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细胞外基质糖蛋白腱生蛋白-R缺乏诱导的海马体可塑性变化

Hippocampal metaplasticity induced by deficiency in the extracellular matrix glycoprotein tenascin-R.

作者信息

Bukalo Olena, Schachner Melitta, Dityatev Alexander

机构信息

Zentrum für Molekulare Neurobiologie, Universitätsklinikum Hamburg-Eppendorf, D-20251 Hamburg, Germany.

出版信息

J Neurosci. 2007 May 30;27(22):6019-28. doi: 10.1523/JNEUROSCI.1022-07.2007.

Abstract

Predisposition of synapses to undergo plastic changes can be dynamically adjusted according to the history of synaptic activity (i.e., synapses are metaplastic). In search of a molecular mechanism underlying metaplasticity, we investigated mice deficient in the glycoprotein tenascin-R (TNR), based on the observations that this mutant exhibits elevated basal excitatory synaptic transmission and reduced perisomatic GABAergic inhibition. TNR is a major extracellular matrix glycoprotein of the CNS and carries the HNK-1 carbohydrate (human natural killer cell glycan), which has been identified as the functional epitope mediating regulation of GABAergic transmission via GABA(B) receptors. Here, we used patch-clamp recordings in hippocampal slices to determine the critical levels of postsynaptic neuron depolarization necessary for induction of long-term potentiation (LTP) at CA3-CA1 synapses and found that deficiency in TNR leads to a metaplastic increase in the threshold for induction of LTP. Reconstitution of slices from TNR-deficient mice with an HNK-1 glycomimetic or pharmacological treatment with either a GABA(A) receptor agonist, a GABA(B) receptor antagonist, an L-type voltage-dependent Ca2+ channel blocker, or an inhibitor of protein serine/threonine phosphatases restored LTP to the levels seen in wild-type mice. We propose that a chain of events initiated by reduced GABAergic transmission and proceeding via Ca2+ entry into cells and elevated activity of phosphatases mediates homeostatic adjustment of hippocampal plasticity in the absence of TNR. These data uncover a novel mechanism by which an extracellular matrix molecule and its associated carbohydrate provide conditions beneficial for induction of LTP in the CA1 region of the hippocampus.

摘要

突触发生可塑性变化的倾向可根据突触活动的历史动态调整(即突触具有元可塑性)。为了寻找元可塑性背后的分子机制,我们基于该突变体表现出基础兴奋性突触传递增强和体细胞周围GABA能抑制减弱的观察结果,对缺乏纤连蛋白-R(TNR)糖蛋白的小鼠进行了研究。TNR是中枢神经系统的一种主要细胞外基质糖蛋白,携带HNK-1碳水化合物(人类自然杀伤细胞聚糖),该碳水化合物已被确定为通过GABA(B)受体介导GABA能传递调节的功能表位。在这里,我们使用海马切片中的膜片钳记录来确定在CA3-CA1突触处诱导长时程增强(LTP)所需的突触后神经元去极化的临界水平,发现TNR缺乏导致LTP诱导阈值的元可塑性增加。用HNK-1糖模拟物重建TNR缺陷小鼠的切片,或用GABA(A)受体激动剂、GABA(B)受体拮抗剂、L型电压依赖性Ca2+通道阻滞剂或蛋白丝氨酸/苏氨酸磷酸酶抑制剂进行药物治疗,可使LTP恢复到野生型小鼠的水平。我们提出,由GABA能传递减少引发、通过Ca2+进入细胞并通过磷酸酶活性升高而进行的一系列事件,在没有TNR的情况下介导海马可塑性的稳态调节。这些数据揭示了一种新机制,即细胞外基质分子及其相关碳水化合物为海马体CA1区LTP的诱导提供了有利条件。

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