Kleshchevnikov A M
Institute of the Brain, Russian Academy of Medical Sciences, Moscow.
Neurosci Behav Physiol. 1999 Mar-Apr;29(2):185-96. doi: 10.1007/BF02465325.
This review summarizes data on the plasticity of hippocampal synaptic pathways in conditions of afferent activation modeling the electrical activity of neurons during the theta rhythm. Activation with short trains of stimuli with frequencies of about 5 Hz efficiently induces long-term potentiation, i.e., stable facilitation of synaptic transmission. Contrarily, single stimuli presented at the same frequency "depotentiate" synapses or even induce long-term depression. Combined theta activity at two synaptic inputs, in phase with each other, induces long-term potentiation, while combined activity in antiphase produces long-term depression of the weakly-activated input (associative long-term potentiation and depression). Short trains of single stimuli at a frequency of 5 Hz induce heterosynaptic short-term depression: the efficiency of all synaptic inputs is decreased for time periods of the order of 1 min. Apart from changes in synaptic efficiency, theta activation affects the ability to induce synaptic rearrangements in conditions of subsequent afferent activation ("cryptic" plasticity). Thus, virtually all known types of synaptic plasticity are efficiently induced by afferent activation of the pattern of the hippocampal theta rhythm, which suggests the possible mechanisms for its roles in learning and memory processes.
本综述总结了在模拟θ节律期间神经元电活动的传入激活条件下,海马突触通路可塑性的数据。以约5Hz的频率进行短串刺激激活可有效诱导长时程增强,即突触传递的稳定易化。相反,以相同频率施加单个刺激会使突触“去增强”,甚至诱导长时程抑制。两个突触输入处相互同相的联合θ活动诱导长时程增强,而异相的联合活动则使弱激活输入产生长时程抑制(联合长时程增强和抑制)。频率为5Hz的单个刺激短串可诱导异突触短时程抑制:在约1分钟的时间段内,所有突触输入的效率都会降低。除了突触效率的变化外,θ激活还会影响在随后传入激活条件下诱导突触重排的能力(“隐匿性”可塑性)。因此,海马θ节律模式的传入激活可有效诱导几乎所有已知类型的突触可塑性,这提示了其在学习和记忆过程中发挥作用的可能机制。