139 Irvine Hall, Department of Anatomy & Neurobiology University of California, Irvine School of Medicine Irvine, CA 927697-1280 (949)824-3306 (phone) (949)824-9860 (fax).
Nat Protoc. 2013 Aug;8(8):1475-1493. doi: 10.1038/nprot.2013.080. Epub 2013 Jul 11.
Optogenetic interventions offer novel ways of probing, in a temporally specific manner, the roles of specific cell types in neuronal network functions of awake, behaving animals. Despite the unique potential for temporally specific optogenetic intervention in disease states, a major hurdle in its broad application to unpredictable brain states in a laboratory setting is constructing a real-time responsive system. We recently created a closed-loop system for stopping spontaneous seizures in chronically epileptic mice by using optogenetic intervention. This system performs with a very high sensitivity and specificity, and the strategy is not only relevant to epilepsy but also can also be used to react to diverse brain states in real time, with optogenetic or other interventions. The protocol presented here is highly modular and requires variable amounts of time to perform. We describe the basic construction of a complete system, and we include our downloadable custom closed-loop detection software, which can be used for this purpose.
光遗传学干预提供了一种新的方法,可以在清醒、行为动物的神经元网络功能中,以时间特异性的方式探测特定细胞类型的作用。尽管在疾病状态下进行时间特异性光遗传学干预具有独特的潜力,但在实验室中应用于不可预测的大脑状态的一个主要障碍是构建实时响应系统。我们最近创建了一个闭环系统,通过光遗传学干预来阻止慢性癫痫小鼠的自发性癫痫发作。该系统具有非常高的灵敏度和特异性,该策略不仅与癫痫有关,还可以实时对不同的大脑状态做出反应,使用光遗传学或其他干预措施。这里介绍的方案具有高度的模块化,并且需要不同数量的时间来执行。我们描述了一个完整系统的基本构建,包括我们可下载的自定义闭环检测软件,可用于此目的。