不弯曲的屈曲:形态发生的新范例

IF 0.2 0 ARCHAEOLOGY
Yorkshire Archaeological Journal Pub Date : 2018-10-01 Epub Date: 2018-12-21 DOI:10.1103/PhysRevX.8.041053
T A Engstrom, Teng Zhang, A K Lawton, A L Joyner, J M Schwarz
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引用次数: 0

摘要

器官和类器官形态发生的一个奇怪特征是,在某些情况下,生长 "薄膜 "厚度的空间振荡与生长较慢的 "基质 "的变形不同步,而在另一些情况下,振荡是同步的。前者无法用弹性双分子层的不稳定性来解释,与大脑、肠道、牙齿和其他器官表面产生皱纹和褶皱的普遍机理相矛盾。受胚胎小脑微观结构的启发,我们建立了一个全新的二维形态发生模型,在这个模型中,横跨整个系统的弹性纤维赋予器官一个优先半径,而一个独立的纤维网存在于器官外缘的流体状薄膜中,并抵制其厚度梯度。薄膜均匀变厚或变薄的趋势通过 "生长势 "来描述。我们的简单分析模型很容易解释小脑、+blebbistatin 有机体和视网膜眼窝形态发生的几个特征,包括失相行为和与半径振幅相当的薄膜厚度振幅。我们还研究了该模型的非线性变体,提出了进一步的生物和生物启发应用,并探讨了我们的模型在发育中神经系统中的独特性和非独特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Buckling without Bending: A New Paradigm in Morphogenesis.

Buckling without Bending: A New Paradigm in Morphogenesis.

Buckling without Bending: A New Paradigm in Morphogenesis.

Buckling without Bending: A New Paradigm in Morphogenesis.

A curious feature of organ and organoid morphogenesis is that in certain cases, spatial oscillations in the thickness of the growing "film" are out of phase with the deformation of the slower-growing "substrate," while in other cases, the oscillations are in phase. The former cannot be explained by elastic bilayer instability, and contradict the notion that there is a universal mechanism by which brains, intestines, teeth, and other organs develop surface wrinkles and folds. Inspired by the microstructure of the embryonic cerebellum, we develop a new model of 2D morphogenesis in which system-spanning elastic fibers endow the organ with a preferred radius, while a separate fiber network resides in the otherwise fluidlike film at the outer edge of the organ and resists thickness gradients thereof. The tendency of the film to uniformly thicken or thin is described via a "growth potential." Several features of cerebellum, +blebbistatin organoid, and retinal fovea morphogenesis, including out-of-phase behavior and a film thickness amplitude that is comparable to the radius amplitude, are readily explained by our simple analytical model, as may be an observed scale invariance in the number of folds in the cerebellum. We also study a nonlinear variant of the model, propose further biological and bioinspired applications, and address how our model is and is not unique to the developing nervous system.

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CiteScore
0.10
自引率
50.00%
发文量
15
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