| Literature DB >> 31021319 |
Aanchal Bhatia1, Sahil Moza1, Upinder Singh Bhalla1.
Abstract
Excitation-inhibition (EI) balance controls excitability, dynamic range, and input gating in many brain circuits. Subsets of synaptic input can be selected or 'gated' by precise modulation of finely tuned EI balance, but assessing the granularity of EI balance requires combinatorial analysis of excitatory and inhibitory inputs. Using patterned optogenetic stimulation of mouse hippocampal CA3 neurons, we show that hundreds of unique CA3 input combinations recruit excitation and inhibition with a nearly identical ratio, demonstrating precise EI balance at the hippocampus. Crucially, the delay between excitation and inhibition decreases as excitatory input increases from a few synapses to tens of synapses. This creates a dynamic millisecond-range window for postsynaptic excitation, controlling membrane depolarization amplitude and timing via subthreshold divisive normalization. We suggest that this combination of precise EI balance and dynamic EI delays forms a general mechanism for millisecond-range input gating and subthreshold gain control in feedforward networks.Entities:
Keywords: EI balance; channelrhodopsin; hippocampus; inhibition; mouse; neural coding; neuroscience; subthreshold
Mesh:
Year: 2019 PMID: 31021319 PMCID: PMC6517031 DOI: 10.7554/eLife.43415
Source DB: PubMed Journal: Elife ISSN: 2050-084X Impact factor: 8.140