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Multilayer Genetic Circuits for Dynamic Regulation of Metabolic Pathways
Author(s) -
Shixiu Cui,
Xueqin Lv,
Xianhao Xu,
Taichi Chen,
Hongzhi Zhang,
Yanfeng Liu,
Jianghua Li,
Guocheng Du,
Rodrigo LedesmaAmaro,
Long Liu
Publication year - 2021
Publication title -
acs synthetic biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.156
H-Index - 66
ISSN - 2161-5063
DOI - 10.1021/acssynbio.1c00073
Subject(s) - synthetic biology , metabolic engineering , electronic circuit , computer science , systems biology , gene regulatory network , field (mathematics) , computational biology , biology , gene , engineering , gene expression , genetics , mathematics , pure mathematics , electrical engineering
The dynamic regulation of metabolic pathways is based on changes in external signals and endogenous changes in gene expression levels and has extensive applications in the field of synthetic biology and metabolic engineering. However, achieving dynamic control is not trivial, and dynamic control is difficult to obtain using simple, single-level, control strategies because they are often affected by native regulatory networks. Therefore, synthetic biologists usually apply the concept of logic gates to build more complex and multilayer genetic circuits that can process various signals and direct the metabolic flux toward the synthesis of the molecules of interest. In this review, we first summarize the applications of dynamic regulatory systems and genetic circuits and then discuss how to design multilayer genetic circuits to achieve the optimal control of metabolic fluxes in living cells.

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