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在微流控平台上定制原生组织的程序化组装。

Programmed assembly of bespoke prototissues on a microfluidic platform.

作者信息

Ramsay Kaitlyn, Levy Jae, Gobbo Pierangelo, Elvira Katherine S

机构信息

Department of Chemistry, University of Victoria, Victoria, Canada.

The Centre for Advanced Materials and Related Technology (CAMTEC), University of Victoria, Victoria, Canada.

出版信息

Lab Chip. 2021 Nov 25;21(23):4574-4585. doi: 10.1039/d1lc00602a.

Abstract

The precise assembly of protocell building blocks into prototissues that are stable in water, capable of sensing the external environment and which display collective behaviours remains a considerable challenge in prototissue engineering. We have designed a microfluidic platform that enables us to build bespoke prototissues from predetermined compositions of two types of protein-polymer protocells. We can accurately control their size, composition and create unique Janus configurations in a way that is not possible with traditional methods. Because we can control the number and type of the protocells that compose the prototissue, we can hence modulate the collective behaviours of this biomaterial. We show control over both the amplitude of thermally induced contractions in the biomaterial and its collective endogenous biochemical reactivity. Our results show that microfluidic technologies enable a new route to the precise and high-throughput fabrication of tissue-like materials with programmable collective properties that can be tuned through careful assembly of protocell building blocks of different types. We anticipate that our bespoke prototissues will be a starting point for the development of more sophisticated artificial tissues for use in medicine, soft robotics, and environmentally beneficial bioreactor technologies.

摘要

将原细胞构建模块精确组装成在水中稳定、能够感知外部环境并表现出集体行为的原组织,在原组织工程中仍然是一项巨大的挑战。我们设计了一个微流控平台,使我们能够从两种蛋白质-聚合物原细胞的预定组成构建定制的原组织。我们可以精确控制它们的大小、组成,并以传统方法无法实现的方式创建独特的Janus构型。由于我们可以控制构成原组织的原细胞的数量和类型,因此我们可以调节这种生物材料的集体行为。我们展示了对生物材料中热诱导收缩幅度及其集体内源性生化反应性的控制。我们的结果表明,微流控技术为精确、高通量制造具有可编程集体特性的类组织材料开辟了一条新途径,这些特性可以通过仔细组装不同类型的原细胞构建模块来调节。我们预计,我们定制的原组织将成为开发用于医学、软机器人和环境有益生物反应器技术的更复杂人工组织的起点。

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