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A bidirectional interface growth model for cranial interosseous suture morphogenesis

机译:颅骨间缝线形态发生的双向界面生长模型

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摘要

Interosseous sutures exhibit highly variable patterns of interdigitation and corrugation. Recent research has identified fundamental molecular mechanisms of suture formation, and computer models have been used to simulate suture morphogenesis. However, the role of bone strain in the development of complex sutures is largely unknown, and measuring suture morphologies beyond the evaluation of fractal dimensions remains a challenge. Here we propose a morphogenetic model of suture formation, which is based on the paradigm of Laplacian interface growth. Computer simulations of suture morphogenesis under various boundary conditions generate a wide variety of synthetic sutural forms. Their morphologies are quantified with a combination of Fourier analysis and principal components analysis, and compared with natural morphological variation in an ontogenetic sample of human interparietal suture lines. Morphometric analyses indicate that natural sutural shapes exhibit a complex distribution in morphospace. The distribution of synthetic sutures closely matches the natural distribution. In both natural and synthetic systems, sutural complexity increases during morphogenesis. Exploration of the parameter space of the simulation system indicates that variation in strain and/or morphogen sensitivity and viscosity of sutural tissue may be key factors in generating the large variability of natural suture complexity.
机译:骨间缝合线表现出高度可变的叉指和波纹模式。最近的研究已经确定了缝合线形成的基本分子机制,并且计算机模型已被用来模拟缝合线的形态发生。然而,骨应变在复杂缝合线发展中的作用尚不清楚,因此,除了评估分形维数外,测量缝合线形态仍然是一个挑战。在这里,我们提出了一种缝线形成的形态发生模型,该模型基于拉普拉斯界面增长的范式。在各种边界条件下的缝线形态发生的计算机模拟生成了各种各样的合成缝合形式。通过傅里叶分析和主成分分析相结合的方式对它们的形态进行了定量,并与人顶壁缝合线的个体发育样品中的自然形态变化进行了比较。形态分析表明,自然缝合形状在形态空间中表现出复杂的分布。合成缝合线的分布与自然分布非常匹配。在天然和合成系统中,缝合复杂性在形态发生过程中都会增加。对模拟系统的参数空间的探索表明,缝合组织的应变和/或形态发生敏感性和黏度的变化可能是导致自然缝合线复杂性变化较大的关键因素。

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