Respiratory syncytial virus infection disrupts pulmonary microbiota to induce microglia phenotype shift
Ousman Bajinka1,2,3, Zhongxiang Tang1, Yu Mao1
1Department of Medical Microbiology, Xiangya School of Medicine, Central South University, Changsha, Hunan, China.
Abstract:
The lung-brain axis is an emerging biological pathway that is being investigated in relation to microbiome medicine. Increasing evidence suggests that pulmonary viral infections can lead to distinct pathological imprints in the brain, so there is a need to explore and understand this mechanism and find possible interventions. This study used respiratory syncytial virus (RSV) infection in mice as a model to establish the potential lung-brain axis phenomenon. We hypothesized that RSV infection could disrupt the lung microbiota, compromise immune barriers, and induce a significant shift in microglia phenotype. One week old mice were randomized into the control, Ampicillin, RSV, and RSV+Ampicillin treated groups (n = 6 each). Seven days after the respective treatments, the mice were anaesthetized. Immunofluorescence and real-time qRT-PCR was used to detect virus. Hematoxylin-eosin staining was used to detect histopathology. Malondialdehyde and superoxide dismutase were used to determine oxidative stress and antioxidant capacity. Real-time qRT-PCR and enzyme-linked immunosorbent assay (ELISA) were used to measure Th differentiation in the lung. Real-time qRT-PCR, ELISA, and confocal immunofluorescence were used to determine the microglia phenotype. 16S DNA technology was used to detect lung microflora. RSV infection induces elevated oxidative stress, reduced antioxidant, and significant dysbacteriosis in the lungs of mice. Pulmonary microbes were found to enhance Th1-type immunoreactivity induced by RSV infection and eventually induced M1-type dominant microglia in the brains of mice. This study was able to establish a correlation between the pulmonary microbiome and brain function. Therefore, we recommend a large sample size study with robust data analysis for the long-term effects of antibiotics and RSV infection on brain physiology.
Insights
Respiratory syncytial virus (RSV) infection disrupts the lung microbiome, leading to brain changes. This study highlights the lung-brain axis and suggests a link between pulmonary microbes and brain function.
Area of Science:
- Microbiome medicine
- Neuroimmunology
- Pulmonary infections
Background:
- The lung-brain axis is an emerging pathway linking lung health to brain function.
- Pulmonary viral infections may cause neurological pathology, necessitating investigation into underlying mechanisms.
- The role of the lung microbiome in mediating these effects is not well understood.
Purpose of the Study:
- To investigate the impact of respiratory syncytial virus (RSV) infection on the lung microbiome and its subsequent effects on the brain.
- To explore the potential disruption of lung microbiota, immune barriers, and microglia phenotype following RSV infection.
- To establish a correlation between pulmonary microbial changes and brain function.
Main Methods:
- Utilized a mouse model of RSV infection.
- Administered Ampicillin to assess antibiotic effects on the lung microbiome.
- Employed immunofluorescence, qRT-PCR, H&E staining, oxidative stress markers, ELISA, and 16S DNA sequencing to analyze lung and brain tissues.
Main Results:
- RSV infection led to lung dysbacteriosis, increased oxidative stress, and reduced antioxidant capacity.
- Pulmonary microbes exacerbated Th1-type immune responses and promoted M1-type microglia in the brain.
- Established a correlation between pulmonary microbiome alterations and brain microglia phenotype.
Conclusions:
- RSV infection significantly impacts the lung microbiome and influences brain microglia.
- The pulmonary microbiome plays a role in modulating the host immune response to viral infections, affecting the brain.
- Further research with larger sample sizes is recommended to understand long-term effects.
More Related Videos
09:01An In vitro Model to Study Immune Responses of Human Peripheral Blood Mononuclear Cells to Human Respiratory Syncytial Virus Infection
Published on: December 10, 2013
09:12Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
