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Tapping into rhythm generation circuitry in humans during simulated weightlessness conditions

机译:在模拟失重状态下进入人体的节奏产生电路

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摘要

An ability to produce rhythmic activity is ubiquitous for locomotor pattern generation and modulation. The role that the rhythmogenesis capacity of the spinal cord plays in injured populations has become an area of interest and systematic investigation among researchers in recent years, despite its importance being long recognized by neurophysiologists and clinicians. Given that each individual interneuron, as a rule, receives a broad convergence of various supraspinal and sensory inputs and may contribute to a vast repertoire of motor actions, the importance of assessing the functional state of the spinal locomotor circuits becomes increasingly evident. Air-stepping can be used as a unique and important model for investigating human rhythmogenesis since its manifestation is largely facilitated by a reduction of external resistance. This article aims to provide a review on current issues related to the “locomotor” state and interactions between spinal and supraspinal influences on the central pattern generator (CPG) circuitry in humans, which may be important for developing gait rehabilitation strategies in individuals with spinal cord and brain injuries.
机译:产生节奏活动的能力对于运动模式的产生和调节是普遍存在的。尽管神经生理学家和临床医生早已意识到其重要性,但脊髓的节律能力在受伤人群中所扮演的角色已成为研究人员关注和系统研究的领域。鉴于每个独立的神经元通常会接受各种脊柱上和感觉输入的广泛收敛,并可能有助于大量的运动动作,因此评估脊髓运动回路功能状态的重要性变得越来越明显。踩风可以用作研究人类节律的独特而重要的模型,因为其表现主要是通过减少外部阻力来促进的。本文旨在提供与“运动状态”以及脊柱和脊柱上层对人的中央模式发生器(CPG)电路的影响之间的相互作用相关的当前问题的综述,这可能对开发脊髓个体的步态康复策略很重要和脑损伤。

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