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细胞外基质对基因表达的影响:结构即信息?

The influence of extracellular matrix on gene expression: is structure the message?

作者信息

Bissell M J, Barcellos-Hoff M H

机构信息

Division Biology and Medicine, Lawrence Berkeley Laboratory, UC Berkeley 94720.

出版信息

J Cell Sci Suppl. 1987;8:327-43. doi: 10.1242/jcs.1987.supplement_8.18.

Abstract

The study of the regulation of gene expression in cultured cells, particularly in epithelial cells, has been both hampered and facilitated by the loss of function that accompanies culture on traditional plastic substrata. Initially, investigations of differentiated function were thwarted by the inadequacy of tissue culture methods developed to support growth of mesenchymal cells. However, with the recognition that the unit of function in higher organisms is larger than the cell itself, and that gene expression is dependent upon cell interactions with hormones, substrata and other cells, came the understanding that the epithelial cell phenotype is profoundly influenced by the extracellular environment. In the last decade research on epithelial cells has centred on culture conditions that recreate the appropriate environment for function with very promising and important results. The investigations into the modulation of phenotype in culture produced not only a better model, but also contributed to a better understanding of the regulation of normal function. Using cultured mammary gland epithelial cells as a primary model of these interactions, our studies of gene expression are based on three premises. (1) That the extracellular matrix (ECM) on which the cells sit is an extension of the cells and an active participant in the regulation of cellular function; i.e. the ECM is an 'informational' entity in the sense that it receives, imparts and integrates structural and functional signals. (2) That ECM-induced functional differentiation in the mammary gland is mediated through changes in cell shape, i.e. that the structure is in large part 'the message' required to maintain differentiated gene expression. (3) That the unit of function includes the cell plus its extracellular matrix; in a larger context, the unit is the organ itself. These tenets and the data presented below are consistent with a model of 'Dynamic Reciprocity', where the ECM is postulated to exert an influence on gene expression via transmembrane proteins and cytoskeletal components. In turn, cytoskeletal association with polyribosomes affects mRNA stability and rates of protein synthesis, while its interaction with the nuclear matrix could affect mRNA processing and, possibly, rates of transcription.

摘要

在培养细胞中,尤其是上皮细胞中,基因表达调控的研究既受到阻碍,也因在传统塑料基质上培养所伴随的功能丧失而得到促进。最初,由于为支持间充质细胞生长而开发的组织培养方法存在不足,对分化功能的研究受到了阻碍。然而,随着人们认识到高等生物中的功能单位大于细胞本身,并且基因表达依赖于细胞与激素、基质及其他细胞的相互作用,人们开始理解上皮细胞表型受到细胞外环境的深刻影响。在过去十年中,上皮细胞研究集中在能为功能重建合适环境的培养条件上,并取得了非常有前景且重要的成果。对培养中表型调节的研究不仅产生了更好的模型,还有助于更好地理解正常功能的调控。以培养的乳腺上皮细胞作为这些相互作用的主要模型,我们对基因表达的研究基于三个前提。(1)细胞所附着的细胞外基质(ECM)是细胞的延伸,并且是细胞功能调节的积极参与者;即ECM是一个“信息”实体,因为它接收、传递并整合结构和功能信号。(2)ECM诱导的乳腺功能分化是通过细胞形状的变化介导的,即结构在很大程度上是维持分化基因表达所需的“信息”。(3)功能单位包括细胞及其细胞外基质;从更广泛的角度来看,单位是器官本身。这些原则以及下面呈现的数据与“动态互惠”模型一致,该模型假定ECM通过跨膜蛋白和细胞骨架成分对基因表达产生影响。反过来,细胞骨架与多核糖体的结合影响mRNA稳定性和蛋白质合成速率,而其与核基质的相互作用可能影响mRNA加工以及可能的转录速率。

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