受压模型脊索在规则包装模式下的抗弯刚度。

IF 3.9 4区 生物学 Q4 Biochemistry, Genetics and Molecular Biology Cells and Development Pub Date : 2023-11-30 DOI:10.1016/j.cdev.2023.203895
Evan J. Curcio, Sharon R. Lubkin
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引用次数: 0

摘要

采用弹性膜模型研究胚胎脊索的生物力学。一项初步研究表明,内部压力和刚度比的变化决定了张力和几何比作为内部压力、膜刚度比和细胞填充模式的函数。随后的三点弯曲研究确定了弯曲刚度作为内部压力、结构和方向的函数。发现抗弯刚度与膜刚度比无关。控制细胞的数量和体积及其内部压力,细胞排列的偏心阶梯模式的弯曲刚度是径向对称竹模式的两倍以上。此外,发现偏心楼梯模式在侧向弯曲时比背腹弯曲时僵硬两倍以上。这表明胚胎脊索的偏心WT阶梯型比圆形截面型具有机械优势。
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Flexural rigidity of pressurized model notochords in regular packing patterns

The biomechanics of embryonic notochords are studied using an elastic membrane model. An initial study varying internal pressure and stiffness ratio determines tension and geometric ratios as a function of internal pressure, membrane stiffness ratio, and cell packing pattern. A subsequent three-point bending study determines flexural rigidity as a function of internal pressure, configuration, and orientation. Flexural rigidity is found to be independent of membrane stiffness ratio. Controlling for number and volume of cells and their internal pressure, the eccentric staircase pattern of cell packing has more than double the flexural rigidity of the radially symmetric bamboo pattern. Moreover, the eccentric staircase pattern is found to be more than twice as stiff in lateral bending than in dorsoventral bending. This suggests a mechanical advantage to the eccentric WT staircase pattern of the embryonic notochord, over patterns with round cross-section.

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来源期刊
Cells and Development
Cells and Development Biochemistry, Genetics and Molecular Biology-Developmental Biology
CiteScore
2.90
自引率
0.00%
发文量
33
审稿时长
41 days
期刊最新文献
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