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A modular toolkit for environmental Rhodococcus, Gordonia, and Nocardia enables complex metabolic manipulation.
Jansen, Zachary; Alameri, Abdulaziz; Wei, Qiyao; Kulhanek, Devon L; Gilmour, Andrew R; Halper, Sean; Schwalm, Nathan D; Thyer, Ross.
Afiliação
  • Jansen Z; Systems, Synthetic, and Physical Biology, Rice University, Houston, Texas, USA.
  • Alameri A; Department of Chemical and Biomolecular Engineering, Rice University, Houston, Texas, USA.
  • Wei Q; Department of Bioengineering, Rice University, Houston, Texas, USA.
  • Kulhanek DL; Department of Chemical and Biomolecular Engineering, Rice University, Houston, Texas, USA.
  • Gilmour AR; Systems, Synthetic, and Physical Biology, Rice University, Houston, Texas, USA.
  • Halper S; DEVCOM Army Research Laboratory, Adelphi, Maryland, USA.
  • Schwalm ND; DEVCOM Army Research Laboratory, Adelphi, Maryland, USA.
  • Thyer R; Department of Chemical and Biomolecular Engineering, Rice University, Houston, Texas, USA.
Appl Environ Microbiol ; 90(8): e0034024, 2024 08 21.
Article em En | MEDLINE | ID: mdl-39082821
ABSTRACT
Soil-dwelling Actinomycetes are a diverse and ubiquitous component of the global microbiome but largely lack genetic tools comparable to those available in model species such as Escherichia coli or Pseudomonas putida, posing a fundamental barrier to their characterization and utilization as hosts for biotechnology. To address this, we have developed a modular plasmid assembly framework, along with a series of genetic control elements for the previously genetically intractable Gram-positive environmental isolate Rhodococcus ruber C208, and demonstrate conserved functionality in 11 additional environmental isolates of Rhodococcus, Nocardia, and Gordonia. This toolkit encompasses five Mycobacteriale origins of replication, five broad-host-range antibiotic resistance markers, transcriptional and translational control elements, fluorescent reporters, a tetracycline-inducible system, and a counter-selectable marker. We use this toolkit to interrogate the carotenoid biosynthesis pathway in Rhodococcus erythropolis N9T-4, a weakly carotenogenic environmental isolate and engineer higher pathway flux toward the keto-carotenoid canthaxanthin. This work establishes several new genetic tools for environmental Mycobacteriales and provides a synthetic biology framework to support the design of complex genetic circuits in these species.IMPORTANCESoil-dwelling Actinomycetes, particularly the Mycobacteriales, include both diverse new hosts for sustainable biomanufacturing and emerging opportunistic pathogens. Rhodococcus, Gordonia, and Nocardia are three abundant genera with particularly flexible metabolisms and untapped potential for natural product discovery. Among these, Rhodococcus ruber C208 was shown to degrade polyethylene; Gordonia paraffinivorans can assimilate carbon from solid hydrocarbons; and Nocardia neocaledoniensis (and many other Nocardia spp.) possesses dual isoprenoid biosynthesis pathways. Many species accumulate high levels of carotenoid pigments, indicative of highly active isoprenoid biosynthesis pathways which may be harnessed for fermentation of terpenes and other commodity isoprenoids. Modular genetic toolkits have proven valuable for both fundamental and applied research in model organisms, but such tools are lacking for most Actinomycetes. Our suite of genetic tools and DNA assembly framework were developed for broad functionality and to facilitate rapid prototyping of genetic constructs in these organisms.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Rhodococcus / Nocardia Idioma: En Revista: Appl Environ Microbiol Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Rhodococcus / Nocardia Idioma: En Revista: Appl Environ Microbiol Ano de publicação: 2024 Tipo de documento: Article País de afiliação: Estados Unidos