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Principles for the design of multicellular engineered living systems

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 biologica...

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Autores principales: 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
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AIP Publishing LLC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8893975/
https://www.ncbi.nlm.nih.gov/pubmed/35274072
http://dx.doi.org/10.1063/5.0076635
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author 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
author_facet 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
author_sort Aydin, Onur
collection PubMed
description 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.
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spelling pubmed-88939752022-03-09 Principles for the design of multicellular engineered living systems 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 APL Bioeng Perspectives 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. AIP Publishing LLC 2022-03-02 /pmc/articles/PMC8893975/ /pubmed/35274072 http://dx.doi.org/10.1063/5.0076635 Text en © 2022 Author(s). https://creativecommons.org/licenses/by/4.0/All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Perspectives
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
Principles for the design of multicellular engineered living systems
title Principles for the design of multicellular engineered living systems
title_full Principles for the design of multicellular engineered living systems
title_fullStr Principles for the design of multicellular engineered living systems
title_full_unstemmed Principles for the design of multicellular engineered living systems
title_short Principles for the design of multicellular engineered living systems
title_sort principles for the design of multicellular engineered living systems
topic Perspectives
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8893975/
https://www.ncbi.nlm.nih.gov/pubmed/35274072
http://dx.doi.org/10.1063/5.0076635
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