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Quantitative Polymerase Chain Reaction-based Analyses of Murine Intestinal Microbiota After Oral Antibiotic Treatment
Published on: November 17, 2018
Amoxicillin modulates gut microbiota to improve short-term high-fat diet induced pathophysiology in mice
Suresh Kumar1, V Samuel Raj2, Ayaan Ahmad3
1National Institute of Biologicals, Ministry of Health & Family Welfare, Govt. of India, Noida, 201309, India. suresh.kumar@nib.gov.in.
Background:
A high-fat diet (HFD) induced perturbation of gut microbiota is a major contributory factor to promote the pathophysiology of HFD-associated metabolic syndrome. The HFD could also increase the susceptibility to the microbial infections warranting the use of antibiotics which are independently capable of impacting both gut microbiota and metabolic syndrome. Further, the usage of antibiotics in individuals consuming HFD can impact mitochondrial function that can be associated with an elevated risk of chronic conditions like inflammatory bowel disease (IBD). Despite this high propensity to infections in individuals on HFD, the link between duration of HFD and antibiotic treatment, and its impact on diversity of the gut microbiome and features of metabolic syndrome is not well established. In this study, we have addressed these knowledge gaps by examining how the gut microbiota profile changes in HFD-fed mice receiving antibiotic intervention in the form of amoxicillin. We also determine whether antibiotic treatment in HFD-fed mice may adversely impact the ability of immune cells to clear microbial infections.
Methods And Results:
We have subjected mice to HFD and chow diet (CD) for 3 weeks, and a subset of these mice on both diets received antibiotic intervention in the form of amoxicillin in the 3rd week. Body weight and food intake were recorded for 3 weeks. After 21 days, all animals were weighted and sacrificed. Subsequently, these animals were evaluated for basic haemato-biochemical and histopathological attributes. We used 16S rRNA sequencing followed by bioinformatics analysis to determine changes in gut microbiota in these mice. We observed that a HFD, even for a short-duration, could successfully induce the partial pathophysiology typical of a metabolic syndrome, and substantially modulated the gut microbiota in mice. The short course of amoxicillin treatment to HFD-fed mice resulted in beneficial effects by significantly reducing fasting blood glucose and skewing the number of thrombocytes towards a normal range. Remarkably, we observed a significant remodelling of gut microbiota in amoxicillin-treated HFD-fed mice. Importantly, some gut microbes associated with improved insulin sensitivity and recovery from metabolic syndrome only appeared in amoxicillin-treated HFD-fed mice reinforcing the beneficial effects of antibiotic treatment in the HFD-associated metabolic syndrome. Moreover, we also observed the presence of gut-microbiota unique to amoxicillin-treated HFD-fed mice that are also known to improve the pathophysiology associated with metabolic syndrome. However, both CD-fed as well as HFD-fed mice receiving antibiotics showed an increase in intestinal pathogens as is typically observed for antibiotic treatment. Importantly though, infection studies with S. aureus and A. baumannii, revealed that macrophages isolated from amoxicillin-treated HFD-fed mice are comparable to those isolated from mice receiving only HFD or CD in terms of susceptibility, and progression of microbial infection. This finding clearly indicated that amoxicillin treatment does not introduce any additional deficits in the ability of macrophages to combat microbial infections.
Conclusions:
Our results showed that amoxicillin treatment in HFD-fed mice exert a beneficial influence on the pathophysiological attributes of metabolic syndrome which correlates with a significant remodelling of gut microbiota. A novel observation was the increase in microbes known to improve insulin sensitivity following amoxicillin treatment during short-term intake of HFD. Even though there is a minor increase in gut-resistant intestinal pathogens in amoxicillin-treated groups, there is no adverse impact on macrophages with respect to their susceptibility and ability to control infections. Taken together, this study provides a proof of principle for the exploration of amoxicillin treatment as a potential therapy in the people affected with metabolic syndrome.
Insights
Amoxicillin treatment in mice on a high-fat diet (HFD) improved metabolic syndrome symptoms and altered gut microbiota favorably. This suggests amoxicillin may be a potential therapy for metabolic syndrome, without compromising immune response to infections.
Area of Science:
- Microbiology
- Metabolic Syndrome Research
- Immunology
Background:
- High-fat diet (HFD) disrupts gut microbiota, contributing to metabolic syndrome and increased infection susceptibility.
- Antibiotic use in HFD individuals can impact microbiota, metabolic syndrome, and mitochondrial function, potentially increasing chronic disease risk.
- The relationship between HFD duration, antibiotic treatment, gut microbiome diversity, and metabolic syndrome features is not well understood.
Purpose of the Study:
- To investigate how gut microbiota profiles change in HFD-fed mice receiving amoxicillin.
- To determine if antibiotic treatment in HFD-fed mice affects immune cell ability to clear infections.
Main Methods:
- Mice were fed HFD or chow diet (CD) for 3 weeks, with amoxicillin administered during the final week.
- Evaluated body weight, food intake, hematology, biochemistry, and histopathology.
- 16S rRNA sequencing and bioinformatics analyzed gut microbiota changes.
- Infection studies assessed macrophage function against S. aureus and A. baumannii.
Main Results:
- Short-term HFD induced partial metabolic syndrome and modulated gut microbiota.
- Amoxicillin treatment in HFD-fed mice reduced fasting blood glucose and normalized thrombocyte counts.
- Significant gut microbiota remodeling occurred, with beneficial microbes associated with improved insulin sensitivity and metabolic syndrome recovery appearing.
- Amoxicillin treatment did not impair macrophage ability to combat microbial infections, despite a minor increase in intestinal pathogens.
Conclusions:
- Amoxicillin treatment beneficially influences metabolic syndrome in HFD-fed mice, correlating with gut microbiota remodeling.
- Novel microbes promoting insulin sensitivity were identified post-amoxicillin treatment in short-term HFD intake.
- Amoxicillin treatment showed no adverse impact on macrophage infection control, supporting its potential as a metabolic syndrome therapy.
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