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1.
Proc Natl Acad Sci U S A ; 120(39): e2311422120, 2023 09 26.
Article in English | MEDLINE | ID: mdl-37733741

ABSTRACT

Understanding how members of the human gut microbiota prioritize nutrient resources is one component of a larger effort to decipher the mechanisms defining microbial community robustness and resiliency in health and disease. This knowledge is foundational for development of microbiota-directed therapeutics. To model how bacteria prioritize glycans in the gut, germfree mice were colonized with 13 human gut bacterial strains, including seven saccharolytic Bacteroidaceae species. Animals were fed a Western diet supplemented with pea fiber. After community assembly, an inducible CRISPR-based system was used to selectively and temporarily reduce the absolute abundance of Bacteroides thetaiotaomicron or B. cellulosilyticus by 10- to 60-fold. Each knockdown resulted in specific, reproducible increases in the abundances of other Bacteroidaceae and dynamic alterations in their expression of genes involved in glycan utilization. Emergence of these "alternate consumers" was associated with preservation of community saccharolytic activity. Using an inducible system for CRISPR base editing in vitro, we disrupted translation of transporters critical for utilizing dietary polysaccharides in Phocaeicola vulgatus, a B. cellulosilyticus knockdown-responsive taxon. In vitro and in vivo tests of the resulting P. vulgatus mutants allowed us to further characterize mechanisms associated with its increased fitness after knockdown. In principle, the approach described can be applied to study utilization of a range of nutrients and to preclinical efforts designed to develop therapeutic strategies for precision manipulation of microbial communities.


Subject(s)
Bacteroides thetaiotaomicron , Bacteroides , Humans , Animals , Mice , Bacteroides/genetics , Polysaccharides , Bacteroides thetaiotaomicron/genetics , Biological Assay , Diet, Western
2.
Nucleic Acids Res ; 42(10): 6158-67, 2014 Jun.
Article in English | MEDLINE | ID: mdl-24792165

ABSTRACT

Artificial transcription factors are powerful tools for regulating gene expression. Here we report results with engineered zinc-finger transcription factors (ZF-TFs) targeting four protein-coding genes, OCT4, SOX2, KLF4 and c-MYC, and one noncoding ribonucleic acid (RNA) gene, the microRNA (miRNA) miR302/367 cluster. We designed over 300 ZF-TFs whose targets lie within 1 kb of the transcriptional start sites (TSSs), screened them for increased messenger RNA or miRNA levels in transfected cells, and identified potent ZF-TF activators for each gene. Furthermore, we demonstrate that selected ZF-TFs function with alternative activation domains and in multiple cell lines. For OCT4, we expanded the target range to -2.5 kb and +500 bp relative to the TSS and identified additional active ZF-TFs, including three highly active ZF-TFs targeting distal enhancer, proximal enhancer and downstream from the proximal promoter. Chromatin immunoprecipitation (FLAG-ChIP) results indicate that several inactive ZF-TFs targeting within the same regulatory region bind as well as the most active ZF-TFs, suggesting that efficient binding within one of these regulatory regions may be necessary but not sufficient for activation. These results further our understanding of ZF-TF design principles and corroborate the use of ZF-TFs targeting enhancers and downstream from the TSS for transcriptional activation.


Subject(s)
Trans-Activators/metabolism , Transcriptional Activation , Zinc Fingers , Cell Line , Humans , Kruppel-Like Factor 4 , Kruppel-Like Transcription Factors/biosynthesis , Kruppel-Like Transcription Factors/genetics , MicroRNAs/biosynthesis , MicroRNAs/genetics , Octamer Transcription Factor-3/biosynthesis , Octamer Transcription Factor-3/genetics , Protein Engineering , Protein Structure, Tertiary , Proto-Oncogene Proteins c-myc/biosynthesis , Proto-Oncogene Proteins c-myc/genetics , SOXB1 Transcription Factors/biosynthesis , SOXB1 Transcription Factors/genetics , Trans-Activators/chemistry
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