Guangdong Provincial Key Laboratory of Microbial Culture Collection and Application, State Key Laboratory of Applied Microbiology Southern China, Institute of Microbiology, Guangdong Academy of Sciences, Guangzhou 510070, China.
Guangdong Provincial Key Laboratory of Microbial Culture Collection and Application, State Key Laboratory of Applied Microbiology Southern China, Institute of Microbiology, Guangdong Academy of Sciences, Guangzhou 510070, China.
Sci Total Environ. 2023 Dec 15;904:166749. doi: 10.1016/j.scitotenv.2023.166749. Epub 2023 Sep 1.
The variation in nutrient content across diverse environments has a significant impact on the survival and metabolism of microorganisms. In this study, we examined the influence of nutrients on the antibiotic tolerance of the PAO1 strain of Pseudomonas aeruginosa. Our findings indicate that under nutrient-rich conditions, this strain exhibited relatively high tolerance to ceftazidime, chloramphenicol, and tetracycline, but not aminoglycosides and fluoroquinolones. Transcriptome analysis revealed that genes associated with antibiotic tolerance were expressed more efficiently in nutrient-rich media, including ribosomal protein genes and multidrug efflux pump genes, which conferred higher tetracycline tolerance to the strain. Furthermore, the genes responsible for translation, biosynthesis, and oxidative phosphorylation were suppressed when nutrients were limited, resulting in decreased metabolic activity and lower sensitivity to ciprofloxacin. Artificial interference with ATP synthesis utilizing arsenate confirmed that the curtailment of energy provision bolstered the observed tolerance to ciprofloxacin. In general, our results indicate that this strain of P. aeruginosa tends to activate its intrinsic resistance mechanisms in nutrient-rich environments, thereby enhancing resistance to certain antibiotics. Conversely, in nutrient-limited environments, the strain is more likely to enter a dormant state, which enables it to tolerate antibiotics to which it would otherwise be sensitive. These findings further suggest that antibiotics released in environments with varying eutrophication levels may have divergent effects on the development of bacterial antibiotic resistance.
不同环境中营养成分的变化会对微生物的生存和代谢产生重大影响。在这项研究中,我们研究了营养物质对铜绿假单胞菌 PAO1 菌株对抗生素耐药性的影响。我们的研究结果表明,在营养丰富的条件下,该菌株对头孢他啶、氯霉素和四环素表现出相对较高的耐受性,但对氨基糖苷类和氟喹诺酮类药物的耐受性较低。转录组分析表明,与抗生素耐受性相关的基因在富含营养的培养基中表达效率更高,包括核糖体蛋白基因和多药外排泵基因,这些基因赋予了该菌株更高的四环素耐受性。此外,当营养物质有限时,负责翻译、生物合成和氧化磷酸化的基因受到抑制,导致代谢活性降低,对环丙沙星的敏感性降低。利用砷酸盐对 ATP 合成进行人工干扰证实,能量供应的减少增强了对环丙沙星的观察到的耐受性。总的来说,我们的研究结果表明,这种铜绿假单胞菌菌株倾向于在营养丰富的环境中激活其内在的耐药机制,从而增强对某些抗生素的耐药性。相反,在营养有限的环境中,该菌株更有可能进入休眠状态,从而使其能够耐受原本敏感的抗生素。这些发现进一步表明,在富营养化水平不同的环境中释放的抗生素可能对细菌抗生素耐药性的发展产生不同的影响。