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小脑蚓部浦肯野细胞层扫视运动学指标编码的建模

Modeling the Encoding of Saccade Kinematic Metrics in the Purkinje Cell Layer of the Cerebellar Vermis.

作者信息

Kalidindi Hari Teja, George Thuruthel Thomas, Laschi Cecilia, Falotico Egidio

机构信息

The BioRobotics Institute, Scuola Superiore Sant'Anna, Pisa, Italy.

出版信息

Front Comput Neurosci. 2019 Jan 10;12:108. doi: 10.3389/fncom.2018.00108. eCollection 2018.

Abstract

Recent electrophysiological observations related to saccadic eye movements in rhesus monkeys, suggest a prediction of the sensory consequences of movement in the Purkinje cell layer of the cerebellar oculomotor vermis (OMV). A definite encoding of real-time motion of the eye has been observed in simple-spike responses of the combined burst-pause Purkinje cell populations, organized based upon their complex-spike directional tuning. However, the underlying control mechanisms that could lead to such action encoding are still unclear. We propose a saccade control model, with emphasis on the structure of the OMV and its interaction with the extra-cerebellar components. In the simulated bilateral organization of the OMV, each caudal fastigial nucleus is arranged to receive incoming projections from combined burst-pause Purkinje cell populations. The OMV, through the caudal fastigial nuclei, interacts with the brainstem to provide adaptive saccade gain corrections that minimize the visual error in reaching a given target location. The simulation results corroborate the experimental Purkinje cell population activity patterns and their relation with saccade kinematic metrics. The Purkinje layer activity that emerges from the proposed organization, precisely predicted the speed of the eye at different target eccentricities. Simulated granular layer activity suggests no separate dynamics with respect to shaping the bilateral Purkine layer activity. We further examine the validity of the simulated OMV in maintaining the accuracy of saccadic eye movements in the presence of signal dependent variabilities, that can occur in extra-cerebellar pathways.

摘要

最近关于恒河猴扫视眼动的电生理观察结果表明,小脑动眼蚓部(OMV)浦肯野细胞层对运动的感觉后果有一个预测。在基于复杂峰放电方向调谐组织起来的爆发 - 暂停浦肯野细胞群体的简单峰放电反应中,已观察到对眼睛实时运动的明确编码。然而,导致这种动作编码的潜在控制机制仍不清楚。我们提出了一种扫视控制模型,重点关注OMV的结构及其与小脑外成分的相互作用。在模拟的OMV双侧组织中,每个尾侧顶核被安排接收来自爆发 - 暂停浦肯野细胞群体组合的传入投射。OMV通过尾侧顶核与脑干相互作用,提供适应性扫视增益校正,以最小化到达给定目标位置时的视觉误差。模拟结果证实了实验中浦肯野细胞群体的活动模式及其与扫视运动学指标的关系。从所提出的组织中出现的浦肯野层活动精确地预测了在不同目标偏心度下眼睛的速度。模拟的颗粒层活动表明,在塑造双侧浦肯野层活动方面没有单独的动力学。我们进一步检验了模拟OMV在存在小脑外通路中可能出现的信号依赖性变异性的情况下维持扫视眼动准确性的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e2f/6335360/3fc0317cd55a/fncom-12-00108-g0001.jpg

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