Copper induced augmentation of antibiotic resistance in Acinetobacter baumannii MCC 3114.

IF 4.1 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Biometals Pub Date : 2024-12-21 DOI:10.1007/s10534-024-00657-3
Ravi Chauhan, Hardi Patel, Bhavna Bhardwaj, Vijay Suryawanshi, Seema Rawat
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Abstract

Increasing antibiotic resistance among the common nosocomial pathogen i.e. Acinetobacter baumannii poses life threat to the health care workers as well as to the society. The dissemination of antibiotic resistance in this pathogen at an alarming rate could be not only due to the overuse of antibiotics but also due to the stress caused by exposure of bacterium to several environmental contaminants in their niches. In the present study, effect of copper stress on augmentation in the antibiotic resistance of A. baumannii MCC 3114 against three clinically used antibiotics was investigated along with the phenotypic and genotypic alterations in the cell. It induced 8, 44 and 22-fold increase in resistance against colistin, ciprofloxacin and levofloxacin, respectively. Moreover, the biofilm formation of adapted culture was significantly enhanced due to a dense EPS around the cell (as revealed by SEM images). The structural changes in EPS were demonstrated by FTIR spectroscopy. The adequate growth of adapted MCC 3114 despite increased level of ROS indicates its persistence in copper and ROS stress. The physiological alterations in cell viz., increased efflux pump activity and decreased membrane permeability was observed. Molecular analysis revealed increased expression of efflux pump related genes, oxidative stress genes, integron and antibiotic resistance genes. In sum, our study revealed that the exposure of the critical pathogen, A. baunmannii to copper in hospital settings and environmental reservoirs can impose adaptive pressure which may lead to genotypic as well phenotypic changes in cell resulting into the augmentation of antibiotic resistance.

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铜诱导鲍曼不动杆菌MCC 3114对抗生素的耐药性增强。
鲍曼不动杆菌是一种常见的医院病原菌,其抗生素耐药性的增加给医护人员和社会带来了生命威胁。抗生素耐药性在这种病原体中以惊人的速度传播,不仅可能是由于抗生素的过度使用,而且还可能是由于细菌在其生态位中暴露于几种环境污染物所造成的压力。在本研究中,研究了铜胁迫对鲍曼不动杆菌MCC 3114对3种临床常用抗生素的耐药性的影响,以及细胞表型和基因型的改变。对粘菌素、环丙沙星和左氧氟沙星的耐药性分别增加了8倍、44倍和22倍。此外,由于细胞周围有密集的EPS,适应培养的生物膜形成明显增强(如SEM图像所示)。用红外光谱分析证实了EPS的结构变化。尽管活性氧水平升高,但适应性MCC 3114仍有足够的生长,表明其在铜和活性氧胁迫下的持久性。观察到细胞的生理变化,即外排泵活性增加和膜通透性降低。分子分析显示外排泵相关基因、氧化应激基因、整合子和抗生素耐药基因的表达增加。总之,我们的研究表明,关键病原体鲍曼不动杆菌在医院环境和环境水库中暴露于铜可以施加适应性压力,这可能导致细胞基因型和表型变化,从而增强抗生素耐药性。
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来源期刊
Biometals
Biometals 生物-生化与分子生物学
CiteScore
5.90
自引率
8.60%
发文量
111
审稿时长
3 months
期刊介绍: BioMetals is the only established journal to feature the important role of metal ions in chemistry, biology, biochemistry, environmental science, and medicine. BioMetals is an international, multidisciplinary journal singularly devoted to the rapid publication of the fundamental advances of both basic and applied research in this field. BioMetals offers a forum for innovative research and clinical results on the structure and function of: - metal ions - metal chelates, - siderophores, - metal-containing proteins - biominerals in all biosystems. - BioMetals rapidly publishes original articles and reviews. BioMetals is a journal for metals researchers who practice in medicine, biochemistry, pharmacology, toxicology, microbiology, cell biology, chemistry, and plant physiology who are based academic, industrial and government laboratories.
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