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Classification of Clinical Isolates of Klebsiella pneumoniae Based on Their in vitro Biofilm Forming Capabilities and Elucidation of the Biofilm Matrix Chemistry With Special Reference to the Protein Content

机译:基于肺炎克雷伯菌的体外生物膜形成能力和对生物膜基质化学的阐明特别是蛋白质含量的临床分离株分类

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摘要

Klebsiella pneumoniae is a human pathogen, capable of forming biofilms on abiotic and biotic surfaces. The limitations of the therapeutic options against Klebsiella pneumoniae is actually due to its innate capabilities to form biofilm and harboring determinants of multidrug resistance. We utilized a newer approach for classification of biofilm producing Klebsiella pneumoniae isolates and subsequently we evaluated the chemistry of its slime, more accurately its biofilm. We extracted and determined the amount of polysaccharides and proteins from representative bacterial biofilms. The spatial distribution of sugars and proteins were then investigated in the biofilm matrix using confocal laser scanning microscopy (CLSM). Thereafter, the extracted matrix components were subjected to sophisticated analysis incorporating Fourier transform infrared (FTIR) spectroscopy, nuclear magnetic resonance (NMR) spectroscopy, one-dimensional gel-based electrophoresis (SDS-PAGE), high performance liquid chromatography (HPLC), and MALDI MS/MS analysis. Besides, the quantification of its total proteins, total sugars, uronates, total acetyl content was also done. Results suggest sugars are not the only/major constituent of its biofilms. The proteins were harvested and subjected to SDS-PAGE which revealed various common and unique protein bands. The common band was excised and analyzed by HPLC. MALDI MS/MS results of this common protein band indicated the presence of different proteins within the biofilm. The 55 different proteins were identified including both cytosolic and membrane proteins. About 22 proteins were related to protein synthesis and processing while 15 proteins were identified related to virulence. Similarly, proteins related to energy and metabolism were 8 and those related to capsule and cell wall synthesis were 4. These results will improve our understanding of Klebsiella biofilm composition and will further help us design better strategies for controlling its biofilm such as techniques focused on weakening/targeting certain portions of the slime which is the most common building block of the biofilm matrix.
机译:肺炎克雷伯菌是一种人类病原体,能够在非生物和生物表面形成生物膜。实际上,针对肺炎克雷伯菌的治疗选择的局限性是由于其固有的形成生物膜的能力以及具有多药耐药性的决定因素。我们利用一种较新的方法对生产肺炎克雷伯菌的生物膜分离物进行分类,随后我们评估了其粘液的化学性质,更准确地评估了其生物膜的化学性质。我们从代表性细菌生物膜中提取并确定了多糖和蛋白质的量。然后使用共聚焦激光扫描显微镜(CLSM)研究生物膜基质中糖和蛋白质的空间分布。然后,对提取的基质成分进行复杂的分析,包括傅里叶变换红外(FTIR)光谱,核磁共振(NMR)光谱,一维凝胶电泳(SDS-PAGE),高效液相色谱(HPLC)和MALDI MS / MS分析。此外,还对其总蛋白,总糖,尿酸盐,总乙酰基含量进行了定量。结果表明糖不是其生物膜的唯一/主要成分。收获蛋白质并进行SDS-PAGE,揭示出各种常见和独特的蛋白质条带。切下公用带并通过HPLC分析。该共同蛋白带的MALDI MS / MS结果表明生物膜内存在不同蛋白。鉴定出55种不同的蛋白质,包括胞浆蛋白质和膜蛋白质。大约22种蛋白质与蛋白质合成和加工有关,而15种蛋白质与毒力有关。同样,与能量和代谢相关的蛋白质为8,与胶囊和细胞壁合成相关的蛋白质为4。这些结果将增进我们对克雷伯氏菌生物膜组成的了解,并将进一步帮助我们设计更好的策略来控制其生物膜,例如着重于弱化的技术。 /靶向粘液的某些部分,粘液是生物膜基质最常见的组成部分。

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