Imaging Voltage in Genetically Defined Neuronal Subpopulations with a Cre Recombinase-Targeted Hybrid Voltage Sensor

被引:23
作者
Bayguinov, Peter O. [1 ]
Ma, Yihe [2 ]
Gao, Yu [1 ,3 ]
Zhao, Xinyu [1 ,3 ]
Jackson, Meyer B. [1 ]
机构
[1] Univ Wisconsin, Dept Neurosci, 5505 WIMR2,1111 Highland Ave, Madison, WI 53705 USA
[2] Univ Wisconsin, Physiol Training Program, Madison, WI 53705 USA
[3] Univ Wisconsin, Waisman Ctr, Madison, WI 53705 USA
基金
美国国家卫生研究院;
关键词
Cre-lox; genetically encoded voltage indicators; interneuron; mossy cells; neural circuits; voltage imaging; LONG-TERM POTENTIATION; CENTRAL-NERVOUS-SYSTEM; C-FOS; GRANULE CELLS; ELECTRICAL-ACTIVITY; PATTERN COMPLETION; DENDRITIC SPINES; SPATIAL-PATTERNS; MOSSY CELL; MICE;
D O I
10.1523/JNEUROSCI.1363-17.2017
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Genetically encoded voltage indicators create an opportunity to monitor electrical activity in defined sets of neurons as they participate in the complex patterns of coordinated electrical activity that underlie nervous system function. Taking full advantage of genetically encoded voltage indicators requires a generalized strategy for targeting the probe to genetically defined populations of cells. To this end, we have generated a mouse line with an optimized hybrid voltage sensor (hVOS) probe within a locus designed for efficient Cre recombinase-dependent expression. Crossing this mouse with Cre drivers generated double transgenics expressing hVOS probe in GABAergic, parvalbumin, and calretinin interneurons, as well as hilar mossy cells, new adult-born neurons, and recently active neurons. In each case, imaging in brain slices from male or female animals revealed electrically evoked optical signals from multiple individual neurons in single trials. These imaging experiments revealed action potentials, dynamic aspects of dendritic integration, and trial-to-trial fluctuations in response latency. The rapid time response of hVOS imaging revealed action potentials with high temporal fidelity, and enabled accurate measurements of spike half-widths characteristic of each cell type. Simultaneous recording of rapid voltage changes in multiple neurons with a common genetic signature offers a powerful approach to the study of neural circuit function and the investigation of how neural networks encode, process, and store information.
引用
收藏
页码:9305 / 9319
页数:15
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