Department of Mechanical Engineering, Department of Biomedical Engineering, University of Rochester , Rochester, New York.
Department of Biomedical Engineering and Mechanics, Virginia Tech, Blacksburg, Virginia.
J Neurophysiol. 2019 Jul 1;122(1):132-150. doi: 10.1152/jn.00068.2019. Epub 2019 Apr 17.
We review recent progress in using numerical models to relate utricular hair bundle and otoconial membrane (OM) structure to the functional requirements imposed by natural behavior in turtles. The head movements section reviews the evolution of experimental attempts to understand vestibular system function with emphasis on turtles, including data showing that accelerations occurring during natural head movements achieve higher magnitudes and frequencies than previously assumed. The structure section reviews quantitative anatomical data documenting topographical variation in the structures underlying macromechanical and micromechanical responses of the turtle utricle to head movement: hair bundles, OM, and bundle-OM coupling. The macromechanics section reviews macromechanical models that incorporate realistic anatomical and mechanical parameters and reveal that the system is significantly underdamped, contrary to previous assumptions. The micromechanics: hair bundle motion and met currents section reviews work based on micromechanical models, which demonstrates that topographical variation in the structure of hair bundles and OM, and their mode of coupling, result in regional specializations for signaling of low frequency (or static) head position and high frequency head accelerations. We conclude that computational models based on empirical data are especially promising for investigating mechanotransduction in this challenging sensorimotor system.
我们回顾了使用数值模型将耳石斑毛束和耳石膜(OM)结构与海龟自然行为所施加的功能要求联系起来的最新进展。头部运动部分回顾了实验尝试理解前庭系统功能的演变,重点是海龟,包括数据表明,在自然头部运动过程中发生的加速度比以前假设的要高得多和频率更高。结构部分回顾了定量解剖学数据,记录了海龟耳石对头部运动的宏观机械和微观机械响应的基础结构的地形变化:毛束、OM 和束-OM 耦合。宏观力学部分回顾了包含现实解剖学和力学参数的宏观力学模型,并揭示系统明显欠阻尼,与以前的假设相反。微观力学:毛束运动和电流测量部分回顾了基于微观力学模型的工作,该模型表明,毛束和 OM 结构的地形变化及其耦合方式导致了用于低频(或静态)头部位置和高频头部加速度信号的区域专业化。我们得出结论,基于经验数据的计算模型特别有希望用于研究这个具有挑战性的感觉运动系统中的机械转导。