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An Engineered Constitutive Promoter Set with Broad Activity Range for Cupriavidus necator H16.
Johnson, Abayomi Oluwanbe; Gonzalez-Villanueva, Miriam; Tee, Kang Lan; Wong, Tuck Seng.
Afiliação
  • Johnson AO; Department of Chemical & Biological Engineering and Advanced Biomanufacturing Centre , University of Sheffield , Sir Robert Hadfield Building, Mappin Street , Sheffield S1 3JD , United Kingdom.
  • Gonzalez-Villanueva M; Department of Chemical & Biological Engineering and Advanced Biomanufacturing Centre , University of Sheffield , Sir Robert Hadfield Building, Mappin Street , Sheffield S1 3JD , United Kingdom.
  • Tee KL; Department of Chemical & Biological Engineering and Advanced Biomanufacturing Centre , University of Sheffield , Sir Robert Hadfield Building, Mappin Street , Sheffield S1 3JD , United Kingdom.
  • Wong TS; Department of Chemical & Biological Engineering and Advanced Biomanufacturing Centre , University of Sheffield , Sir Robert Hadfield Building, Mappin Street , Sheffield S1 3JD , United Kingdom.
ACS Synth Biol ; 7(8): 1918-1928, 2018 08 17.
Article em En | MEDLINE | ID: mdl-29949349
ABSTRACT
Well-characterized promoters with variable strength form the foundation of heterologous pathway optimization. It is also a key element that bolsters the success of microbial engineering and facilitates the development of biological tools like biosensors. In comparison to microbial hosts such as Escherichia coli and Saccharomyces cerevisiae, the promoter repertoire of Cupriavidus necator H16 is highly limited. This limited number of characterized promoters poses a significant challenge during the engineering of C. necator H16 for biomanufacturing and biotechnological applications. In this article, we first examined the architecture and genetic elements of the four most widely used constitutive promoters of C. necator H16 (i.e., P phaC1, P rrsC, P j5, and P g25) and established a narrow 6-fold difference in their promoter activities. Next, using these four promoters as starting points and applying a range of genetic modifications (including point mutation, length alteration, incorporation of regulatory genetic element, promoter hybridization, and configuration alteration), we created a library of 42 constitutive promoters, all of which are functional in C. necator H16. Although these promoters are also functional in E. coli, they show different promoter strength and hierarchical rank of promoter activity. Subsequently, the activity of each promoter was individually characterized, using l-arabinose-inducible P BAD promoter as a benchmark. This study has extended the range of constitutive promoter activities to 137-fold, with some promoter variants exceeding the l-arabinose-inducible range of P BAD promoter. Not only has the work enhanced our flexibility in engineering C. necator H16, it presented novel strategies in adjusting promoter activity in C. necator H16 and highlighted similarities and differences in transcriptional activity between this organism and E. coli.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Escherichia coli / Biologia Sintética Idioma: En Ano de publicação: 2018 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Escherichia coli / Biologia Sintética Idioma: En Ano de publicação: 2018 Tipo de documento: Article