一种协同开关决定了新皮层锥体神经元远端树突中突触可塑性的正负。
A cooperative switch determines the sign of synaptic plasticity in distal dendrites of neocortical pyramidal neurons.
作者信息
Sjöström Per Jesper, Häusser Michael
机构信息
Wolfson Institute for Biomedical Research, Department of Physiology, University College London, London WC1E 6BT, United Kingdom.
出版信息
Neuron. 2006 Jul 20;51(2):227-38. doi: 10.1016/j.neuron.2006.06.017.
Pyramidal neurons in the cerebral cortex span multiple cortical layers. How the excitable properties of pyramidal neuron dendrites allow these neurons to both integrate activity and store associations between different layers is not well understood, but is thought to rely in part on dendritic backpropagation of action potentials. Here we demonstrate that the sign of synaptic plasticity in neocortical pyramidal neurons is regulated by the spread of the backpropagating action potential to the synapse. This creates a progressive gradient between LTP and LTD as the distance of the synaptic contacts from the soma increases. At distal synapses, cooperative synaptic input or dendritic depolarization can switch plasticity between LTD and LTP by boosting backpropagation of action potentials. This activity-dependent switch provides a mechanism for associative learning across different neocortical layers that process distinct types of information.
大脑皮层中的锥体神经元跨越多个皮层层。锥体神经元树突的兴奋性特性如何使这些神经元既能整合活动又能存储不同层之间的关联,目前尚不清楚,但部分被认为依赖于动作电位的树突反向传播。在这里,我们证明新皮层锥体神经元中突触可塑性的信号由反向传播动作电位向突触的扩散所调节。随着突触接触点距胞体距离的增加,这在长时程增强(LTP)和长时程抑制(LTD)之间产生了一个渐进梯度。在远端突触处,协同的突触输入或树突去极化可通过增强动作电位的反向传播在LTD和LTP之间切换可塑性。这种活动依赖性切换为跨不同新皮层层处理不同类型信息的联想学习提供了一种机制。
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