Howard Hughes Medical Institute, Janelia Research Campus, Ashburn, Virginia, USA.
Nat Neurosci. 2017 Mar;20(3):417-426. doi: 10.1038/nn.4486. Epub 2017 Jan 23.
Place cells in the CA1 region of the hippocampus express location-specific firing despite receiving a steady barrage of heterogeneously tuned excitatory inputs that should compromise output dynamic range and timing. We examined the role of synaptic inhibition in countering the deleterious effects of off-target excitation. Intracellular recordings in behaving mice demonstrate that bimodal excitation drives place cells, while unimodal excitation drives weaker or no spatial tuning in interneurons. Optogenetic hyperpolarization of interneurons had spatially uniform effects on place cell membrane potential dynamics, substantially reducing spatial selectivity. These data and a computational model suggest that spatially uniform inhibitory conductance enhances rate coding in place cells by suppressing out-of-field excitation and by limiting dendritic amplification. Similarly, we observed that inhibitory suppression of phasic noise generated by out-of-field excitation enhances temporal coding by expanding the range of theta phase precession. Thus, spatially uniform inhibition allows proficient and flexible coding in hippocampal CA1 by suppressing heterogeneously tuned excitation.
海马 CA1 区的位置细胞尽管受到异质性调谐的兴奋性输入的持续轰炸,这些输入应该会损害输出动态范围和定时,但仍表现出位置特异性放电。我们研究了突触抑制在抵消靶向外兴奋的有害影响中的作用。在行为小鼠中的细胞内记录表明,双模态兴奋驱动位置细胞,而单模态兴奋驱动中间神经元的空间调谐变弱或不存在。中间神经元的光遗传学超极化对位置细胞膜电位动力学具有空间均匀的影响,大大降低了空间选择性。这些数据和计算模型表明,空间均匀的抑制性电导通过抑制场外兴奋和限制树突放大来抑制位置细胞的率编码。同样,我们观察到,通过抑制场外兴奋产生的相位噪声的抑制性抑制通过扩展θ相位超前的范围来增强时间编码。因此,空间均匀的抑制通过抑制异质性调谐的兴奋来允许在海马 CA1 中进行高效和灵活的编码。