The role of primary cilia in mechanical transmission of osteocyte based on a 3D finite element model

Q3 Medicine
Zhuang Han , Dong Ding , Yu-bo Fan , Xin-tong Wu , Xiao Yang , Lian-wen Sun
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Abstract

The primary cilium, as a mechanical receptor of osteocytes, participates in the regulation of osteocyte mechanosensitivity. However, how the length of osteocyte primary cilia changes with fluid shear stress (FSS) are unclear, and how the mechanical transmission within osteocytes altered by primary cilia is not well understood yet. Therefore, the ciliary length changes of osteocyte under 15 ​dyn/cm2 of FSS were experimentally detected, and then 3D finite element models of osteocyte primary cilia containing the basal body and axoneme were built. The results showed that (1) The ciliary length of the CON group, FSS 1h, and FSS 6h were 3.71 ​± ​1.34 ​μm, 3.79 ​± ​1.04 ​μm, and 1.24 ​± ​0.73 ​μm respectively, indicating the different durations of FSS might lead to the adaptive changes of cilium length. The calculations showed (2) when the ciliary length became shorter with the ciliary angle stayed the same, the deformation and stress of the cell membrane and membrane skeleton was increased. However, the deformation and stress of the cilia membrane, basal body, the rotation angles of basal body were decreased, and those of cytoplasm, cytoskeleton, actin cortex and nucleus were also decreased; (3) With the decrease of the ciliary angle, the deformation and stress of the cilia membrane, basal body, as well as the rotation angles of basal body were increased. Those of the cytoplasm, cytoskeleton, actin cortex, and nucleus were also increased except the cell membrane and membrane skeleton. The calculation results suggested the length and angle of the primary cilia, the deformation and stress of intracellular structures in osteocyte were altered with ciliary basal body, indicated the connection between the basal body and cytoskeleton may be a key factor that affected the mechanical transport in osteocytes across the cell membrane. This finally promoted the adaptive change of ciliary length under FSS.

基于三维有限元模型的初级纤毛在骨细胞机械传输中的作用
初级纤毛作为骨细胞的机械受体,参与骨细胞机械敏感性的调节。然而,骨细胞初级纤毛的长度如何随流体剪切应力(FSS)而变化尚不清楚,以及初级纤毛如何改变骨细胞内的机械传递尚不清楚。因此,我们实验检测了FSS在15 dyn/cm2作用下骨细胞纤毛长度的变化,并建立了包含基底体和轴突的骨细胞原代纤毛的三维有限元模型。结果表明:(1)CON组、FSS 1h和FSS 6h的纤毛长度分别为3.71±1.34 μm、3.79±1.04 μm和1.24±0.73 μm,说明不同的FSS时间可能导致纤毛长度的适应性变化。计算表明(2)当纤毛长度变短,纤毛角度不变时,细胞膜和膜骨架的变形和应力增大。但纤毛膜、基体、基体的变形和应力减小,细胞质、细胞骨架、肌动蛋白皮质和细胞核的变形和应力减小;(3)随着纤毛角的减小,纤毛膜、基体的变形和应力以及基体的旋转角度均增大。除细胞膜和膜骨架外,细胞质、细胞骨架、肌动蛋白皮层和细胞核的细胞骨架均增加。计算结果表明,原纤毛的长度和角度、骨细胞胞内结构的变形和应力随纤毛基底体发生改变,表明基底体与细胞骨架的连接可能是影响骨细胞跨细胞膜机械运输的关键因素。这最终促进了纤毛长度在FSS下的适应性变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Medicine in Novel Technology and Devices
Medicine in Novel Technology and Devices Medicine-Medicine (miscellaneous)
CiteScore
3.00
自引率
0.00%
发文量
74
审稿时长
64 days
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