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Updated: Feb 17, 2026

Antibiotic Dereplication Using the Antibiotic Resistance Platform
Published on: October 17, 2019
Pesticide degrading natural multidrug resistance bacterial flora
Kirubakaran Rangasamy1, Murugan Athiappan1, Natarajan Devarajan2
1Department of Microbiology, Periyar University, Salem, Tamil Nadu, India.
Abstract:
Multidrug-resistant (MDR) bacteria are a growing threat to humans across the world. Antibiotic resistance is a global problem that has developed through continuous antibiotic use, combinatorial antibiotic use, pesticide-antibiotic cross-resistance, and horizontal gene transfer, as well as various other modes. Pesticide-antibiotic cross-resistance and the subsequent expansion of drug-resistant bacteria are critically documented in this review, the primary focus of which is to assess the impact of indiscriminate pesticide use on the development of microbial communities with parallel pesticide and multidrug resistance. The consumption of pesticide-contaminated food products and the use of broad-spectrum antibiotics by humans and in livestock animals have favored the development of both antibiotic and pesticide-resistant bacterial flora via natural selection. Pesticide resistance mainly develops through defensive bacterial adaptations such as biofilm formation, induced mutations, and horizontal/vertical gene transfer through plasmids or transposons, as well as through the increased expression of certain hydrolytic enzymes. Pesticide resistance genes are always transferred as gene clusters, and they may also carry genes essential for antibiotic resistance. Moreover, for some induced mutations, the mutated active site of the affected enzyme may allow degradation of both pesticides and antibiotics, resulting in cross-resistance. A few studies have shown that the sub-lethal exposure of wild-type strains to herbicides induces antibiotic resistance. This review concludes that xenobiotic exposure leads to cross-resistance in wild microbial flora, which requires further study to develop therapeutic approaches to overcome the threats of MDR bacteria and superbugs.
Insights
Indiscriminate pesticide use promotes the spread of multidrug-resistant (MDR) bacteria by fostering pesticide-antibiotic cross-resistance in microbial communities. This natural selection process threatens global health, necessitating further research into therapeutic strategies against MDR bacteria.
Area of Science:
- Microbiology
- Environmental Science
- Public Health
Background:
- Multidrug-resistant (MDR) bacteria pose a significant global health threat.
- Antibiotic resistance arises from various factors including continuous antibiotic use and horizontal gene transfer.
- Pesticide-antibiotic cross-resistance is a critical, under-examined driver of MDR bacteria expansion.
Purpose of the Study:
- To review and assess the impact of indiscriminate pesticide use on developing microbial communities with parallel pesticide and multidrug resistance.
- To document the mechanisms and extent of pesticide-antibiotic cross-resistance.
- To highlight the role of natural selection in promoting resistant bacterial flora.
Main Methods:
- Literature review focusing on studies documenting pesticide-antibiotic cross-resistance.
- Analysis of bacterial adaptations contributing to pesticide resistance (e.g., biofilm formation, gene transfer).
- Examination of xenobiotic exposure effects on microbial resistance profiles.
Main Results:
- Pesticide use, contaminated food, and antibiotic use in humans/livestock select for resistant bacterial flora.
- Bacterial adaptations like gene cluster transfer and induced mutations can confer resistance to both pesticides and antibiotics.
- Sub-lethal herbicide exposure has been shown to induce antibiotic resistance in bacterial strains.
Conclusions:
- Xenobiotic exposure, particularly from pesticides, leads to cross-resistance in wild microbial flora.
- This cross-resistance contributes to the proliferation of multidrug-resistant bacteria and superbugs.
- Further research is crucial for developing effective therapeutic approaches against these evolving threats.
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