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Culturing of 'unculturable' human microbiota reveals novel taxa and extensive sporulation.
Browne, Hilary P; Forster, Samuel C; Anonye, Blessing O; Kumar, Nitin; Neville, B Anne; Stares, Mark D; Goulding, David; Lawley, Trevor D.
Afiliación
  • Browne HP; Host-Microbiota Interactions Laboratory, Wellcome Trust Sanger Institute, Hinxton, UK.
  • Forster SC; Host-Microbiota Interactions Laboratory, Wellcome Trust Sanger Institute, Hinxton, UK.
  • Anonye BO; Centre for Innate Immunity and Infectious Diseases, Hudson Institute of Medical Research, Clayton, Victoria, Australia.
  • Kumar N; Department of Molecular and Translational Sciences, Monash University, Clayton, Victoria, Australia.
  • Neville BA; Host-Microbiota Interactions Laboratory, Wellcome Trust Sanger Institute, Hinxton, UK.
  • Stares MD; Host-Microbiota Interactions Laboratory, Wellcome Trust Sanger Institute, Hinxton, UK.
  • Goulding D; Host-Microbiota Interactions Laboratory, Wellcome Trust Sanger Institute, Hinxton, UK.
  • Lawley TD; Host-Microbiota Interactions Laboratory, Wellcome Trust Sanger Institute, Hinxton, UK.
Nature ; 533(7604): 543-546, 2016 05 26.
Article en En | MEDLINE | ID: mdl-27144353
Our intestinal microbiota harbours a diverse bacterial community required for our health, sustenance and wellbeing. Intestinal colonization begins at birth and climaxes with the acquisition of two dominant groups of strict anaerobic bacteria belonging to the Firmicutes and Bacteroidetes phyla. Culture-independent, genomic approaches have transformed our understanding of the role of the human microbiome in health and many diseases. However, owing to the prevailing perception that our indigenous bacteria are largely recalcitrant to culture, many of their functions and phenotypes remain unknown. Here we describe a novel workflow based on targeted phenotypic culturing linked to large-scale whole-genome sequencing, phylogenetic analysis and computational modelling that demonstrates that a substantial proportion of the intestinal bacteria are culturable. Applying this approach to healthy individuals, we isolated 137 bacterial species from characterized and candidate novel families, genera and species that were archived as pure cultures. Whole-genome and metagenomic sequencing, combined with computational and phenotypic analysis, suggests that at least 50-60% of the bacterial genera from the intestinal microbiota of a healthy individual produce resilient spores, specialized for host-to-host transmission. Our approach unlocks the human intestinal microbiota for phenotypic analysis and reveals how a marked proportion of oxygen-sensitive intestinal bacteria can be transmitted between individuals, affecting microbiota heritability.
Asunto(s)

Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Bacterias / Técnicas de Tipificación Bacteriana / Microbioma Gastrointestinal Tipo de estudio: Incidence_studies Límite: Humans Idioma: En Revista: Nature Año: 2016 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Bacterias / Técnicas de Tipificación Bacteriana / Microbioma Gastrointestinal Tipo de estudio: Incidence_studies Límite: Humans Idioma: En Revista: Nature Año: 2016 Tipo del documento: Article