首页> 外文期刊>The Journal of Physiology >Multiple forms of activity-dependent intrinsic plasticity in layer V cortical neurones in vivo.
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Multiple forms of activity-dependent intrinsic plasticity in layer V cortical neurones in vivo.

机译:V层皮层神经元体内多种依赖活动的固有可塑性。

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Synaptic plasticity is classically considered as the neuronal substrate for learning and memory. However, activity-dependent changes in neuronal intrinsic excitability have been reported in several learning-related brain regions, suggesting that intrinsic plasticity could also participate to information storage. Compared to synaptic plasticity, there has been little exploration of the properties of induction and expression of intrinsic plasticity in an intact brain. Here, by the means of in vivo intracellular recordings in the rat we have examined how the intrinsic excitability of layer V motor cortex pyramidal neurones is altered following brief periods of repeated firing. Changes in membrane excitability were assessed by modifications in the discharge frequency versus injected current (F-I) curves. Most (approximately 64%) conditioned neurones exhibited a long-lasting intrinsic plasticity, which was expressed either by selective changes in the current threshold or in the slope of the F-I curve, or by concomitant changes in both parameters. These modifications in the neuronal input-output relationship led to a global increase or decrease in intrinsic excitability. Passive electrical membrane properties were unaffected by the intracellular conditioning, indicating that intrinsic plasticity resulted from modifications of voltage-gated ion channels. These results demonstrate that neocortical pyramidal neurones can express in vivo a bidirectional use-dependent intrinsic plasticity, modifying their sensitivity to weak inputs and/or the gain of their input-output function. These multiple forms of experience-dependent intrinsic changes, which expand the computational abilities of individual neurones, could shape new network dynamics and thus might participate in the formation of mnemonic motor engrams.
机译:突触可塑性通常被认为是学习和记忆的神经元底物。但是,已经在几个与学习有关的大脑区域中报告了神经元内在兴奋性的活动依赖性变化,这表明内在可塑性也可以参与信息存储。与突触可塑性相比,在完整的大脑中几乎没有探索诱导和内在可塑性表达的特性。在这里,我们通过大鼠体内细胞内记录的方法,研究了短暂反复反复射击后,第V层运动皮层锥体神经元的内在兴奋性如何改变。通过改变放电频率对注入电流(F-I)曲线来评估膜兴奋性的变化。大多数(约64%)条件神经元显示出持久的固有可塑性,这可以通过电流阈值或F-I曲线斜率的选择性变化或两个参数的同时变化来表示。神经元输入输出关系的这些修饰导致内在兴奋性的整体增加或减少。被动电膜特性不受细胞内条件的影响,表明固有的可塑性是由电压门控离子通道的修饰产生的。这些结果表明,新皮质锥体神经元可以在体内表达双向使用依赖的固有可塑性,从而改变其对弱输入的敏感性和/或获得其输入输出功能。这些依赖于经验的内在变化的多种形式,扩展了单个神经元的计算能力,可以塑造新的网络动力学,因此可能参与助记性运动图谱的形成。

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