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Updated: Jun 7, 2025

Author Spotlight: Understanding and Detecting Environmental Antimicrobial Resistance by Combining Culture-Based Techniques and Genomics
Published on: July 19, 2024
A phenotypic study of the resistome in a peri-urban ecosystem
Ana Carmen González Román1, Amira Leila Dib2, Carmen María González Domenech3
1Preventive Medicine and Public Health Department, Faculty of Pharmacy, University of Granada, Granada, Andalusia, Spain.
Abstract:
Since the discovery of antibiotics, the dispersion of resistance genes has increased exponentially, leading to the current state in which it has become increasingly difficult to achieve an effective treatment for infectious diseases. The enormous capacity for genetic exchange between microorganisms is causing resistance genes to be able to reach all environments, even those where there is no anthropogenic impact or exposure to these drugs. In this work, a phenotypic study of the resistome has been conducted in a peri-urban ecosystem (Granada, Spain), wherein the resistance to 32 antibiotics of 710 bacterial strains isolated from 70 samples from different ecological niches with varying levels of exposure to antibiotics and anthropic action has been determined. The study of resistances using phenotypic procedures constitutes a very useful and complementary alternative to genomic methods. The obtained results show a high percentage of resistance in all the subsystems analysed, stating high multi-resistance profiles. Vancomycin and erythromycin were the antibiotics to which the highest levels of resistance were observed, whereas the lowest levels were obtained in chloramphenicol. Regarding the environments studied, the highest percentages of resistance were found in wastewater, farms and food. It should be noted that in natural soil samples (not exposed to antibiotics or anthropogenic activities), worrying levels of resistance to practically all the groups of antibiotics analysed were detected. These results support the generally accepted conclusion that an appropriate control and management of wastewater and solid waste that may contain antibiotics or resistant bacteria is really important to prevent the wide propagation of the resistome in the environment.
Insights
Antibiotic resistance genes are spreading widely, even in natural environments. This study found high multi-resistance in bacterial strains from various ecosystems, highlighting the urgent need for better waste management to curb resistome propagation.
Area of Science:
- Environmental microbiology
- Antimicrobial resistance
- One Health
Background:
- Antibiotic resistance gene (ARG) dispersion is a growing global health concern, complicating infectious disease treatment.
- Microbial genetic exchange facilitates ARG spread to diverse environments, including those without direct anthropogenic antibiotic exposure.
- Understanding the environmental resistome is crucial for developing effective mitigation strategies.
Purpose of the Study:
- To conduct a phenotypic study of antibiotic resistance in a peri-urban ecosystem.
- To determine resistance profiles of bacterial strains from various ecological niches with differing anthropogenic impacts.
- To assess the prevalence and patterns of antibiotic resistance in the environment.
Main Methods:
- Phenotypic analysis of antibiotic resistance.
- Isolation and characterization of 710 bacterial strains from 70 environmental samples.
- Testing resistance against 32 different antibiotics across diverse ecological niches.
Main Results:
- High percentages of multi-resistance were observed across all analyzed subsystems.
- Vancomycin and erythromycin showed the highest resistance levels; chloramphenicol showed the lowest.
- Wastewater, farms, and food exhibited the highest resistance, but concerning levels were also found in natural, unexposed soil samples.
Conclusions:
- Environmental antibiotic resistance is widespread and significant, even in pristine areas.
- Effective wastewater and solid waste management is critical to control resistome propagation.
- Phenotypic resistance studies offer a valuable complement to genomic approaches for environmental resistome assessment.

