Department of Mechanical Engineering, Universitat Politècnica de Catalunya, 08019 Barcelona, Spain.
Department of Brain and Behavioral Sciences, Università degli Studi di Pavia, 27100 Pavia, Italy.
Int J Mol Sci. 2021 Feb 18;22(4):2018. doi: 10.3390/ijms22042018.
Recent work has demonstrated how the size of an animal can affect neural control strategies, showing that passive viscoelastic limb properties have a significant role in determining limb movements in small animals but are less important in large animals. We extend that work to consider effects of mechanical scaling on the maintenance of joint integrity; i.e., the prevention of aberrant contact forces within joints that might lead to joint dislocation or cartilage degradation. We first performed a literature review to evaluate how properties of ligaments responsible for joint integrity scale with animal size. Although we found that the cross-sectional area of the anterior cruciate ligament generally scaled with animal size, as expected, the effects of scale on the ligament's mechanical properties were less clear, suggesting potential adaptations in passive contributions to the maintenance of joint integrity across species. We then analyzed how the neural control of joint stability is altered by body scale. We show how neural control strategies change across mechanical scales, how this scaling is affected by passive muscle properties and the cost function used to specify muscle activations, and the consequences of scaling on internal joint contact forces. This work provides insights into how scale affects the regulation of joint integrity by both passive and active processes and provides directions for studies examining how this regulation might be accomplished by neural systems.
最近的研究表明,动物的体型如何影响神经控制策略,表明在小动物中,被动粘弹性肢体特性在决定肢体运动方面起着重要作用,但在大型动物中则不那么重要。我们将这项工作扩展到考虑机械比例效应对维持关节完整性的影响;即防止关节内异常的接触力导致关节脱位或软骨退化。我们首先进行了文献回顾,以评估负责关节完整性的韧带的特性如何随动物体型的变化而变化。尽管我们发现前交叉韧带的横截面积通常与动物体型成比例,这是预期的,但韧带机械特性的比例效应不太明确,这表明在不同物种中,被动对维持关节完整性的贡献可能存在潜在的适应。然后,我们分析了身体比例如何改变关节稳定性的神经控制。我们展示了神经控制策略如何随机械比例变化,这种比例如何受到被动肌肉特性和用于指定肌肉激活的成本函数的影响,以及比例对内部关节接触力的影响。这项工作深入了解了比例如何通过被动和主动过程影响关节完整性的调节,并为研究神经系统如何完成这种调节提供了方向。