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A Post-translational Metabolic Switch Enables Complete Decoupling of Bacterial Growth from Biopolymer Production in Engineered Escherichia coli

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논문

A Post-translational Metabolic Switch Enables Complete Decoupling of Bacterial Growth from Biopolymer Production in Engineered Escherichia coli

학술지

ACS Synthetic biology

저자명

Durante-Rodrí guez, Gonzalo; de Lorenzo, Ví ctor; Nikel, Pablo I.

초록

<P>Most of the current methods for controlling the formation rate of a key protein or enzyme in cell factories rely on the manipulation of target genes within the pathway. In this article, we present a novel synthetic system for post-translational regulation of protein levels, FENIX, which provides both independent control of the steady-state protein level and inducible accumulation of target proteins. The FENIX device is based on the constitutive, proteasome-dependent degradation of the target polypeptide by tagging with a short synthetic, hybrid NIa/SsrA amino acid sequence in the C-terminal domain. Protein production is triggered <I>via</I> addition of an orthogonal inducer (<I>i.e.</I>, 3-methylbenzoate) to the culture medium. The system was benchmarked in <I>Escherichia coli</I> by tagging two fluorescent proteins (GFP and mCherry), and further exploited to completely uncouple poly(3-hydroxybutyrate) (PHB) accumulation from bacterial growth. By tagging PhaA (3-ketoacyl-CoA thiolase, first step of the route), a dynamic metabolic switch at the acetyl-coenzyme A node was established in such a way that this metabolic precursor could be effectively redirected into PHB formation upon activation of the system. The engineered <I>E. coli</I> strain reached a very high specific rate of PHB accumulation (0.4 h<SUP>-1</SUP>) with a polymer content of <I>ca</I>. 72% (w/w) in glucose cultures in a growth-independent mode. Thus, FENIX enables dynamic control of metabolic fluxes in bacterial cell factories by establishing post-translational synthetic switches in the pathway of interest.</P><BR>[FIG OMISSION]</BR>

발행연도

2018

발행기관

American Chemical Society

ISSN

2161-5063

7

11

페이지

pp.2686-2697

주제어

synthetic biology; metabolic engineering; proteolysis; Escherichia coli; PHB; pathway engineering

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1 2023-12-11

논문; 2018-12-31

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