Integrating muscle energetics into biomechanical models to understand variance in the cost of movement.

IF 2.8 2区 生物学 Q2 BIOLOGY
Journal of Experimental Biology Pub Date : 2025-02-15 Epub Date: 2025-02-20 DOI:10.1242/jeb.248022
Glen A Lichtwark, Luke N Jessup, Ryan N Konno, Cristian D Riveros-Matthey, Taylor J M Dick
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Abstract

In this Review, we explore the state of the art of biomechanical models for estimating energy consumption during terrestrial locomotion. We consider different mechanical models that provide a solid framework to understand movement energetics from the perspective of force and work requirements. Whilst such models are highly informative, they lack specificity for predicting absolute metabolic rates across a range of species or variations in movement patterns. Muscles consume energy when they activate to generate tension, as well as when they shorten to generate positive work. Phenomenological muscle models incorporating steady-state parameters have been developed and are able to reproduce how muscle fibre energy consumption changes under different contractile conditions; however, such models are difficult to validate when scaled up to whole muscle. This is, in part, owing to limited availability of data that relate muscle dynamics to energetic rates during contraction of large mammalian muscles. Furthermore, factors including the compliance of tendinous tissue, dynamic shape changes and motor unit recruitment can alter the dynamics of muscle contractile tissue and potentially improve muscle efficiency under some locomotion conditions. Despite the many challenges, energetic cost estimates derived from musculoskeletal models that simulate muscle function required to generate movement have been shown to reasonably predict changes in human metabolic rates under different movement conditions. However, accurate predictions of absolute metabolic rate are still elusive. We suggest that conceptual models may be adapted based on our understanding of muscle energetics to better predict the variance in movement energetics both within and between terrestrial species.

将肌肉能量学整合到生物力学模型中,以了解运动成本的变化。
在这篇综述中,我们探讨了用于估计陆地运动过程中能量消耗的生物力学模型的最新进展。我们考虑了不同的力学模型,提供了一个坚实的框架,从力和功要求的角度来理解运动能量学。虽然这些模型信息量很大,但它们在预测各种物种的绝对代谢率或运动模式的变化方面缺乏特异性。当肌肉被激活以产生张力时,以及当肌肉收缩以产生正功时,都会消耗能量。包含稳态参数的现象学肌肉模型已经开发出来,能够再现在不同收缩条件下肌纤维能量消耗的变化;然而,这种模型很难在整个肌肉中进行验证。这部分是由于在大型哺乳动物肌肉收缩过程中肌肉动力学与能量率相关的数据有限。此外,包括肌腱组织的顺应性、动态形状变化和运动单元招募在内的因素可以改变肌肉收缩组织的动力学,并可能在某些运动条件下提高肌肉效率。尽管存在许多挑战,但从模拟产生运动所需肌肉功能的肌肉骨骼模型中得出的能量成本估算已被证明可以合理地预测不同运动条件下人体代谢率的变化。然而,绝对代谢率的准确预测仍然是难以捉摸的。我们认为,概念模型可以根据我们对肌肉能量学的理解进行调整,以更好地预测陆地物种内部和之间运动能量学的差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.50
自引率
10.70%
发文量
494
审稿时长
1 months
期刊介绍: Journal of Experimental Biology is the leading primary research journal in comparative physiology and publishes papers on the form and function of living organisms at all levels of biological organisation, from the molecular and subcellular to the integrated whole animal.
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