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骺板软骨细胞肥大促进了通过软骨细胞柱形成影响长骨发育的各向异性。

Chondrocyte hypertrophy in the growth plate promotes stress anisotropy affecting long bone development through chondrocyte column formation.

机构信息

Department of Micro Engineering, Graduate School of Engineering, Kyoto University, 53 Shogoin-Kawahara-cho, Sakyo-ku, Kyoto, 606-8507, Japan; Department of Biosystems Science, Institute for Life and Medical Sciences, Kyoto University, 53 Shogoin-Kawahara-cho, Sakyo-ku, Kyoto, 606-8507, Japan.

Department of Biosystems Science, Institute for Life and Medical Sciences, Kyoto University, 53 Shogoin-Kawahara-cho, Sakyo-ku, Kyoto, 606-8507, Japan; Department of Engineering Science and Mechanics, College of Engineering, Shibaura Institute of Technology, 3-7-5 Toyosu Koto-ku, Tokyo, 135-8548, Japan.

出版信息

Bone. 2024 May;182:117055. doi: 10.1016/j.bone.2024.117055. Epub 2024 Feb 25.

Abstract

The length of long bones is determined by column formation of proliferative chondrocytes and subsequent chondrocyte hypertrophy in the growth plate during bone development. Despite the importance of mechanical loading in long bone development, the mechanical conditions of the cells within the growth plate, such as the stress field, remain unclear owing to the difficulty in investigating spatiotemporal changes within dynamically growing tissues. In this study, the mechanisms of longitudinal bone growth were investigated from a mechanical perspective through column formation of proliferative chondrocytes within the growth plate before secondary ossification center formation using continuum-based particle models (CbPMs). A one-factor model, which simply describes essential aspects of a biological signaling cascade regulating cell activities within the growth plate, was developed and incorporated into CbPM. Subsequently, the developmental process and maintenance of the growth plate structure and resulting bone morphogenesis were simulated. Thus, stress anisotropy in the proliferative zone that affects bone elongation through chondrocyte column formation was identified and found to be promoted by chondrocyte hypertrophy. These results provide further insights into the mechanical regulation of multicellular dynamics during bone development.

摘要

长骨的长度取决于骨发育过程中生长板中增殖性软骨细胞的柱状形成以及随后的软骨细胞肥大。尽管机械加载对于长骨发育很重要,但由于难以研究动态生长组织中的时空变化,生长板内细胞的机械条件(如应力场)仍不清楚。在这项研究中,通过使用基于连续体的粒子模型(CbPM)在二次骨化中心形成之前在生长板内形成增殖性软骨细胞的柱状物,从机械角度研究了纵向骨生长的机制。开发了一个单因素模型,该模型简单描述了调节生长板内细胞活性的生物信号级联的基本方面,并将其纳入 CbPM。随后,模拟了生长板结构的发育过程和维持以及由此产生的骨形态发生。因此,鉴定了增殖区中的各向异性应力,该应力通过软骨细胞柱形成影响骨伸长,并发现其受到软骨细胞肥大的促进。这些结果为骨发育过程中多细胞动力学的机械调节提供了进一步的见解。

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