首页|考虑压电骨基质的骨细胞模型生物力学分析

考虑压电骨基质的骨细胞模型生物力学分析

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骨细胞是骨骼中的初级细胞,在感知外部载荷和调节其他骨骼细胞方面发挥着至关重要的作用。由于构成骨骼的矿化基质和胶原蛋白具有压电效应,会将受到的力学刺激转化为电刺激,从而影响骨重建等过程。尽管骨细胞非常重要,但是许多研究都集中在其机械载荷和流体流动方面,在微观尺度上关于力学传感器的压电效应研究仍是空白。本研究中我们建立了一个包含压电骨基质的骨细胞有限元模型。该模型主要由骨陷窝包围的骨细胞胞体、骨小管包围的骨细胞突触以及中间流过的带电离子液体组成,此外,还建立了胶原小丘和初级纤毛等力学传感器。我们对骨基质施加了三向位移载荷,评估了不同力学传感器的信号变化。不同力学传感器感受到的差异主要是由于极化方向上的流体速度变化大于其他方向的变化,其中胶原小丘对压电信号的变化不敏感,主要通过与突触接触进行力学信号传递。与此相反,突触和初级纤毛对压电信号的变化非常敏感。与其他方向的突触相比,极化方向上的突触对压电信号的变化感知明显。初级纤毛对流体流动压力的变化尤其敏感,这种变化同时受到加载速率和外部压电效应的影响。总之,我们的发现揭示了压电环境下骨细胞内机械感知的复杂性,这为我们的理解增添了新的维度,并为未来的骨重建和细胞机械行为研究提供了途径。
Biomechanical analysis of an osteocyte model by considering bone matrix's piezoelectricity
Osteocytes,the primary cells in bone,play a crucial role in sensing extemal load environments and regulating other bone cells.Due to the piezoelectric effect of the mineralized matrix and collagen that make up bone,the mechanical stimulus received is converted into an electrical stimulus to affect the reconstruction of bone.Despite the importance of osteocyte,many studies have focused on the mechanical loading and fluid flow of it,there is still a gap in the study of the piezoelectric effects of various mechanosensors on the microscale.In this paper,we developed a finite element model of osteocytes that incorporates the piezoelectric bone matrix.This model is comprehensive,comprising the osteocyte cell body enclosed by lacuna,osteocyte processes enclosed by canaliculi,and the interposed charged ionic fluid.Additionally,it features mechanosensors such as collagen hillocks and primary cilia.In our study,we subjected the piezoelectric bone matrix model to triaxial displacement,subsequently assessing the electrical signal variations across different mechanosensors within the osteocyte.The observed disparities in mechanical perception by various mechanosensors were primarily attributable to greater liquid velocity changes in the polarization direction as opposed to other directions.Collagen hillocks showed insensitivity to piezoelectric signals,serving predominantly to mechanically transmit signals through solid-to-solid contact.In contrast,processes and primary cilia were highly responsive to piezoelectric signals.Interestingly,the processes oriented in the direction of the electric field demonstrated a differential piezoelectric signal perception compared to those in other directions.Primary cilia were especially sensitive to fluid flow pressure changes,which were influenced both by loading rates and external piezoelectric effects.Overall,our findings illuminate the complexity of mechanical perception within osteocytes in a piezoelectric environment.This adds a new dimension to our understanding and suggests avenues for future research in bone reconstruction and cellular mechanical behavioral transmission.

OsteocytePrimary ciliaCell processCollagen hillockPiezoelectric effect

王熹宇、杨政彪、薛艳茹、钦逸仙、张萌、陈静、李鹏翠、卫小春、冯皓宇、何李明、王艳芹、武晓刚、陈维毅

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College of Biomedical Engineering,Taiyuan University of Technology,Taiyuan 030024,China

Shanxi Provincial Key Laboratory for Repair of Bone and Soft Tissue Injury Taiyuan 030001,China

Shanxi Bethune Hospital,Shanxi Academy of Medical Sciences,Tongji Shanxi Hospital,Third Hospital of Shanxi Medical University,Taiyuan 030032,China

Osteocyte Primary cilia Cell process Collagen hillock Piezoelectric effect

2024

力学学报(英文版)

力学学报(英文版)

CSTPCD
影响因子:0.363
ISSN:0567-7718
年,卷(期):2024.40(9)