Institute of Neuroscience, State Key Laboratory of Neuroscience, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, PR China.
PLoS Biol. 2011 Mar;9(3):e1001032. doi: 10.1371/journal.pbio.1001032. Epub 2011 Mar 22.
Dynamic balance of excitation and inhibition is crucial for network stability and cortical processing, but it is unclear how this balance is achieved at different membrane potentials (V(m)) of cortical neurons, as found during persistent activity or slow V(m) oscillation. Here we report that a V(m)-dependent modulation of recurrent inhibition between pyramidal cells (PCs) contributes to the excitation-inhibition balance. Whole-cell recording from paired layer-5 PCs in rat somatosensory cortical slices revealed that both the slow and the fast disynaptic IPSPs, presumably mediated by low-threshold spiking and fast spiking interneurons, respectively, were modulated by changes in presynaptic V(m). Somatic depolarization (>5 mV) of the presynaptic PC substantially increased the amplitude and shortened the onset latency of the slow disynaptic IPSPs in neighboring PCs, leading to a narrowed time window for EPSP integration. A similar increase in the amplitude of the fast disynaptic IPSPs in response to presynaptic depolarization was also observed. Further paired recording from PCs and interneurons revealed that PC depolarization increases EPSP amplitude and thus elevates interneuronal firing and inhibition of neighboring PCs, a reflection of the analog mode of excitatory synaptic transmission between PCs and interneurons. Together, these results revealed an immediate V(m)-dependent modulation of cortical inhibition, a key strategy through which the cortex dynamically maintains the balance of excitation and inhibition at different states of cortical activity.
兴奋与抑制的动态平衡对于网络稳定性和皮质处理至关重要,但目前尚不清楚在皮质神经元的不同膜电位(V(m))下,如在持续活动或缓慢 V(m)振荡期间,这种平衡是如何实现的。在这里,我们报告说,锥体神经元(PC)之间的递归抑制的 V(m)依赖性调制有助于兴奋-抑制平衡。在大鼠体感皮质切片的成对的第 5 层 PC 进行全细胞膜片钳记录显示,慢和快的双突触 IPSP 都受到突触前 V(m)变化的调节。突触前 PC 的胞体去极化(>5 mV)显著增加了相邻 PC 中的慢双突触 IPSP 的幅度并缩短了其起始潜伏期,从而缩小了 EPSP 整合的时间窗口。还观察到,由于突触前去极化,快的双突触 IPSP 的幅度也相似增加。进一步对 PC 和中间神经元进行的成对记录显示,PC 的去极化增加了 EPSP 的幅度,从而提高了中间神经元的放电和对相邻 PC 的抑制,这反映了 PC 和中间神经元之间的兴奋性突触传递的模拟模式。综上所述,这些结果揭示了皮质抑制的即时 V(m)依赖性调制,这是皮质在不同皮质活动状态下动态维持兴奋和抑制平衡的关键策略。