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脑片中传入通路的光遗传学激活及挥发性麻醉药对反应的调节

Optogenetic Activation of Afferent Pathways in Brain Slices and Modulation of Responses by Volatile Anesthetics.

作者信息

Murphy Caitlin A, Raz Aeyal, Grady Sean M, Banks Matthew I

机构信息

Department of Anesthesiology, University of Wisconsin;

Department of Anesthesiology, University of Wisconsin; Department of Anesthesiology, Rambam Health Care Campus, the Ruth and Bruce Rappaport Faculty of Medicine, Technion - Israel Institute of Technology.

出版信息

J Vis Exp. 2020 Jul 23(161). doi: 10.3791/61333.

Abstract

Anesthetics influence consciousness in part via their actions on thalamocortical circuits. However, the extent to which volatile anesthetics affect distinct cellular and network components of these circuits remains unclear. Ex vivo brain slices provide a means by which investigators may probe discrete components of complex networks and disentangle potential mechanisms underlying the effects of volatile anesthetics on evoked responses. To isolate potential cell type- and pathway-specific drug effects in brain slices, investigators must be able to independently activate afferent fiber pathways, identify non-overlapping populations of cells, and apply volatile anesthetics to the tissue in aqueous solution. In this protocol, methods to measure optogenetically-evoked responses to two independent afferent pathways to neocortex in ex vivo brain slices are described. Extracellular responses are recorded to assay network activity and targeted whole-cell patch clamp recordings are conducted in somatostatin- and parvalbumin-positive interneurons. Delivery of physiologically relevant concentrations of isoflurane via artificial cerebral spinal fluid to modulate cellular and network responses is described.

摘要

麻醉剂部分通过作用于丘脑皮质回路来影响意识。然而,挥发性麻醉剂对这些回路中不同细胞和网络成分的影响程度仍不清楚。离体脑片提供了一种方法,研究人员可以借此探究复杂网络的离散成分,并梳理挥发性麻醉剂对诱发反应影响的潜在机制。为了在脑片中分离潜在的细胞类型和通路特异性药物作用,研究人员必须能够独立激活传入纤维通路、识别不重叠的细胞群体,并将挥发性麻醉剂以水溶液形式应用于组织。在本方案中,描述了在离体脑片中测量对新皮层两条独立传入通路的光遗传学诱发反应的方法。记录细胞外反应以测定网络活动,并在生长抑素和小白蛋白阳性中间神经元中进行靶向全细胞膜片钳记录。还描述了通过人工脑脊液递送生理相关浓度的异氟烷来调节细胞和网络反应的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1aba/8256698/adf506c433e5/nihms-1701872-f0001.jpg

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