The logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineering

Synthetic Biology (SB) aims at the rational design and engineering of novel biological functions and systems. By facilitating the engineering of living organisms, SB promises to facilitate the development of many new applications for health, biomanufacturing, and the environment. Over the last decad...

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Main Author: Matthieu Jules
Format: Article
Language:English
Published: Shared Science Publishers OG 2017-12-01
Series:Microbial Cell
Subjects:
Online Access:http://microbialcell.com/researcharticles/the-logics-of-metabolic-regulation-in-bacteria-challenges-biosensor-based-metabolic-engineering/
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spelling doaj-8a6c05d73eb44822b91570c2f4894dda2020-11-24T20:56:01ZengShared Science Publishers OGMicrobial Cell2311-26382017-12-0151565910.15698/mic2018.01.610The logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineeringMatthieu Jules0Micalis Institute, INRA, AgroParisTech, Université Paris-Saclay, 78350 Jouy-en-Josas, France.Synthetic Biology (SB) aims at the rational design and engineering of novel biological functions and systems. By facilitating the engineering of living organisms, SB promises to facilitate the development of many new applications for health, biomanufacturing, and the environment. Over the last decade, SB promoted the construction of libraries of components enabling the fine-tuning of genetic circuits expression and the development of novel genome engineering methodologies for many organisms of interest. SB thus opened new perspectives in the field of metabolic engineering, which was until then mainly limited to (over)producing naturally synthesized metabolic compounds. To engineer efficient cell factories, it is key to precisely reroute cellular resources from the central carbon metabolism (CCM) to the synthetic circuitry. This task is however difficult as there is still significant lack of knowledge regarding both the function of several metabolic components and the regulation of the CCM fluxes for many industrially important bacteria. Pyruvate is a pivotal metabolite at the heart of the CCM and a key precursor for the synthesis of several commodity compounds and fine chemicals. Numerous bacterial species can also use it as a carbon source when present in the environment but bacterial, pyruvate-specific uptake systems were to be discovered. This is an issue for metabolic engineering as one can imagine to make use of pyruvate transport systems to replenish synthetic metabolic pathways towards the synthesis of chemicals of interest. Here we describe a recent study (MBio 8(5): e00976-17), which identified and characterized a pyruvate transport system in the Gram-positive (G+ve) bacterium Bacillus subtilis, a well-established biotechnological workhorse for the production of enzymes, fine chemicals and antibiotics. This study also revealed that the activity of the two-component system (TCS) responsible for its induction is retro-inhibited by the level of pyruvate influx. Following up on the open question which is whether this retro-inhibition is a generic mechanism for TCSs, we will discuss the implications in metabolic engineering.http://microbialcell.com/researcharticles/the-logics-of-metabolic-regulation-in-bacteria-challenges-biosensor-based-metabolic-engineering/pyruvate transportBacillus subtiliscatabolite repressiontwo-component systemsmalatesynthetic Biologybiosensormetabolic engineering
collection DOAJ
language English
format Article
sources DOAJ
author Matthieu Jules
spellingShingle Matthieu Jules
The logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineering
Microbial Cell
pyruvate transport
Bacillus subtilis
catabolite repression
two-component systems
malate
synthetic Biology
biosensor
metabolic engineering
author_facet Matthieu Jules
author_sort Matthieu Jules
title The logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineering
title_short The logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineering
title_full The logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineering
title_fullStr The logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineering
title_full_unstemmed The logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineering
title_sort logics of metabolic regulation in bacteria challenges biosensor-based metabolic engineering
publisher Shared Science Publishers OG
series Microbial Cell
issn 2311-2638
publishDate 2017-12-01
description Synthetic Biology (SB) aims at the rational design and engineering of novel biological functions and systems. By facilitating the engineering of living organisms, SB promises to facilitate the development of many new applications for health, biomanufacturing, and the environment. Over the last decade, SB promoted the construction of libraries of components enabling the fine-tuning of genetic circuits expression and the development of novel genome engineering methodologies for many organisms of interest. SB thus opened new perspectives in the field of metabolic engineering, which was until then mainly limited to (over)producing naturally synthesized metabolic compounds. To engineer efficient cell factories, it is key to precisely reroute cellular resources from the central carbon metabolism (CCM) to the synthetic circuitry. This task is however difficult as there is still significant lack of knowledge regarding both the function of several metabolic components and the regulation of the CCM fluxes for many industrially important bacteria. Pyruvate is a pivotal metabolite at the heart of the CCM and a key precursor for the synthesis of several commodity compounds and fine chemicals. Numerous bacterial species can also use it as a carbon source when present in the environment but bacterial, pyruvate-specific uptake systems were to be discovered. This is an issue for metabolic engineering as one can imagine to make use of pyruvate transport systems to replenish synthetic metabolic pathways towards the synthesis of chemicals of interest. Here we describe a recent study (MBio 8(5): e00976-17), which identified and characterized a pyruvate transport system in the Gram-positive (G+ve) bacterium Bacillus subtilis, a well-established biotechnological workhorse for the production of enzymes, fine chemicals and antibiotics. This study also revealed that the activity of the two-component system (TCS) responsible for its induction is retro-inhibited by the level of pyruvate influx. Following up on the open question which is whether this retro-inhibition is a generic mechanism for TCSs, we will discuss the implications in metabolic engineering.
topic pyruvate transport
Bacillus subtilis
catabolite repression
two-component systems
malate
synthetic Biology
biosensor
metabolic engineering
url http://microbialcell.com/researcharticles/the-logics-of-metabolic-regulation-in-bacteria-challenges-biosensor-based-metabolic-engineering/
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