Literature DB >> 31712278

Genetic Manipulation of Wild Human Gut Bacteroides.

Natasha A Bencivenga-Barry1,2, Bentley Lim1,2, Carmen M Herrera3,4, M Stephen Trent3,4,5, Andrew L Goodman6,2.   

Abstract

Bacteroides is one of the most prominent genera in the human gut microbiome, and study of this bacterial group provides insights into gut microbial ecology and pathogenesis. In this report, we introduce a negative selection system for rapid and efficient allelic exchange in wild Bacteroides species that does not require any alterations to the genetic background or a nutritionally defined culture medium. In this approach, dual antibacterial effectors normally delivered via type VI secretion are targeted to the bacterial periplasm under the control of tightly regulated anhydrotetracycline (aTC)-inducible promoters. Introduction of aTC selects for recombination events producing the desired genetic modification, and the dual effector design allows for broad applicability across strains that may have immunity to one counterselection effector. We demonstrate the utility of this approach across 21 human gut Bacteroides isolates representing diverse species, including strains isolated directly from human donors. We use this system to establish that antimicrobial peptide resistance in Bacteroides vulgatus is determined by the product of a gene that is not included in the genomes of previously genetically tractable members of the human gut microbiome.IMPORTANCE Human gut Bacteroides species exhibit strain-level differences in their physiology, ecology, and impact on human health and disease. However, existing approaches for genetic manipulation generally require construction of genetically modified parental strains for each microbe of interest or defined medium formulations. In this report, we introduce a robust and efficient strategy for targeted genetic manipulation of diverse wild-type Bacteroides species from the human gut. This system enables genetic investigation of members of human and animal microbiomes beyond existing model organisms.
Copyright © 2020 American Society for Microbiology.

Entities:  

Keywords:  Bacteroideszzm321990; antimicrobial peptides; genetics; microbiome

Year:  2020        PMID: 31712278      PMCID: PMC6964735          DOI: 10.1128/JB.00544-19

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  50 in total

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8.  The Biosynthesis of Lipooligosaccharide from Bacteroides thetaiotaomicron.

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Review 5.  Gut Dysbiosis and Kidney Diseases.

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6.  Genetic tools for the redirection of the central carbon flow towards the production of lactate in the human gut bacterium Phocaeicola (Bacteroides) vulgatus.

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7.  Changes in fecal microbiota composition and the cytokine expression profile in school-aged children with depression: A case-control study.

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  10 in total

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