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适用于多种神经科学技术的可适配角度立体定向方法。

Adaptable Angled Stereotactic Approach for Versatile Neuroscience Techniques.

作者信息

Faber Chelsea L, Matsen Miles E, Meek Thomas H, Krull Jordan E, Morton Gregory J

机构信息

Department of Medicine, University of Washington.

Department of Medicine, University of Washington;

出版信息

J Vis Exp. 2020 May 7(159). doi: 10.3791/60965.

Abstract

Stereotactic surgery is an essential tool in the modern neuroscience lab. However, the ability to precisely and accurately target difficult-to-reach brain regions still presents a challenge, particularly when targeting brain structures along the midline. These challenges include avoiding of the superior sagittal sinus and third ventricle and the ability to consistently target selective and discrete brain nuclei. In addition, more advanced neuroscience techniques (e.g., optogenetics, fiber photometry, and two-photon imaging) rely on targeted implantation of significant hardware to the brain, and spatial limitations are a common hindrance. Presented here is a modifiable protocol for stereotactic targeting of rodent brain structures using an angled coronal approach. It can be adapted to 1) mouse or rat models, 2) various neuroscience techniques, and 3) multiple brain regions. As a representative example, it includes the calculation of stereotactic coordinates for targeting of the mouse hypothalamic ventromedial nucleus (VMN) for an optogenetic inhibition experiment. This procedure begins with the bilateral microinjection of an adeno-associated virus (AAV) encoding a light-sensitive chloride channel (SwiChR++) to a Cre-dependent mouse model, followed by the angled bilateral implantation of fiberoptic cannulae. Using this approach, findings show that activation of a subset of VMN neurons is required for intact glucose counterregulatory responses to insulin-induced hypoglycemia.

摘要

立体定向手术是现代神经科学实验室中的一项重要工具。然而,精确且准确地靶向难以触及的脑区的能力仍然是一项挑战,尤其是在靶向中线附近的脑结构时。这些挑战包括避开上矢状窦和第三脑室,以及始终如一地靶向选择性和离散的脑核团的能力。此外,更先进的神经科学技术(如光遗传学、纤维光度法和双光子成像)依赖于将大量硬件靶向植入大脑,而空间限制是一个常见的障碍。本文介绍了一种使用斜冠状面方法对啮齿动物脑结构进行立体定向靶向的可修改方案。它可以适用于1)小鼠或大鼠模型,2)各种神经科学技术,以及3)多个脑区。作为一个代表性例子,它包括在光遗传学抑制实验中靶向小鼠下丘脑腹内侧核(VMN)的立体定向坐标计算。该过程首先向Cre依赖的小鼠模型双侧显微注射编码光敏氯离子通道(SwiChR++)的腺相关病毒(AAV),然后双侧斜角植入光纤套管。使用这种方法,研究结果表明,VMN神经元的一个子集的激活是对胰岛素诱导的低血糖完整的葡萄糖反向调节反应所必需的。

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