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多细胞工程化生命系统的设计原则。

Principles for the design of multicellular engineered living systems.

作者信息

Aydin Onur, Passaro Austin P, Raman Ritu, Spellicy Samantha E, Weinberg Robert P, Kamm Roger D, Sample Matthew, Truskey George A, Zartman Jeremiah, Dar Roy D, Palacios Sebastian, Wang Jason, Tordoff Jesse, Montserrat Nuria, Bashir Rashid, Saif M Taher A, Weiss Ron

机构信息

Regenerative Bioscience Center, University of Georgia, Athens, Georgia 30602, USA.

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

出版信息

APL Bioeng. 2022 Mar 2;6(1):010903. doi: 10.1063/5.0076635. eCollection 2022 Mar.

Abstract

Remarkable progress in bioengineering over the past two decades has enabled the formulation of fundamental design principles for a variety of medical and non-medical applications. These advancements have laid the foundation for building multicellular engineered living systems (M-CELS) from biological parts, forming functional modules integrated into living machines. These cognizant design principles for living systems encompass novel genetic circuit manipulation, self-assembly, cell-cell/matrix communication, and artificial tissues/organs enabled through systems biology, bioinformatics, computational biology, genetic engineering, and microfluidics. Here, we introduce design principles and a blueprint for forward production of robust and standardized M-CELS, which may undergo variable reiterations through the classic design-build-test-debug cycle. This Review provides practical and theoretical frameworks to forward-design, control, and optimize novel M-CELS. Potential applications include biopharmaceuticals, bioreactor factories, biofuels, environmental bioremediation, cellular computing, biohybrid digital technology, and experimental investigations into mechanisms of multicellular organisms normally hidden inside the "black box" of living cells.

摘要

在过去二十年里,生物工程取得了显著进展,这使得为各种医学和非医学应用制定基本设计原则成为可能。这些进展为从生物部件构建多细胞工程生命系统(M-CELS)奠定了基础,形成了集成到活体机器中的功能模块。这些适用于生命系统的设计原则包括新型基因电路操纵、自组装、细胞间/基质通信,以及通过系统生物学、生物信息学、计算生物学、基因工程和微流控技术实现的人工组织/器官。在此,我们介绍了用于稳健且标准化的M-CELS正向生产的设计原则和蓝图,其可能会通过经典的设计-构建-测试-调试循环经历多次反复。本综述提供了用于正向设计、控制和优化新型M-CELS的实践和理论框架。潜在应用包括生物制药、生物反应器工厂、生物燃料、环境生物修复、细胞计算、生物混合数字技术,以及对通常隐藏在活细胞“黑匣子”内的多细胞生物体机制的实验研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0375/8893975/714530d620ee/ABPID9-000006-010903_1-g001.jpg

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