视觉提示步态时后顶叶皮层活动:一项初步研究。

IF 1.6 4区 医学 Q4 NEUROSCIENCES
Paul McDonnell, Adam B Grimmitt, Jonaz Moreno Jaramillo, Wouter Hoogkamer, Douglas N Martini
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引用次数: 0

摘要

安全的步态需要视觉提示(VC)的步骤调整谈判目标和障碍。有效的步长调整依赖于良好的视觉空间处理。后顶叶皮层(PPC)与视觉空间处理有关,但经验证据有限的PPC在人类步态中的作用。增强的皮质步态控制与更高的步态变异性相关,这是老年人步态表现和跌倒风险的标志。然而,在视觉复杂的环境中,步态变异性的皮质基础尚未得到很好的确立。这项初步研究的主要目的是评估VC步态和VC步态伴摄动(VCP)时的PPC活动。第二个目的是确定在VC和VCP步态中PPC活动与步态变异性的关系。21名健康的年轻人以首选速度完成了三种跑步机步态条件:无提示(NC)步态,VC步态,其中步行目标以规则模式呈现,以及VCP步态,其中步行目标位置被伪随机移动。功能近红外光谱量化了PPC中脱氧和氧合血红蛋白(ΔHbO2)浓度的相对变化。惯性测量单元量化步态变异性。从NC到VC和VCP步态,观察到中度正向ΔHbO2效应,可能反映了视觉空间处理需求的增加。步幅时间变异性与VC步态中的PPC ΔHbO2呈正相关,提示PPC可能在调节VC步态的时间成分中发挥潜在作用。将这些发现扩展到老年人将有助于阐明PPC在步态适应性和随年龄增长的跌倒风险中的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Posterior parietal cortex activity during visually cued gait: a preliminary study.

Safe gait requires visually cued (VC) step adjustments for negotiating targets and obstacles. Effective step adjustments rely on good visuospatial processing. The posterior parietal cortex (PPC) is implicated in visuospatial processing, yet empirical evidence is limited for the PPC's role during gait in humans. Increased cortical control of gait is associated with higher gait variability, a marker of gait performance and fall risk among older adults. However, the cortical underpinnings of gait variability in visually complex environments are not well established. The primary aim of this preliminary study was to assess PPC activity during VC gait and VC gait with perturbations (VCP). A secondary aim was to determine how PPC activity relates to gait variability during VC and VCP gait. Twenty-one healthy young adults completed three treadmill gait conditions at preferred speed: non-cued (NC) gait, VC gait, where stepping targets were presented in a regular pattern, and VCP gait, where stepping target positions were pseudorandomly shifted. Functional near-infrared spectroscopy quantified relative changes in deoxygenated and oxygenated hemoglobin (ΔHbO2) concentrations in the PPC. Inertial measurement units quantified gait variability. Moderate effects were observed for more positive ΔHbO2 from NC to both VC and VCP gait, likely reflecting the increased visuospatial processing demands. Stride time variability was positively correlated with PPC ΔHbO2 during VC gait, suggesting a potential role for the PPC in modulating temporal components of VC gait. Extending these findings to older adults will help to elucidate the PPC's role in gait adaptability and fall risk with aging.

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来源期刊
CiteScore
3.60
自引率
5.00%
发文量
228
审稿时长
1 months
期刊介绍: Founded in 1966, Experimental Brain Research publishes original contributions on many aspects of experimental research of the central and peripheral nervous system. The focus is on molecular, physiology, behavior, neurochemistry, developmental, cellular and molecular neurobiology, and experimental pathology relevant to general problems of cerebral function. The journal publishes original papers, reviews, and mini-reviews.
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