at the nerve-electroplaque junction.
在单个神经冲动通过之前、期间和之后,每隔1毫秒的时间间隔,将小块电鳐电器官在-190℃的液体介质中进行冷冻固定。与使用这种或其他制剂的研究不同,这些实验是在没有4-氨基吡啶或其他增强递质释放的药物的情况下进行的。冷冻断裂复制品取自组织最表层,在该层冷却速度足够快,无需化学固定就能保留超微结构。我们发现,冲动的传递伴随着突触前质膜的原生质(P)小叶和外部(E)小叶中大量膜内颗粒的瞬间出现。这种变化非常短暂,在刺激伪迹后不久出现。它持续2-3毫秒。在一小部分神经末梢中发现了表示突触前膜囊泡开口的大坑;在神经冲动传递过程中,它们的数量没有增加。将温度从16℃降至5℃会减缓电生理反应和膜内颗粒变化的时间进程。在低钙介质中施加刺激时,大颗粒的数量没有增加,在这种情况下,神经末梢仍因动作电位而去极化,但不释放神经递质。从这些以及其他观察结果中,我们得出结论,膜内颗粒的这种短暂变化与神经-电板连接处乙酰胆碱释放的机制密切相关。