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从巨大的单层囊泡中合成人工细胞:微流控技术发展的最新进展。

Synthesizing artificial cells from giant unilamellar vesicles: state-of-the art in the development of microfluidic technology.

机构信息

Department of Chemistry, The Scripps Research Institute, Jupiter, FL, USA.

出版信息

Bioessays. 2012 Nov;34(11):992-1001. doi: 10.1002/bies.201200105. Epub 2012 Aug 24.

Abstract

Microfluidic technology - the manipulation of fluids at micrometer scales - has revolutionized many areas of synthetic biology. The bottom-up synthesis of "minimal" cell models has traditionally suffered from poor control of assembly conditions. Giant unilamellar vesicles (GUVs) are good models of living cells on account of their size and unilamellar membrane structure. In recent years, a number of microfluidic approaches for constructing GUVs has emerged. These provide control over traditionally elusive parameters of vesicular structure, such as size, lamellarity, membrane composition, and internal contents. They also address sophisticated cellular functions such as division and protein synthesis. Microfluidic techniques for GUV synthesis can broadly be categorized as continuous-flow based approaches and droplet-based approaches. This review presents the state-of-the-art of microfluidic technology, a robust platform for recapitulating complex cellular structure and function in synthetic models of biological cells.

摘要

微流控技术——在微米尺度下操控流体——已经彻底改变了许多合成生物学领域。“最小”细胞模型的自下而上合成传统上受到组装条件控制不佳的困扰。巨大的单层囊泡(GUV)因其大小和单层膜结构而成为活细胞的良好模型。近年来,已经出现了许多用于构建 GUV 的微流控方法。这些方法可以控制囊泡结构的传统上难以捉摸的参数,例如大小、层状、膜组成和内部内容。它们还解决了复杂的细胞功能,如分裂和蛋白质合成。用于 GUV 合成的微流控技术可以大致分为连续流动方法和液滴方法。这篇综述介绍了微流控技术的最新进展,这是一种强大的平台,可以在生物细胞的合成模型中重现复杂的细胞结构和功能。

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