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长期增强效应:持续存在的问题与近期研究成果

Long-term potentiation: persisting problems and recent results.

作者信息

Lynch G, Muller D, Seubert P, Larson J

机构信息

Center for the Neurobiology of Learning and Memory, University of California, Irvine 92717.

出版信息

Brain Res Bull. 1988 Sep;21(3):363-72. doi: 10.1016/0361-9230(88)90148-7.

Abstract

In this paper we discuss recent experimental results pertinent to three unresolved issues regarding the long-term potentiation (LTP) effect: the nature of its enduring substrates, the biochemical mechanisms that produce it, and its potential role in memory. LTP appears to be triggered by a postsynaptic influx of calcium and is associated with alterations in the shape of dendritic spines and probably the formation of new synapses. We discuss the possibility that morphological reorganization also modifies membrane surface chemistry of synaptic elements. Evidence is presented that LTP is not associated with changes in presynaptic calcium currents. Activation of protein kinase C is shown to be insufficient for the induction of LTP, although it may play a modulatory role. The hypothesis that activation of a calcium-sensitive protease (calpain) is pivotal to the establishment of LTP is supported by experiments showing that a calpain inhibitor, leupeptin, blocks LTP. Furthermore, activation of NMDA receptors, an event implicated in LTP induction, is accompanied by calcium-sensitive proteolysis of spectrin, a major dendritic cytoskeletal protein. The finding that stimulation patterns designed to mimic naturally-occurring cell discharge patterns are highly effective for LTP induction greatly strengthens the hypothesis that LTP actually occurs during the encoding of information in cortical systems. Potential contributions of LTP to learning are explored using computer simulations of a simple cortical network.

摘要

在本文中,我们讨论了与长期增强(LTP)效应的三个未解决问题相关的近期实验结果:其持久底物的性质、产生它的生化机制以及它在记忆中的潜在作用。LTP似乎是由突触后钙内流触发的,并且与树突棘形状的改变以及可能新突触的形成有关。我们讨论了形态重组也可能改变突触元件膜表面化学性质的可能性。有证据表明LTP与突触前钙电流的变化无关。虽然蛋白激酶C的激活可能起调节作用,但已表明其激活不足以诱导LTP。钙敏感蛋白酶(钙蛋白酶)的激活对LTP的建立至关重要这一假说得到了实验支持,这些实验表明钙蛋白酶抑制剂亮抑蛋白酶肽可阻断LTP。此外,与LTP诱导有关的NMDA受体的激活伴随着血影蛋白(一种主要的树突细胞骨架蛋白)的钙敏感蛋白水解。设计用于模拟自然发生的细胞放电模式的刺激模式对LTP诱导非常有效这一发现极大地强化了LTP实际上发生在皮质系统信息编码过程中的假说。利用一个简单皮质网络的计算机模拟探索了LTP对学习的潜在贡献。

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