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生长取向而非异质生长速率主导着斑马鱼幼体颌关节的形态发生。

Growth orientations, rather than heterogeneous growth rates, dominate jaw joint morphogenesis in the larval zebrafish.

作者信息

Godivier Josepha, Lawrence Elizabeth A, Wang Mengdi, Hammond Chrissy L, Nowlan Niamh C

机构信息

Imperial College London, London, United Kingdom.

University of Bristol, Bristol, UK.

出版信息

J Anat. 2022 Aug;241(2):358-371. doi: 10.1111/joa.13680. Epub 2022 May 5.

Abstract

In early limb embryogenesis, synovial joints acquire specific shapes which determine joint motion and function. The process by which the opposing cartilaginous joint surfaces are moulded into reciprocal and interlocking shapes, called joint morphogenesis, is one of the least understood aspects of joint formation and the cell-level dynamics underlying it are yet to be unravelled. In this research, we quantified key cellular dynamics involved in growth and morphogenesis of the zebrafish jaw joint and synthesised them in a predictive computational simulation of joint development. Cells in larval zebrafish jaw joints labelled with cartilage markers were tracked over a 48-h time window using confocal imaging. Changes in distance and angle between adjacent cell centroids resulting from cell rearrangement, volume expansion and extracellular matrix (ECM) deposition were measured and used to calculate the rate and direction of local tissue deformations. We observed spatially and temporally heterogeneous growth patterns with marked anisotropy over the developmental period assessed. There was notably elevated growth at the level of the retroarticular process of the Meckel's cartilage, a feature known to undergo pronounced shape changes during zebrafish development. Analysis of cell dynamics indicated a dominant role for cell volume expansion in growth, with minor influences from ECM volume increases and cell intercalation. Cell proliferation in the joint was minimal over the timeframe of interest. Synthesising the dynamic cell data into a finite element model of jaw joint development resulted in accurate shape predictions. Our biofidelic computational simulation demonstrated that zebrafish jaw joint growth can be reasonably approximated based on cell positional information over time, where cell positional information derives mainly from cell orientation and cell volume expansion. By modifying the input parameters of the simulation, we were able to assess the relative contributions of heterogeneous growth rates and of growth orientation. The use of uniform rather than heterogeneous growth rates only minorly impacted the shape predictions, whereas isotropic growth fields resulted in altered shape predictions. The simulation results suggest that growth anisotropy is the dominant influence on joint growth and morphogenesis. This study addresses the gap of the cellular processes underlying joint morphogenesis, with implications for understanding the aetiology of developmental joint disorders such as developmental dysplasia of the hip and arthrogryposis.

摘要

在肢体胚胎发育早期,滑膜关节获得特定形状,这些形状决定了关节的运动和功能。将相对的软骨关节表面塑造成相互匹配且相互嵌合形状的过程,即关节形态发生,是关节形成过程中最不为人所理解的方面之一,其潜在的细胞水平动力学仍有待揭示。在本研究中,我们对斑马鱼颌关节生长和形态发生过程中涉及的关键细胞动力学进行了量化,并将其整合到关节发育的预测性计算模拟中。使用共聚焦成像在48小时的时间窗口内追踪用软骨标记物标记的斑马鱼幼体颌关节中的细胞。测量由细胞重排、体积扩张和细胞外基质(ECM)沉积导致的相邻细胞质心之间距离和角度的变化,并用于计算局部组织变形的速率和方向。在评估的发育时期,我们观察到具有明显各向异性的时空异质生长模式。在梅克尔软骨的关节后突水平处生长显著升高,这一特征在斑马鱼发育过程中会发生明显的形状变化。细胞动力学分析表明,细胞体积扩张在生长中起主导作用,ECM体积增加和细胞插入的影响较小。在所关注的时间范围内,关节中的细胞增殖极少。将动态细胞数据整合到颌关节发育的有限元模型中可得到准确的形状预测。我们的生物逼真计算模拟表明,基于细胞随时间的位置信息可以合理地近似斑马鱼颌关节生长,其中细胞位置信息主要来自细胞取向和细胞体积扩张。通过修改模拟的输入参数,我们能够评估异质生长速率和生长取向的相对贡献。使用均匀而非异质生长速率对形状预测的影响较小,而各向同性生长场会导致形状预测改变。模拟结果表明生长各向异性是对关节生长和形态发生的主要影响因素。本研究填补了关节形态发生基础细胞过程方面研究的空白,对理解发育性关节疾病(如发育性髋关节发育不良和关节挛缩症)的病因具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b33c/9296026/c2ee1a6b29b2/JOA-241-358-g008.jpg

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