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前庭代偿期间神经元检测阈值:反应可变性和感觉替代的贡献。

Neuronal detection thresholds during vestibular compensation: contributions of response variability and sensory substitution.

机构信息

McGill University, Aerospace Medical Research Unit, MacIntyre Medical Sciences Bldg, 3655 Prom Sir William Osler, Montreal, Quebec, Canada, H3G 1Y6.

出版信息

J Physiol. 2014 Apr 1;592(7):1565-80. doi: 10.1113/jphysiol.2013.267534. Epub 2013 Dec 23.

Abstract

The vestibular system is responsible for processing self-motion, allowing normal subjects to discriminate the direction of rotational movements as slow as 1-2 deg s(-1). After unilateral vestibular injury patients' direction-discrimination thresholds worsen to ∼20 deg s(-1), and despite some improvement thresholds remain substantially elevated following compensation. To date, however, the underlying neural mechanisms of this recovery have not been addressed. Here, we recorded from first-order central neurons in the macaque monkey that provide vestibular information to higher brain areas for self-motion perception. Immediately following unilateral labyrinthectomy, neuronal detection thresholds increased by more than two-fold (from 14 to 30 deg s(-1)). While thresholds showed slight improvement by week 3 (25 deg s(-1)), they never recovered to control values - a trend mirroring the time course of perceptual thresholds in patients. We further discovered that changes in neuronal response variability paralleled changes in sensitivity for vestibular stimulation during compensation, thereby causing detection thresholds to remain elevated over time. However, we found that in a subset of neurons, the emergence of neck proprioceptive responses combined with residual vestibular modulation during head-on-body motion led to better neuronal detection thresholds. Taken together, our results emphasize that increases in response variability to vestibular inputs ultimately constrain neural thresholds and provide evidence that sensory substitution with extravestibular (i.e. proprioceptive) inputs at the first central stage of vestibular processing is a neural substrate for improvements in self-motion perception following vestibular loss. Thus, our results provide a neural correlate for the patient benefits provided by rehabilitative strategies that take advantage of the convergence of these multisensory cues.

摘要

前庭系统负责处理自身运动,使正常受试者能够分辨出慢至 1-2 度/秒的旋转运动方向。单侧前庭损伤后,患者的方向辨别阈值恶化到约 20 度/秒,尽管有所改善,但补偿后阈值仍显著升高。然而,迄今为止,这种恢复的潜在神经机制尚未得到解决。在这里,我们记录了猕猴第一级中枢神经元的活动,这些神经元为大脑更高区域提供了自我运动感知的前庭信息。在单侧迷路切除术后,神经元检测阈值增加了两倍以上(从 14 度/秒增加到 30 度/秒)。尽管在第 3 周时阈值略有改善(25 度/秒),但它们从未恢复到对照值——这一趋势反映了患者感知阈值的时间过程。我们进一步发现,神经元反应变异性的变化与补偿期间前庭刺激敏感性的变化相平行,从而导致检测阈值随时间的推移保持升高。然而,我们发现,在一小部分神经元中,颈部本体感觉反应的出现与头对身体运动期间残留的前庭调制相结合,导致更好的神经元检测阈值。总之,我们的结果强调,前庭输入的反应变异性增加最终限制了神经阈值,并提供了证据表明,前庭处理的第一中央阶段的前庭输入与额外前庭(即本体感觉)输入的感觉替代是前庭丧失后自我运动感知改善的神经基础。因此,我们的结果为利用这些多感觉线索收敛的康复策略为患者提供益处提供了神经相关性。

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