Institut für Neuroinformatik, Ruhr-Universität Bochum, Bochum, Germany.
Keldysh Institute of Applied Mathematics of Russian Academy of Sciences, Moscow, Russia.
J Neurophysiol. 2022 Oct 1;128(4):1025-1039. doi: 10.1152/jn.00531.2021. Epub 2022 Sep 7.
Conventional, computational theories limit the understanding of how action and perception are controlled. In an alternative scheme, the nervous system controls the values of physical and neurophysiological parameters that predetermine the choice of the spatial frames of reference (FRs) for action and perception. For example, all possible eye positions, Q, can be considered as comprising a spatial FR in which extraocular muscles (EOMs) stabilize gaze directions. The origin or referent point of this FR is a specific, threshold eye position, R, at which EOMs can be quiescent but activated depending on the difference between Q and R. Starting before eye motion, shifts in R cause displacement of the FR and resetting of the stable equilibrium position to which the eyes are forced to move. Rather than corollary discharge, the depiction of visual images integrated across the entire retina in the shifted spatial FR is responsible for remapping visual receptive fields and visual constancy. These suggestions are illustrated in computer models of saccades in the referent control framework in humans and monkeys. The existence of three types of visual RF remapping during saccades is suggested. Properly scaled, shifts in the R underlying a saccade are transmitted to motoneurons of arm muscles to guide reach-to-grasp motion in the same, eye-centered FR. Some predictions of the proposed control scheme have been verified and new tests are suggested. The scheme is applicable to several eye-hand coordination deficits including micrography in Parkinson's disease and explains why vision helps deafferented subjects diminish movement deficits.
传统的计算理论限制了对动作和感知是如何被控制的理解。在一个替代方案中,神经系统控制物理和神经生理参数的值,这些参数预先确定了动作和感知的空间参照系(FR)的选择。例如,所有可能的眼睛位置 Q 可以被视为一个空间 FR,其中眼外肌(EOM)稳定注视方向。这个 FR 的原点或参照点是一个特定的、阈值的眼睛位置 R,在这个位置,EOM 可以静止,但取决于 Q 和 R 之间的差异,EOM 可以被激活。在眼球运动之前开始,R 的移位会导致 FR 的位移和迫使眼睛移动的稳定平衡位置的重置。负责重新映射视觉感受野和视觉恒常性的是在移位的空间 FR 中整合整个视网膜的视觉图像的描述,而不是传出放电。这些建议在人类和猴子的参照控制框架中的扫视计算机模型中得到了说明。建议在扫视期间存在三种类型的视觉 RF 重映射。适当缩放的,扫视中 R 的移位被传递到手臂肌肉的运动神经元,以引导在相同的、以眼睛为中心的 FR 中的伸手抓握运动。所提出的控制方案的一些预测已经得到验证,并提出了新的测试。该方案适用于几种眼手协调缺陷,包括帕金森病中的微描记术,并解释了为什么视觉有助于去传入的受试者减少运动缺陷。