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胚胎早期细胞外基质网络纹理的空间各向异性和时间波动。

Spatial anisotropies and temporal fluctuations in extracellular matrix network texture during early embryogenesis.

机构信息

Department of Anatomy and Cell Biology, University of Kansas Medical Center, Kansas City, Kansas, United States of America.

出版信息

PLoS One. 2012;7(5):e38266. doi: 10.1371/journal.pone.0038266. Epub 2012 May 31.

Abstract

Early stages of vertebrate embryogenesis are characterized by a remarkable series of shape changes. The resulting morphological complexity is driven by molecular, cellular, and tissue-scale biophysical alterations. Operating at the cellular level, extracellular matrix (ECM) networks facilitate cell motility. At the tissue level, ECM networks provide material properties required to accommodate the large-scale deformations and forces that shape amniote embryos. In other words, the primordial biomaterial from which reptilian, avian, and mammalian embryos are molded is a dynamic composite comprised of cells and ECM. Despite its central importance during early morphogenesis we know little about the intrinsic micrometer-scale surface properties of primordial ECM networks. Here we computed, using avian embryos, five textural properties of fluorescently tagged ECM networks--(a) inertia, (b) correlation, (c) uniformity, (d) homogeneity, and (e) entropy. We analyzed fibronectin and fibrillin-2 as examples of fibrous ECM constituents. Our quantitative data demonstrated differences in the surface texture between the fibronectin and fibrillin-2 network in Day 1 (gastrulating) embryos, with the fibronectin network being relatively coarse compared to the fibrillin-2 network. Stage-specific regional anisotropy in fibronectin texture was also discovered. Relatively smooth fibronectin texture was exhibited in medial regions adjoining the primitive streak (PS) compared with the fibronectin network investing the lateral plate mesoderm (LPM), at embryonic stage 5. However, the texture differences had changed by embryonic stage 6, with the LPM fibronectin network exhibiting a relatively smooth texture compared with the medial PS-oriented network. Our data identify, and partially characterize, stage-specific regional anisotropy of fibronectin texture within tissues of a warm-blooded embryo. The data suggest that changes in ECM textural properties reflect orderly time-dependent rearrangements of a primordial biomaterial. We conclude that the ECM microenvironment changes markedly in time and space during the most important period of amniote morphogenesis--as determined by fluctuating textural properties.

摘要

脊椎动物胚胎发生的早期阶段以一系列显著的形态变化为特征。由此产生的形态复杂性是由分子、细胞和组织尺度生物物理变化驱动的。在细胞水平上,细胞外基质 (ECM) 网络促进细胞运动。在组织水平上,ECM 网络提供了适应塑造羊膜胚胎的大规模变形和力所需的材料特性。换句话说,从原始生物材料中塑造出爬行动物、鸟类和哺乳动物胚胎,该原始生物材料是由细胞和 ECM 组成的动态复合材料。尽管它在早期形态发生中具有核心重要性,但我们对原始 ECM 网络的固有微观表面特性知之甚少。在这里,我们使用禽胚计算了荧光标记的 ECM 网络的五个纹理特性——(a)惯性、(b)相关性、(c)均匀性、(d)均质性和(e)熵。我们以纤连蛋白和纤维连接蛋白-2 为例分析了纤维 ECM 成分。我们的定量数据表明,在第 1 天(原肠胚形成)胚胎中,纤连蛋白和纤维连接蛋白-2 网络之间的表面纹理存在差异,与纤维连接蛋白-2 网络相比,纤连蛋白网络相对粗糙。还发现了纤连蛋白纹理的阶段特异性区域各向异性。与外侧盘状中胚层 (LPM) 中的纤连蛋白网络相比,在胚胎阶段 5 中,毗邻原始条纹 (PS) 的中轴区域表现出相对平滑的纤连蛋白纹理。然而,到胚胎阶段 6,纹理差异已经发生变化,与中轴 PS 定向网络相比,LPM 纤连蛋白网络表现出相对平滑的纹理。我们的数据确定并部分描述了温血胚胎组织中纤连蛋白纹理的阶段特异性区域各向异性。数据表明,ECM 纹理特性的变化反映了原始生物材料的有序时间依赖性重排。我们得出结论,ECM 微环境在羊膜形态发生的最重要时期在时间和空间上发生了显著变化——这取决于波动的纹理特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2b71/3365023/38343f180233/pone.0038266.g001.jpg

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