Rhee Jun Kyu, Iwamoto Yayoi, Baker Bradley J
Division of Bio-Medical Science and Technology, KIST School, Korea University of Science and Technology (UST), Seoul, South Korea.
Brain Science Creative Research Center, Brain Science Institute, Korea Institute of Science and Technology, Seoul, South Korea.
Front Neuroanat. 2021 Nov 2;15:741711. doi: 10.3389/fnana.2021.741711. eCollection 2021.
Genetically encoded voltage indicators (GEVIs) expressed pan-neuronally were able to optically resolve bicuculline induced spontaneous oscillations in brain slices of the mouse motor cortex. Three GEVIs were used that differ in their timing of response to voltage transients as well as in their voltage ranges. The duration, number of cycles, and frequency of the recorded oscillations reflected the characteristics of each GEVI used. Multiple oscillations imaged in the same slice never originated at the same location, indicating the lack of a "hot spot" for induction of the voltage changes. Comparison of pan-neuronal, Ca/calmodulin-dependent protein kinase II α restricted, and parvalbumin restricted GEVI expression revealed distinct profiles for the excitatory and inhibitory cells in the spontaneous oscillations of the motor cortex. Resolving voltage fluctuations across space, time, and cell types with GEVIs represent a powerful approach to dissecting neuronal circuit activity.
全神经元表达的基因编码电压指示剂(GEVIs)能够光学分辨荷包牡丹碱诱导的小鼠运动皮层脑片中的自发振荡。使用了三种GEVIs,它们对电压瞬变的响应时间以及电压范围各不相同。记录的振荡的持续时间、周期数和频率反映了所使用的每种GEVI的特征。在同一片脑片中成像的多个振荡从未在同一位置起源,这表明缺乏诱导电压变化的“热点”。全神经元、钙/钙调蛋白依赖性蛋白激酶IIα限制型和小白蛋白限制型GEVI表达的比较揭示了运动皮层自发振荡中兴奋性和抑制性细胞的不同特征。利用GEVIs解析跨空间、时间和细胞类型的电压波动是剖析神经元回路活动的一种强大方法。