Literature DB >> 27966551

The respiratory tract microbiome and lung inflammation: a two-way street.

G B Huffnagle1,2,3, R P Dickson1, N W Lukacs3,4.   

Abstract

The lungs are not sterile or free from bacteria; rather, they harbor a distinct microbiome whose composition is driven by different ecological rules than for the gastrointestinal tract. During disease, there is often a shift in community composition towards Gammaproteobacteria, the bacterial class that contains many common lung-associated gram-negative "pathogens." Numerous byproducts of host inflammation are growth factors for these bacteria. The extracellular nutrient supply for bacteria in the lungs, which is severely limited during health, markedly increases due to the presence of mucus and vascular permeability. While Gammaproteobacteria benefit from airway inflammation, they also encode molecular components that promote inflammation, potentially creating a cyclical inflammatory mechanism. In contrast, Prevotella species that are routinely acquired via microaspiration from the oral cavity may participate in immunologic homeostasis of the airways.vAreas of future research include determining for specific lung diseases (1) whether an altered lung microbiome initiates disease pathogenesis, promotes chronic inflammation, or is merely a marker of injury and inflammation, (2) whether the lung microbiome can be manipulated therapeutically to change disease progression, (3) what molecules (metabolites) generated during an inflammatory response promote cross-kingdom signaling, and (4) how the lung "ecosystem" collapses during pneumonia, to be dominated by a single pathogen.

Entities:  

Mesh:

Year:  2016        PMID: 27966551      PMCID: PMC5765541          DOI: 10.1038/mi.2016.108

Source DB:  PubMed          Journal:  Mucosal Immunol        ISSN: 1933-0219            Impact factor:   7.313


  71 in total

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Review 6.  A tale of two sites: how inflammation can reshape the microbiomes of the gut and lungs.

Authors:  Brittan S Scales; Robert P Dickson; Gary B Huffnagle
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  128 in total

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Review 4.  Microbes, metabolites, and the gut-lung axis.

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Review 5.  Evidence Supporting a Phased Immuno-physiological Approach to COVID-19 From Prevention Through Recovery.

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6.  Incorporating the airway microbiome into asthma phenotyping: Moving toward personalized medicine for noneosinophilic asthma.

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7.  Covert dysphagia and recurrent pneumonia related to antipsychotic treatment.

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Review 10.  Pseudomonas aeruginosa polymicrobial interactions during lung infection.

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