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人半规管壶腹的机械特性和运动。

Mechanical properties and motion of the cupula of the human semicircular canal.

机构信息

Massachusetts Institute of Technology, USA.

出版信息

J Vestib Res. 2009;19(3-4):95-110. doi: 10.3233/VES-2009-0359.

Abstract

The mathematical model for the dynamics of the cupula-endolymph system of the inner ear semicircular canal, as elaborated by numerous investigators, remains a foundational tool in all of vestibular physiology. Most models represent the cupula as a linear spring-like element of stiffness K=DeltaP/DeltaV, where DeltaV is the volume displaced upon application of a pressure difference DeltaP. The parameter K directly influences the long time constant of the cupula-endolymph system. Given estimates of K based on experiments, we use thick and thin bending membrane theory, and also finite-element simulations based on more realistic cupula morphologies, to estimate the human cupula's Young's modulus E approximately 5.4 Pa. We show that for a model morphology, thick bending membrane theory and finite-element predictions are in good agreement, and conclude that the morphology of the attachment of the cupula to the slope of the crista should not greatly influence the volume displacement. We note, however, that other biological materials with very low E are hydrogels that have significant viscoelastic properties. Experiments to directly measure E and investigate potential viscoelastic behavior ultimately may be needed. In addition, based on experimental images we study two other different shapes for the cupula and quantify their impact on the deflection of the cupula. We also use a three-dimensional finite-element model to analyze both the shear strain distribution and its time evolution near the sensory epithelium. We conclude that stimulation of sensory hair cells probably begins at the centre of the crista and spreads toward the periphery of the cupula and down the sides of the crista. Thus, spatio-temporal variations in the shearing stimulus are predicted to impact subsequent transduction and encoding. Finally, modeling the fluid-filled vertical channels believed to lie within the cupula, we investigate the impact of different tube diameters on the transverse displacement field. We show that, for the assumed diameters and grid spacing, cupula displacements should be highly sensitive to the diameter of the tubes. Experiments to verify the existence of cupular channels and accurately measure their diameter and spacing are needed.

摘要

内耳半规管壶腹-内淋巴系统动力学的数学模型,经过众多研究人员的精心研究,仍然是所有前庭生理学的基础工具。大多数模型将壶腹表示为刚度为 K=ΔP/ΔV 的线性弹簧样元件,其中 ΔV 是施加压力差 ΔP 时的位移体积。参数 K 直接影响壶腹-内淋巴系统的长时间常数。基于实验给出的 K 估计值,我们使用厚和薄弯曲膜理论,以及基于更真实壶腹形态的有限元模拟,来估计人类壶腹的杨氏模量 E 约为 5.4 Pa。我们表明,对于模型形态,厚弯曲膜理论和有限元预测是吻合的,并得出结论,壶腹与嵴坡的附着形态不应大大影响体积位移。然而,我们注意到,具有非常低 E 的其他生物材料是具有显著粘弹性的水凝胶。最终可能需要进行直接测量 E 并研究潜在粘弹性行为的实验。此外,基于实验图像,我们研究了壶腹的另外两种不同形状,并量化了它们对壶腹挠度的影响。我们还使用三维有限元模型来分析靠近感觉上皮的剪切应变分布及其时间演化。我们得出的结论是,感觉毛细胞的刺激可能始于嵴的中心,并向壶腹的外围和嵴的侧面传播。因此,预测剪切刺激的时空变化会影响后续的转导和编码。最后,对被认为位于壶腹内的充满液体的垂直通道进行建模,我们研究了不同管直径对横向位移场的影响。我们表明,对于假设的直径和网格间距,壶腹位移应该对管的直径高度敏感。需要进行实验来验证壶腹通道的存在,并准确测量其直径和间距。

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