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Investigating the Effects of Probiotics on Pneumococcal Colonization Using an In Vitro Adherence Assay
Published on: April 28, 2014
Microcella aerolata GA224 exhibits preventive potential against Streptococcus pneumoniae infection via the gut-lung
Ningqianzi Tang1, Yimin Pan2, Zicheng Jin1
1Department of Environmental Health, Guangdong Provincial Key Laboratory of Tropical Disease Research, School of Public Health, Southern Medical University, Guangzhou, 510515, People's Republic of China.
Abstract:
Antibiotics and vaccines have long been major key interventions against Streptococcus pneumoniae (Spn) infection. However, alternative therapies are urgently needed with the original therapies becoming suboptimal efficacy. A beneficial bacterium, Microcella aerolata strain GA224, with protective potential against Spn infection was isolated in previous study. Here, this protective effect was investigated at the bacterial, cellular and animal levels, exploring the mechanisms from the perspective of the gut-lung axis. Cellular and animal models of Spn infection were established and GA224 was administered for prevention or treatment. Spn adherence, inflammatory gene expression, histopathological features, gut microbial profiles and fecal metabolomic signatures were examined. In vitro, GA224 inhibited Spn growth with a bacteriostatic diameter of 16 mm and reduced adherence by 83.4% (P < 0.01) in prevention groups, while suppressing inflammatory gene expression (IL-1β, IL-6, TNF-α) by 40-50% (P < 0.001) in Spn-infected cells. In Spn-infected rats, GA224 intranasal administration improved body weight gain by 8.2% (vs. Tre group + 3.7%, P < 0.05) and reduced lung injury score by 25% (P < 0.01). In addition, GA224 administration alleviated dysbiosis of the gut microbiota, including declined abundance of Ruminiclostridium and Roseburia, increased abundance of Ruminococcus and restricted out-migration of infectious bacteria. In terms of the fecal metabolism, differential metabolites and disordered metabolic pathways were altered by GA224, including glycine, serine and threonine metabolism and pentose and glucuronate interconversion. Intestinal bacteria showed multiple correlations with fecal metabolites with strongest correlation founding between Ruminococcus and oxidized phospholipids. Notably, Anaerotaenia (r = -0.67 with LysoPC), Ruminiclostridium (positively correlated with lung coefficient, r = 0.62) and Ruminococcus (strongest correlation with oxidized phospholipids, r = 0.8) demonstrated microbiota-metabolite interactions potentially mediating gut-lung axis regulation.Finally, we demonstrate that M. aerolata GA224 provided a protective potential against Spn infection. In addition to the inhibition in adherence and inflammation, remodeling gut microbiota and improving metabolism via the gut-lung axis may be the critical avenue to this protective effect.
Insights
Microcella aerolata strain GA224 shows protective potential against Streptococcus pneumoniae (Spn) infection by inhibiting bacterial growth and reducing inflammation. This beneficial bacterium modulates the gut microbiota and metabolism, highlighting the gut-lung axis in its therapeutic effect.
Area of Science:
- Microbiology
- Immunology
- Gastroenterology
Background:
- Antibiotics and vaccines are primary interventions against Streptococcus pneumoniae (Spn) infections.
- Suboptimal efficacy of current therapies necessitates the development of alternative treatments.
- Microcella aerolata strain GA224, a beneficial bacterium, has demonstrated potential protective effects against Spn.
Purpose of the Study:
- To investigate the protective effects of Microcella aerolata strain GA224 against Spn infection at bacterial, cellular, and animal levels.
- To explore the underlying mechanisms of protection, focusing on the gut-lung axis.
- To evaluate the impact of GA224 on Spn adherence, inflammation, gut microbiota, and fecal metabolism.
Main Methods:
- Establishment of cellular and animal models for Spn infection.
- Administration of GA224 for prevention or treatment of Spn infection.
- Assessment of Spn adherence, inflammatory gene expression (IL-1β, IL-6, TNF-α), histopathological features, gut microbial profiles, and fecal metabolomic signatures.
Main Results:
- In vitro, GA224 inhibited Spn growth and reduced bacterial adherence.
- GA224 suppressed inflammatory gene expression in infected cells.
- In vivo, GA224 improved body weight gain and reduced lung injury in infected rats.
- GA224 administration alleviated gut microbiota dysbiosis and altered fecal metabolic pathways.
- Identified microbiota-metabolite interactions potentially mediating gut-lung axis regulation.
Conclusions:
- Microcella aerolata strain GA224 exhibits protective potential against Spn infection.
- GA224 exerts its effects by inhibiting bacterial adherence and inflammation.
- Modulation of gut microbiota and metabolism via the gut-lung axis is a critical mechanism for GA224's protective effect.
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