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Atomic Force Microscopy Investigation of the Morphology and Topography of Colistin-Heteroresistant Acinetobacter baumannii Strains as a Function of Growth Phase and in Response to Colistin Treatment

机译:Colistin-耐异鲍曼不动杆菌菌株的形态和形貌的原子力显微镜研究作为生长期和对Colistin处理的反应

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摘要

The prevalence of infections caused by multidrug-resistant gram-negative Acinetobacter baumannii strains and the lack of novel antibiotics under development are posing a global dilemma, forcing a resurgence of the last-line antibiotic colistin. Our aim was to use atomic force microscopy (AFM) to investigate the morphology and topography of paired colistin-susceptible and -resistant cells from colistin-heteroresistant A. baumannii strains as a function of bacterial growth phase and colistin exposure. An optimal AFM bacterial sample preparation protocol was established and applied to examine three paired strains. Images revealed rod-shaped colistin-susceptible cells (1.65 ± 0.27 μm by 0.98 ± 0.07 μm) at mid-logarithmic phase, in contrast to spherical colistin-resistant cells (1.03 ± 0.09 μm); the latter were also more diverse in appearance and exhibited a rougher surface topography (7.05 ± 1.3 nm versus 11.4 ± 2.5 nm for susceptible versus resistant, respectively). Cellular elongation up to ∼18 μm at stationary phase was more commonly observed in susceptible strains, although these “worm-like” cells were also observed occasionally in the resistant population. The effects of colistin exposure on the cell surface of colistin-susceptible and -resistant cells were found to be similar; topographical changes were minor in response to 0.5 μg/ml colistin; however, at 4 μg/ml colistin, a significant degree of surface disruption was detected. At 32 μg/ml colistin, cellular clumping and surface smoothening were evident. Our study has demonstrated for the first time substantial morphological and topographical differences between colistin-susceptible and -resistant cells from heteroresistant A. baumannii strains. These results contribute to an understanding of colistin action and resistance in regard to this problematic pathogen.
机译:由多重耐药的革兰氏阴性不动杆菌鲍曼不动杆菌菌株引起的感染流行和正在开发的新型抗生素的缺乏构成了一个全球难题,迫使最后一线抗生素大肠菌素复活。我们的目标是使用原子力显微镜(AFM)来研究成纤维细胞对大肠杆菌耐药的鲍曼不动杆菌菌株的成对大肠杆菌敏感和耐药细胞的形态和形貌与细菌生长期和大肠杆菌暴露的关系。建立了最佳的AFM细菌样品制备方案并将其应用于检查三对菌株。图像显示在对数中期,杆状粘菌素敏感细胞(1.65±0.27μmx 0.98±0.07μm),而球形粘菌素耐药细胞(1.03±0.09μm)则相反;后者的外观也更加多样化,并且显示出更粗糙的表面形貌(易感性与抗性分别为7.05±1.3 nm和11.4±2.5 nm)。在易感菌株中更常观察到固定相细胞伸长至约18μm,尽管在抗性种群中偶尔也观察到这些“蠕虫状”细胞。发现粘菌素对粘菌素敏感和抗性细胞的细胞表面的影响是相似的。响应0.5μg/ ml大肠菌素,地形变化很小。但是,在4μg/ ml大粘菌素下,检测到明显程度的表面破坏。在大肠杆菌菌素为32μg/ ml时,细胞团块和表面平滑度很明显。我们的研究首次证明了来自异抗性鲍曼不动杆菌菌株的粘菌素敏感性细胞和抗性细胞之间的形态学和地形学差异。这些结果有助于对这种问题病原体的粘菌素作用和抗性的理解。

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