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Positive or negative feedback of optokinetic signals: degree of the misrouted optic flow determines system dynamics of human ocular motor behavior

机译:视动信号的正反馈或负反馈:光路误导的程度决定了人类眼动行为的系统动力学

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摘要

PURPOSE: The optokinetic system in healthy humans is a negative-feedback system that stabilizes gaze: slow-phase eye movements (i.e., the output signal) minimize retinal slip (i.e., the error signal). A positive-feedback optokinetic system may exist due to the misrouting of optic fibers. Previous studies have shown that, in a zebrafish mutant with a high degree of the misrouting, the optokinetic response (OKR) is reversed. As a result, slow-phase eye movements amplify retinal slip, forming a positive-feedback optokinetic loop. The positive-feedback optokinetic system cannot stabilize gaze, thus leading to spontaneous eye oscillations (SEOs). Because the misrouting in human patients (e.g., with a condition of albinism or achiasmia) is partial, both positive- and negative-feedback loops co-exist. How this co-existence affects human ocular motor behavior remains unclear.\udMETHODS: We presented a visual environment consisting of two stimuli in different parts of the visual field to healthy subjects. One mimicked positive-feedback optokinetic signals and the other preserved negative-feedback optokinetic signals. By changing the ratio and position of the visual field of these visual stimuli, various optic nerve misrouting patterns were simulated. Eye-movement responses to stationary and moving stimuli were measured and compared with computer simulations. The SEOs were correlated with the magnitude of the virtual positive-feedback optokinetic effect.\udRESULTS: We found a correlation among the simulated misrouting, the corresponding OKR, and the SEOs in humans. The proportion of the simulated misrouting needed to be greater than 50% to reverse the OKR and at least greater than or equal to 70% to evoke SEOs. Once the SEOs were evoked, the magnitude positively correlated to the strength of the positive-feedback OKR.\udCONCLUSIONS: This study provides a mechanism of how the misrouting of optic fibers in humans could lead to SEOs, offering a possible explanation for a subtype of infantile nystagmus syndrome (INS).
机译:目的:健康人的视动系统是一种负反馈系统,可稳定视线:慢速眼动(即输出信号)可最大程度地减少视网膜滑移(即误差信号)。由于光纤布线错误,可能存在正反馈光动力系统。先前的研究表明,在高度错误路由的斑马鱼突变体中,视动反应(OKR)是相反的。结果,慢相眼动会放大视网膜滑移,形成正反馈的光动力回路。正反馈光动力系统无法稳定视线,从而导致自发性眼球震荡(SEO)。由于人类患者的误行路线是局部的(例如,患有白化病或失语症),因此正反馈回路和负反馈回路都同时存在。这种共存如何影响人类眼动行为尚不清楚。\ ud方法:我们向健康受试者介绍了一种视觉环境,其中包括视野不同部分的两种刺激。一个模仿正反馈光动力学信号,另一个模仿负反馈光动力学信号。通过更改这些视觉刺激的视野比例和位置,可以模拟各种视神经错觉模式。测量眼睛对静止和运动刺激的反应,并与计算机模拟进行比较。 SEO与虚拟正反馈视动效应的大小相关。\结果:我们发现模拟的错误路线,相应的OKR与人类的SEO之间存在相关性。模拟错误路由的比例需要大于50%才能反转OKR,并且至少要大于或等于70%才能唤起SEO。一旦诱发SEO,幅度就与正反馈OKR的强度成正相关。婴儿性眼球震颤综合征(INS)。

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