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尾状核微刺激对自发性和目的性扫视的影响。

Effects of caudate microstimulation on spontaneous and purposive saccades.

机构信息

Centre for Neuroscience Studies, Queen's University, Kingston, Ontario, Canada.

出版信息

J Neurophysiol. 2013 Jul;110(2):334-43. doi: 10.1152/jn.00046.2013. Epub 2013 May 1.

DOI:10.1152/jn.00046.2013
PMID:23636720
Abstract

Electrical stimulation has been delivered to the basal ganglia (BG) to treat intractable symptoms of a variety of clinical disorders. However, it is still unknown how such treatments improve behavioral symptoms. A difficulty of this problem is that artificial signals created by electrical stimulation interact with intrinsic signals before influencing behavior, thereby making it important to understand how such interactions between artificial and intrinsic signals occur. We addressed this issue by analyzing the effects of electrical stimulation under the following two behavioral conditions that induce different states of intrinsic signals: 1) subjects behave spontaneously without task demands; and 2) subjects perform a behavioral paradigm purposefully. We analyzed saccadic eye movements in monkeys while delivering microstimulation to the head and body of the caudate nucleus, a major input stage of the oculomotor BG. When monkeys generated spontaneous saccades, caudate microstimulation biased saccade vector endpoints toward the contralateral direction of stimulation sites. However, when caudate microstimulation was delivered during a purposive prosaccade (look toward a visual stimulus) or an antisaccade (look away from a stimulus) paradigm, it created overall ipsilateral biases by suppressing contralateral saccades more strongly than ipsilateral saccades. These results suggest that the impact of BG electrical stimulation changes dynamically depending on the state of intrinsic signals that vary under a variety of behavioral demands in everyday life.

摘要

电刺激已被应用于基底神经节(BG),以治疗各种临床疾病的难治性症状。然而,目前仍不清楚这些治疗方法如何改善行为症状。这个问题的一个难点是,电刺激产生的人工信号在影响行为之前与内在信号相互作用,因此了解这种人工信号与内在信号之间的相互作用如何发生是很重要的。我们通过分析以下两种行为条件下的电刺激效果来解决这个问题,这两种行为条件会引起内在信号的不同状态:1)受试者在没有任务要求的情况下自发行为;2)受试者有目的地执行行为范式。我们分析了猴子在向尾状核的头部和身体施加微刺激时的眼球运动,尾状核是眼动 BG 的主要输入阶段。当猴子自发产生扫视时,尾状核的微刺激会使扫视矢量的端点偏向刺激部位的对侧。然而,当在有目的的正扫视(看向视觉刺激)或反扫视(看向刺激之外)范式中施加尾状核微刺激时,它通过比抑制同侧扫视更强地抑制对侧扫视,产生了整体的同侧偏向。这些结果表明,BG 电刺激的影响会根据日常生活中各种行为需求下内在信号的状态而动态变化。

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