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Characterization of adaptive evolution strains for the development of triclosan resistance in Agrobacterium tumefaciens C58

Nathapol TasnawijitwongProgram in Environmental Toxicology, Chulabhorn Graduate InstituteBenya NontaleerakLaboratory of Biotechnology, Chulabhorn Research InstituteKwanrawee SirikanchanaMinistry of Higher Education, Science and Innovation of the Republic of UzbekistanJutamaad SatayavivadCenter of Excellence on Environmental Health and Toxicology (EHT), OPS, MHESIRojana SukchawalitProgram in Applied Biological Sciences, Chulabhorn Graduate InstituteS. MongkolsukCenter of Excellence on Environmental Health and Toxicology (EHT), OPS, MHESI
2026en
ABI

Abstract

ABSTRACT Agrobacterium tumefaciens, a soil bacterium, was used as a model organism to study the mechanisms of triclosan (TCS) resistance in environmental bacteria. Adaptive laboratory evolution tests were performed to select TCS-resistant strains by challenging a wild-type (WT) strain with increasing concentrations of TCS (8, 12, 16, and 20 µg/mL). Two high-dose-resistant strains, HDR-12a and HDR-20a, were isolated and used for detailed examination. In comparison to the minimum inhibitory concentration of the WT strain (10 µg/mL), HDR-12a (20 µg/mL), and HDR-20a (32 µg/mL) showed increased resistance to TCS. Whole-genome sequencing and transcriptomic analysis performed to identify mechanisms underlying the different degrees of TCS resistance among the two evolved A. tumefaciens strains revealed a nucleotide base change (missense mutation, Asn157Thr) in the transcriptional repressor triR gene as the key mechanism of TCS resistance in HDR-20a. This change reduced the DNA-binding ability of TriR, causing overexpression of the triABC operon that encodes the TCS-specific efflux pump. In contrast, HDR-12a had no mutation in the triR gene. HDR-12a exhibited transcriptomic changes in several genes involved in ATP-binding cassette (ABC) transporters and in the metabolism of sulfur, fatty acids, and carbohydrates. However, it remains unclear whether these transcriptomic changes are directly responsible for TCS resistance in HDR-12a. Both the TCS-adapted strains also showed increased resistance to chloramphenicol and erythromycin. Overall, these results demonstrate that TCS pollution in environmental hotspots can select for adaptive and cross-resistant bacteria. IMPORTANCE TCS is widely used as a preservative and disinfectant in many personal healthcare products. TCS is subsequently released into aquatic and terrestrial environments. The emergence and spread of multidrug-resistant pathogens from the use of antimicrobials like TCS and the misuse of antibiotic drugs now pose a serious global public health threat. Understanding how resistance develops has implications for preventing the emergence of antimicrobial resistance. The adapted TCS-resistant strains showed cross-resistance to chloramphenicol and erythromycin. This study provides insight into how environmental exposure to triclosan can drive adaptive and cross-resistance mechanisms in a soil bacterium, highlighting its relevance to environmental antimicrobial resistance and public health risk.

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