Institute of Science and Technology Austria (IST Austria), Klosterneuburg, Austria.
Elife. 2020 Oct 5;9:e61106. doi: 10.7554/eLife.61106.
In vitro work revealed that excitatory synaptic inputs to hippocampal inhibitory interneurons could undergo Hebbian, associative, or non-associative plasticity. Both behavioral and learning-dependent reorganization of these connections has also been demonstrated by measuring spike transmission probabilities in pyramidal cell-interneuron spike cross-correlations that indicate monosynaptic connections. Here we investigated the activity-dependent modification of these connections during exploratory behavior in rats by optogenetically inhibiting pyramidal cell and interneuron subpopulations. Light application and associated firing alteration of pyramidal and interneuron populations led to lasting changes in pyramidal-interneuron connection weights as indicated by spike transmission changes. Spike transmission alterations were predicted by the light-mediated changes in the number of pre- and postsynaptic spike pairing events and by firing rate changes of interneurons but not pyramidal cells. This work demonstrates the presence of activity-dependent associative and non-associative reorganization of pyramidal-interneuron connections triggered by the optogenetic modification of the firing rate and spike synchrony of cells.
体外研究表明,海马抑制性中间神经元的兴奋性突触输入可以发生海伯尔型、联想型或非联想型可塑性。通过测量尖峰细胞-中间神经元尖峰交叉相关中的尖峰传输概率,也证明了这些连接的行为和学习依赖性重组,这表明存在单突触连接。在这里,我们通过光遗传抑制锥体细胞和中间神经元亚群来研究大鼠在探索性行为期间这些连接的活动依赖性修饰。光应用和相关的锥体细胞和中间神经元群体的放电改变导致了锥体-中间神经元连接权重的持久变化,这表明尖峰传输发生了变化。尖峰传输的改变可以通过光介导的突触前和突触后尖峰配对事件数量的变化以及中间神经元而不是锥体细胞的放电率变化来预测。这项工作表明,通过细胞放电率和尖峰同步性的光遗传修饰触发了锥体-中间神经元连接的活动依赖性联想和非联想重组的存在。