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Engineering dynamic pathway regulation using stress-response promoters

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TLDR
This paper applied whole-genome transcript arrays to identify promoters that respond to the accumulation of toxic intermediates, and then used these promoters to control accumulation of the intermediate and improve the final titers of a desired product.
Abstract
Heterologous pathways used in metabolic engineering may produce intermediates toxic to the cell. Dynamic control of pathway enzymes could prevent the accumulation of these metabolites, but such a strategy requires sensors, which are largely unknown, that can detect and respond to the metabolite. Here we applied whole-genome transcript arrays to identify promoters that respond to the accumulation of toxic intermediates, and then used these promoters to control accumulation of the intermediate and improve the final titers of a desired product. We apply this approach to regulate farnesyl pyrophosphate (FPP) production in the isoprenoid biosynthetic pathway in Escherichia coli. This strategy improved production of amorphadiene, the final product, by twofold over that from inducible or constitutive promoters, eliminated the need for expensive inducers, reduced acetate accumulation and improved growth. We extended this approach to another toxic intermediate to demonstrate the broad utility of identifying novel sensor-regulator systems for dynamic regulation.

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Journal ArticleDOI

Host-aware synthetic biology

TL;DR: This review of synthetic biology highlights recent work focused on the development of host-aware synthetic biology, highlighting work on genetic stability, portability and robust performance of cell-hosted synthetic constructs.
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Engineering microbes for isoprene production.

TL;DR: The history and prospects of microbial isoprene production is summarized by summarizing the history, prospects, and strategies employed for achieving engineered strains with improved performance indices based on the published papers and patents.
Journal ArticleDOI

Current and future modalities of dynamic control in metabolic engineering.

TL;DR: The potential of integrating biosensors and computer-assisted feedback control as a promising future modality of dynamic control in metabolic engineering is explored.
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Mitochondrial acetyl-CoA utilization pathway for terpenoid productions.

TL;DR: The eight-gene FPP biosynthetic pathway was successfully expressed inside yeast mitochondria to enable high-level amorpha-4,11-diene production and subcellular metabolic engineering might also be employed for an efficient production of other bio-products from the mitochondrial acetyl-CoA in other eukaryotic organisms.
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Engineering a Bifunctional Phr60-Rap60-Spo0A Quorum-Sensing Molecular Switch for Dynamic Fine-Tuning of Menaquinone-7 Synthesis in Bacillus subtilis.

TL;DR: The bifunctional and modular Phr60-Rap60-Spo0A quorum sensing system has been successfully integrated with biocatalytic functions to achieve dynamic pathway regulation in B. subtilis 168 and may be extended for use in other microbes to fine-tune gene expression and improve metabolites production.
References
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Journal ArticleDOI

Production of the antimalarial drug precursor artemisinic acid in engineered yeast

TL;DR: The engineering of Saccharomyces cerevisiae to produce high titres (up to 100 mg l-1) of artemisinic acid using an engineered mevalonate pathway, amorphadiene synthase, and a novel cytochrome P450 monooxygenase from A. annua that performs a three-step oxidation of amorpha-4,11-diene to art Artemisinic acid.
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Genesis: cluster analysis of microarray data

TL;DR: Genesis integrates various tools for microarray data analysis such as filters, normalization and visualization tools, distance measures as well as common clustering algorithms including hierarchical clustering, self-organizing maps, k-means, principal component analysis, and support vector machines.
Journal ArticleDOI

Engineering a mevalonate pathway in Escherichia coli for production of terpenoids

TL;DR: The strains developed in this study can serve as platform hosts for the production of any terpenoid compound for which a terpene synthase gene is available, and are the universal precursors to all isoprenoids.
Journal ArticleDOI

Automated design of synthetic ribosome binding sites to control protein expression

TL;DR: A predictive method for designing synthetic ribosome binding sites is developed, enabling a rational control over the protein expression level, and is demonstrated by rationally optimizing protein expression to connect a genetic sensor to a synthetic circuit.
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