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利用合成细胞构建组织尺度特性:从多到一。

Engineering Tissue-Scale Properties with Synthetic Cells: Forging One from Many.

机构信息

Department of Chemistry, University of Texas at Austin, Austin, Texas 78712, United States.

McKetta Department of Chemical Engineering, University of Texas at Austin, Austin, Texas 78712, United States.

出版信息

ACS Synth Biol. 2023 Jul 21;12(7):1889-1907. doi: 10.1021/acssynbio.3c00061. Epub 2023 Jul 7.

Abstract

In metazoans, living cells achieve capabilities beyond individual cell functionality by assembling into multicellular tissue structures. These higher-order structures represent dynamic, heterogeneous, and responsive systems that have evolved to regenerate and coordinate their actions over large distances. Recent advances in constructing micrometer-sized vesicles, or synthetic cells, now point to a future where construction of synthetic tissue can be pursued, a boon to pressing material needs in biomedical implants, drug delivery systems, adhesives, filters, and storage devices, among others. To fully realize the potential of synthetic tissue, inspiration has been and will continue to be drawn from new molecular findings on its natural counterpart. In this review, we describe advances in introducing tissue-scale features into synthetic cell assemblies. Beyond mere complexation, synthetic cells have been fashioned with a variety of natural and engineered molecular components that serve as initial steps toward morphological control and patterning, intercellular communication, replication, and responsiveness in synthetic tissue. Particular attention has been paid to the dynamics, spatial constraints, and mechanical strengths of interactions that drive the synthesis of this next-generation material, describing how multiple synthetic cells can act as one.

摘要

在多细胞生物中,活细胞通过组装成多细胞组织结构来实现超越单个细胞功能的能力。这些更高阶的结构代表着动态、异质和响应性的系统,这些系统已经进化到可以远距离再生和协调它们的活动。最近在构建微米大小的囊泡或合成细胞方面的进展表明,未来可以进行合成组织的构建,这将有助于满足生物医学植入物、药物输送系统、粘合剂、过滤器和存储设备等方面的紧迫材料需求。为了充分发挥合成组织的潜力,灵感已经并将继续从其天然对应物的新分子发现中汲取。在这篇综述中,我们描述了在将组织尺度特征引入合成细胞组装中的进展。除了简单的络合之外,还采用了各种天然和工程分子成分来塑造合成细胞,作为形态控制和图案化、细胞间通讯、复制和合成组织响应性的初始步骤。特别关注了驱动下一代材料合成的相互作用的动力学、空间约束和机械强度,描述了多个合成细胞如何作为一个整体发挥作用。

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