Xu L, Anwyl R, Rowan M J
Department of Pharmacology and Therapeutics, Trinity College, Dublin, Ireland.
Nature. 1998 Aug 27;394(6696):891-4. doi: 10.1038/29783.
Experience-dependent long-lasting increases in excitatory synaptic transmission in the hippocampus are believed to underlie certain types of memory. Whereas stimulation of hippocampal pathways in freely moving rats can readily elicit a long-term potentiation (LTP) of transmission that may last for weeks, previous studies have failed to detect persistent increases in synaptic efficacy after hippocampus-mediated learning. As changes in synaptic efficacy are contingent on the history of plasticity at the synapses, we have examined the effect of experience-dependent hippocampal activation on transmission after the induction of LTP. We show that exploration of a new, non-stressful environment rapidly induces a complete and persistent reversal of the expression of high-frequency stimulation-induced early-phase LTP in the CA1 area of the hippocampus, without affecting baseline transmission in a control pathway. LTP expression is not affected by exploration of familiar environments. We found that spatial exploration affected LTP within a defined time window because neither the induction of LTP nor the maintenance of long-established LTP was blocked. The discovery of a novelty-induced reversal of LTP expression provides strong evidence that extensive long-lasting decreases in synaptic efficacy may act in tandem with enhancements at selected synapses to allow the detection and storage of new information by the hippocampus.
经验依赖性的海马兴奋性突触传递的长期增强被认为是某些类型记忆的基础。虽然在自由活动的大鼠中刺激海马通路能够轻易引发可能持续数周的传递性长期增强(LTP),但先前的研究未能在海马介导的学习后检测到突触效能的持续增加。由于突触效能的变化取决于突触处的可塑性历史,我们研究了经验依赖性海马激活对LTP诱导后传递的影响。我们发现,探索一个新的、无压力的环境会迅速诱导海马CA1区高频刺激诱导的早期LTP表达完全且持续地逆转,而不影响对照通路的基线传递。LTP表达不受熟悉环境探索的影响。我们发现空间探索在一个特定的时间窗口内影响LTP,因为LTP的诱导和长期建立的LTP的维持均未被阻断。新奇诱导的LTP表达逆转这一发现提供了强有力的证据,表明突触效能广泛而持久的降低可能与选定突触处的增强协同作用,以使海马能够检测和存储新信息。