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作为弹黏液体的胚胎组织。I. 离心细胞聚集体中的快速和缓慢形状变化。

Embryonic tissues as elasticoviscous liquids. I. Rapid and slow shape changes in centrifuged cell aggregates.

作者信息

Phillips H M, Steinberg M S

出版信息

J Cell Sci. 1978 Apr;30:1-20. doi: 10.1242/jcs.30.1.1.

Abstract

Certain embryonic tissue masses and cell aggregates behave like deformable solids during brief experimental manipulations but like viscous liquids in long-term organ cultures. To investigate these seemingly paradoxical physical properties, we have mechanically deformed cell aggregates derived from several embryonic chick organs by centrifuging them against solid substrata. Aggregate shapes during brief centrifugation were observed directly in a microscope-centrifuge. In addition, techniques were devised for fixing cell aggregates during prolonged centrifugation. Evidence presented here shows that these fixative-injection procedures accurately preserve the prefixation shapes of living centrifuged aggregates. According to a simple viscous-liquid model for cell aggregates, cohering cells slide past one another when external forces and/or tissue surface tensions cause gradual rearrangements in aggregate conformations. In earlier experiments, 2 types of behaviour predicted from this model were confirmed for several embryonic chick tissues subjected to prolonged centrifugation. First, initially flat aggregates rounded up against the centrifugal force to adopt the same shapes that initially round aggregates reached by flattening. Second, the relative roundness of centrifuged aggregates of different tissues at shape equilibrium correlated with the relative positions that these tissues assumed when they were combined in aggregate-spreading and cell-sorting experiments. By contrast, the brief centrifugation experiments described here provide some support for a simple elastic-solid model in which aggregate shape changes are accompanied by cell deformations rather than cell redistributions. In particular, since cell migration tends to occur quite slowly, the very rapid aggregate flattening observed during the first few minutes of centrifugation presumably requires cell stretching. Moreover, since they do also round up very rapidly following brief centrifugation, these aggregates exhibit considerable elasticity that presumably reflects the swift relaxation of cell stretching as the centrifugal force is removed. Athough both elastic-solid and viscous-liquid properties can be recognized in cell aggregates, we note that, in the prolonged centrifugation experiments described here, rapid initial aggregate flattening is followed by much more gradual, continued flattening. Similarly, after prolonged centrifugation, rapid partial aggregate rounding-up is also followed by much more gradual, continued rounding-up during subsequent culture at Ig. Such rapid-then-slow shape changes contradict both simple elastic-solid and simple viscous-liquid models for cell aggregates. These bimodal shape changes are instead consistent with both compound-viscoelastic-solid and elasticoviscous-liquid models for cell aggregates, although only the latter can also account for long-term liquid-like aggregate behaviour...

摘要

某些胚胎组织团块和细胞聚集体在短暂的实验操作过程中表现得像可变形固体,但在长期器官培养中却像粘性液体。为了研究这些看似矛盾的物理特性,我们通过将来自几种鸡胚胎器官的细胞聚集体离心使其紧贴固体基质,从而对其进行了机械变形。在显微镜离心机中直接观察短暂离心过程中聚集体的形状。此外,还设计了在长时间离心过程中固定细胞聚集体的技术。此处提供的证据表明,这些固定剂注射程序能准确保留活的离心聚集体在固定前的形状。根据细胞聚集体的简单粘性液体模型,当外力和/或组织表面张力导致聚集体构象逐渐重新排列时,相互粘连的细胞会彼此滑动。在早期实验中,对于几种经历长时间离心的鸡胚胎组织,证实了从该模型预测的两种行为类型。第一,最初扁平的聚集体会逆着离心力变圆,呈现出与最初圆形聚集体通过变平所达到的相同形状。第二,在形状平衡时,不同组织的离心聚集体的相对圆度与这些组织在聚集体铺展和细胞分选实验中组合时所呈现的相对位置相关。相比之下,此处描述的短暂离心实验为一个简单的弹性固体模型提供了一些支持,在该模型中,聚集体形状的变化伴随着细胞变形而非细胞重新分布。特别是,由于细胞迁移往往发生得相当缓慢,在离心的最初几分钟内观察到的聚集体非常迅速的变平大概需要细胞拉伸。此外,由于它们在短暂离心后也能非常迅速地变圆,这些聚集体表现出相当大的弹性,这大概反映了随着离心力去除,细胞拉伸的迅速松弛。尽管在细胞聚集体中既能识别出弹性固体特性又能识别出粘性液体特性,但我们注意到,在此处描述的长时间离心实验中,聚集体最初的快速变平之后是更加逐渐的、持续的变平。同样,在长时间离心后,聚集体快速的部分变圆之后在随后的Ig培养过程中也是更加逐渐的、持续的变圆。这种先快后慢的形状变化与细胞聚集体的简单弹性固体和简单粘性液体模型都相矛盾。相反,这些双峰形状变化与细胞聚集体的复合粘弹性固体和弹性粘性液体模型都一致,尽管只有后者也能解释聚集体长期的类似液体的行为……

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