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将机械变形和平面细胞极性耦合起来,在斑马鱼视网膜中形成规则的图案。

Coupling mechanical deformations and planar cell polarity to create regular patterns in the zebrafish retina.

机构信息

Department of Physics, University of Michigan, Ann Arbor, Michigan, United States of America.

出版信息

PLoS Comput Biol. 2012;8(8):e1002618. doi: 10.1371/journal.pcbi.1002618. Epub 2012 Aug 23.

Abstract

The orderly packing and precise arrangement of epithelial cells is essential to the functioning of many tissues, and refinement of this packing during development is a central theme in animal morphogenesis. The mechanisms that determine epithelial cell shape and position, however, remain incompletely understood. Here, we investigate these mechanisms in a striking example of planar order in a vertebrate epithelium: The periodic, almost crystalline distribution of cone photoreceptors in the adult teleost fish retina. Based on observations of the emergence of photoreceptor packing near the retinal margin, we propose a mathematical model in which ordered columns of cells form as a result of coupling between planar cell polarity (PCP) and anisotropic tissue-scale mechanical stresses. This model recapitulates many observed features of cone photoreceptor organization during retinal growth and regeneration. Consistent with the model's predictions, we report a planar-polarized distribution of Crumbs2a protein in cone photoreceptors in both unperturbed and regenerated tissue. We further show that the pattern perturbations predicted by the model to occur if the imposed stresses become isotropic closely resemble defects in the cone pattern in zebrafish lrp2 mutants, in which intraocular pressure is increased, resulting in altered mechanical stress and ocular enlargement. Evidence of interactions linking PCP, cell shape, and mechanical stresses has recently emerged in a number of systems, several of which show signs of columnar cell packing akin to that described here. Our results may hence have broader relevance for the organization of cells in epithelia. Whereas earlier models have allowed only for unidirectional influences between PCP and cell mechanics, the simple, phenomenological framework that we introduce here can encompass a broad range of bidirectional feedback interactions among planar polarity, shape, and stresses; our model thus represents a conceptual framework that can address many questions of importance to morphogenesis.

摘要

上皮细胞的有序包装和精确排列对于许多组织的功能至关重要,而在发育过程中对这种包装的细化是动物形态发生的一个核心主题。然而,决定上皮细胞形状和位置的机制仍不完全清楚。在这里,我们研究了一个惊人的脊椎动物上皮细胞平面有序的例子:成年硬骨鱼视网膜中锥体感光器的周期性、几乎结晶状分布。基于对感光器包装在视网膜边缘附近出现的观察,我们提出了一个数学模型,其中细胞的有序列是由于平面细胞极性(PCP)和各向异性组织尺度机械应力之间的耦合而形成的。该模型再现了在视网膜生长和再生过程中观察到的许多锥体感光器组织的特征。与模型的预测一致,我们报告了在未受干扰和再生组织中的锥体感光器中 Crumb2a 蛋白的平面极化分布。我们进一步表明,如果施加的应力变得各向同性,模型预测会发生的平面偏振分布与 zebrafish lrp2 突变体中锥体模式的缺陷非常相似,在这种突变体中,眼内压增加,导致机械应力和眼球增大改变。在许多系统中,最近出现了将 PCP、细胞形状和机械应力联系起来的相互作用的证据,其中一些系统显示出类似于本文所描述的柱状细胞包装的迹象。因此,我们的结果可能与上皮细胞中细胞的组织更广泛相关。虽然早期的模型只允许 PCP 和细胞力学之间的单向影响,但我们在这里引入的简单、现象学框架可以包含平面极性、形状和应力之间的广泛的双向反馈相互作用;因此,我们的模型代表了一个概念框架,可以解决形态发生的许多重要问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/64f7/3426565/37ad363b0f74/pcbi.1002618.g001.jpg

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