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Sound Stabilizes Locomotor-Respiratory Coupling and Reduces Energy Cost

机译:声音稳定自发呼吸耦合降低能源成本

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摘要

A natural synchronization between locomotor and respiratory systems is known to exist for various species and various forms of locomotion. This Locomotor-Respiratory Coupling (LRC) is fundamental for the energy transfer between the two subsystems during long duration exercise and originates from mechanical and neurological interactions. Different methodologies have been used to compute LRC, giving rise to various and often diverging results in terms of synchronization, (de-)stabilization via information, and associated energy cost. In this article, the theory of nonlinear-coupled oscillators was adopted to characterize LRC, through the model of the sine circle map, and tested it in the context of cycling. Our specific focus was the sound-induced stabilization of LRC and its associated change in energy consumption. In our experimental study, participants were instructed during a cycling exercise to synchronize either their respiration or their pedaling rate with an external auditory stimulus whose rhythm corresponded to their individual preferential breathing or cycling frequencies. Results showed a significant reduction in energy expenditure with auditory stimulation, accompanied by a stabilization of LRC. The sound-induced effect was asymmetrical, with a better stabilizing influence of the metronome on the locomotor system than on the respiratory system. A modification of the respiratory frequency was indeed observed when participants cycled in synchrony with the tone, leading to a transition toward more stable frequency ratios as predicted by the sine circle map. In addition to the classical mechanical and neurological origins of LRC, here we demonstrated using the sine circle map model that information plays an important modulatory role of the synchronization, and has global energetic consequences.
机译:已知对于各种物种和各种形式的运动,运动和呼吸系统之间存在自然的同步。运动呼吸耦合(LRC)是长时间运动过程中两个子系统之间能量转移的基础,它源于机械和神经系统的相互作用。已经使用了不同的方法来计算LRC,从而在同步,通过信息的(去)稳定和相关的能源成本等方面产生了各种不同的结果,并且常常会产生分歧。在本文中,采用非线性耦合振荡器理论通过正弦圆图模型对LRC进行了表征,并在循环环境下对其进行了测试。我们的重点是LRC的声音诱导稳定性及其相关的能耗变化。在我们的实验研究中,骑车运动中指示参与者将他们的呼吸或踩踏速率与外部听觉刺激同步,该外部听觉刺激的节奏对应于其个人偏好的呼吸或骑车频率。结果表明,在听觉刺激的同时,能量消耗显着降低,并伴有LRC的稳定。声音引起的影响是不对称的,节拍器对运动系统的稳定作用要比对呼吸系统的稳定作用好。当参与者与音调同步骑行时,确实观察到呼吸频率的改变,导致正弦圆图预测的向更稳定的频率比过渡。除了LRC的经典机械和神经学起源外,在这里我们还使用正弦圆图模型演示了信息在同步中起着重要的调制作用,并具有全局的能量后果。

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