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.

Gut Pathogens
|October 13, 2022
PubMed
Abstract

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.

Related Concept Videos

Functions of the Gut Microbiota01:18

Functions of the Gut Microbiota

The gut microbiota includes trillions of microorganisms that colonize the human gastrointestinal tract, including bacteria, archaea, viruses, and fungi. This complex ecosystem plays a critical role in maintaining intestinal and systemic health. Most of these microbes inhabit the large intestine, establishing a relatively stable and diverse community that contributes to gut homeostasis through various metabolic, immunological, and protective mechanisms.Dominant bacterial phyla, such as...
Dysbiosis of the Gut Microbiota01:18

Dysbiosis of the Gut Microbiota

The human gut microbiome includes a diverse array of microbial species, including beneficial commensals and opportunistic pathogens, which interact to support host health. These microbes contribute to essential functions such as nutrient metabolism, immune system modulation, and maintenance of intestinal barrier integrity. However, disruptions to this equilibrium—referred to as dysbiosis—can have widespread physiological consequences.Dysbiosis is often characterized by reduced microbial...
Gut-Brain Axis01:22

Gut-Brain Axis

The gut–brain axis is a bidirectional communication system that connects the gastrointestinal tract and the brain. This interaction is mediated through multiple pathways, including the vagus nerve, hormonal signals, immune responses, and chemical messengers produced by gut microbes.Microbial Contributions to Brain FunctionGut microbiota contributes significantly to brain function by producing neuroactive compounds. These include neuroactive compounds that influence neurotransmitters such as...
Microbiota Modulation by Antibiotics01:21

Microbiota Modulation by Antibiotics

Antibiotics have revolutionized modern medicine by saving countless lives from bacterial infections. However, their widespread use has inadvertently harmed the delicate balance of the human gut microbiota. The gut microbiota, a complex community of bacteria, archaea, viruses, and fungi, plays a vital role in regulating metabolism, immune responses, and maintaining intestinal health. Antibiotics, especially broad-spectrum types, disrupt this ecosystem by eradicating both harmful and beneficial...