College of Osteopathic Medicine, New York Institute of Technology, Old Westbury, New York, 11568, USA.
Department of Anatomy, Center for Biomedical Innovation, College of Osteopathic Medicine, New York Institute of Technology, Old Westbury, New York, 11568, USA.
Evolution. 2022 Sep;76(9):2181-2190. doi: 10.1111/evo.14569. Epub 2022 Aug 12.
Evolutionary analyses of joint kinematics and muscle mechanics suggest that, during cyclic behaviors, tetrapod feeding systems are optimized for precise application of forces over small displacements during chewing, whereas locomotor systems are more optimized for large and rapid joint excursions during walking and running. If this hypothesis is correct, then it stands to reason that other biomechanical variables in the feeding and locomotor systems should also reflect these divergent functions. We compared rhythmicity of cyclic jaw and limb movements in feeding and locomotor systems in 261 tetrapod species in a phylogenetic context. Accounting for potential confounding variables, our analyses reveal higher rhythmicity of cyclic movements of the limbs than of the jaw. Higher rhythmicity in the locomotor system corroborates a hypothesis of stronger optimization for energetic efficiency: deviation from the limbs' natural frequency results in greater variability of center of mass movements and limb inertial changes, and therefore more work by limb muscles. Relatively lower rhythmicity in the feeding system may be a consequence of the necessity to prevent tooth breakage and wear, the greater complexity of coordination with tongue movements, and/or a greater emphasis on energy storage in elastic elements rather than the kinetics of limb movement.
对关节运动学和肌肉力学的进化分析表明,在周期性行为中,四足动物的进食系统在咀嚼过程中针对小位移精确施力进行了优化,而运动系统则在行走和奔跑时针对大而快速的关节运动进行了更优化。如果这个假设是正确的,那么在进食和运动系统中的其他生物力学变量也应该反映出这些不同的功能。我们在系统发育背景下比较了 261 种四足动物进食和运动系统中周期性颌和肢体运动的节奏性。考虑到潜在的混杂变量,我们的分析显示,肢体的周期性运动比颌部的周期性运动具有更高的节奏性。运动系统的更高节奏性证实了一个假设,即对能量效率的优化更强:偏离肢体的自然频率会导致质心运动和肢体惯性变化的更大可变性,从而使肢体肌肉做功更多。在进食系统中相对较低的节奏性可能是由于防止牙齿断裂和磨损的必要性、与舌部运动协调的更大复杂性,以及/或者更注重弹性元件中的能量存储而不是肢体运动的动力学。