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Dynamic Changes in the Microbiome and Mucosal Immune Microenvironment of the Lower Respiratory Tract by Influenza Virus Infection

tetano

Editor, Senior Moderator
Front Microbiol. 2019 Nov 1;10:2491. doi: 10.3389/fmicb.2019.02491. eCollection 2019. [h=1]Dynamic Changes in the Microbiome and Mucosal Immune Microenvironment of the Lower Respiratory Tract by Influenza Virus Infection.[/h]
Gu L[SUP]1,[/SUP][SUP]2[/SUP], Deng H[SUP]1,[/SUP][SUP]2[/SUP], Ren Z[SUP]1,[/SUP][SUP]3[/SUP], Zhao Y[SUP]1,[/SUP][SUP]2[/SUP], Yu S[SUP]1,[/SUP][SUP]2[/SUP], Guo Y[SUP]1,[/SUP][SUP]2[/SUP], Dai J[SUP]1,[/SUP][SUP]2[/SUP], Chen X[SUP]1,[/SUP][SUP]2[/SUP], Li K[SUP]1,[/SUP][SUP]2[/SUP], Li R[SUP]1,[/SUP][SUP]2[/SUP], Wang G[SUP]1,[/SUP][SUP]2[/SUP].
[h=3]Author information[/h] 1 Department of Microbiology and Immunology, Shantou University Medical College, Shantou, China. 2 Guangdong Provincial Key Laboratory of Infectious Diseases and Molecular Immunopathology, Shantou University Medical College, Shantou, China. 3 Department of Anesthesiology, The Second Xiangya Hospital of Central South University, Changsha, China.

[h=3]Abstract[/h] Influenza is a major public health concern, and the high mortality rate is largely attributed to secondary bacterial infections. There are several mechanisms through which the virus increases host susceptibility to bacterial colonization, but the micro-environment in lower respiratory tract (LRT) of host, infected with influenza virus, is unclear. To this end, we analyzed the LRT microbiome, transcriptome of lung and metabolome of bronchoalveolar lavage fluid (BALF) in mice inoculated intra-nasally with H1N1 to simulate human influenza, and we observed significant changes in the composition of microbial community and species diversity in the acute (7 days post inoculation or dpi), convalescent (14 dpi) and the recovery (28 dpi) periods. The dominant bacterial class shifted from Alphaproteobacteria to Gammaproteobacteria and Actinobacteria in the infected mice, with a significant increase in the relative abundance of anaerobes and facultative anaerobes like Streptococcus and Staphylococcus. The dysbiosis in the LRT of infected mice was not normalized even in the recovery phase of the infection. In addition, the infected lung transcriptome showed significant differences in the expression levels of genes associated with bacterial infection and immune responses. Finally, the influenza virus infection also resulted in significant changes in the metabolome of the BALF. These alterations in the microbiome, transcriptome, and metabolome of infected lungs were not only appeared at the acute period, but also observed at the recovery period. Furthermore, the infection of influenza virus induced a long-term effect in LRT micro-environmental homeostasis, which may give a chance for the invasion of potential pathogens.
Copyright ? 2019 Gu, Deng, Ren, Zhao, Yu, Guo, Dai, Chen, Li, Li and Wang.


[h=4]KEYWORDS:[/h] influenza virus; lower respiratory tract; metabolites; mice; microbiota; transcriptome

PMID: 31736922 PMCID: PMC6838016 DOI: 10.3389/fmicb.2019.02491
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