Curcio Evan J, Lubkin Sharon R
North Carolina State University, Raleigh, NC, USA.
North Carolina State University, Raleigh, NC, USA.
Cells Dev. 2023 Mar;173:203825. doi: 10.1016/j.cdev.2023.203825. Epub 2023 Jan 25.
The physical and geometric aspects of notochords are investigated using a model of finite-length notochords, with interior vacuolated cells arranged in two common packing configurations, and sheath modeled as homogeneous and thin. The key ratios governing packing patterns and eccentricity are number of cells per unit length λ and cell tension ratio Γ. By analyzing simulations that vary Γ and total number of cells N, we find that eccentricity, λ, and internal pressure approach consistent asymptotic values away from the tapering ends, as N increases. The length of the tapering ends is quantified as a function of Γ and pattern. Formulas are derived for geometric ratios, pressure, and energy as functions of Γ and pattern. These observations on the relationship between mechanics, geometry, and pattern provide a framework for further work which may provide insight into the roles of mechanosensing and pressure-volume regulation in the notochord.
使用有限长度脊索模型研究脊索的物理和几何方面,内部空泡化细胞以两种常见的堆积构型排列,鞘被建模为均匀且薄的。控制堆积模式和偏心率的关键比率是单位长度的细胞数λ和细胞张力比Γ。通过分析改变Γ和细胞总数N的模拟,我们发现随着N增加,远离逐渐变细的末端,偏心率、λ和内部压力趋近于一致的渐近值。逐渐变细末端的长度被量化为Γ和模式的函数。推导了作为Γ和模式函数的几何比率、压力和能量的公式。这些关于力学、几何和模式之间关系的观察为进一步的工作提供了一个框架,这可能有助于深入了解机械传感和压力-体积调节在脊索中的作用。