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铜绿假单胞菌 AS1 与鲍曼不动杆菌 DR1 之间细胞-细胞相互作用的复杂性:代谢共生、生物膜形成和群体感应淬灭。

Complexity of cell-cell interactions between Pseudomonas sp. AS1 and Acinetobacter oleivorans DR1: metabolic commensalism, biofilm formation and quorum quenching.

机构信息

Division of Environmental Science and Ecological Engineering, Korea University, Seoul 136-713, Republic of Korea.

出版信息

Res Microbiol. 2012 Apr;163(3):173-81. doi: 10.1016/j.resmic.2011.12.003. Epub 2011 Dec 13.

Abstract

Acinetobacter oleivorans DR1 lacks an upper pathway for naphthalene degradation and cannot grow using naphthalene as sole carbon source; however, it is capable of growing under naphthalene-amended conditions in the presence of naphthalene-degrading Pseudomonas sp. AS1. ¹H-NMR spectroscopy, high-performance liquid chromatography and gene expression analyses showed that salicylate is a major secreted metabolic intermediate during naphthalene degradation by strain AS1 and that, in turn, it supports the growth of strain DR1. Interspecies biofilm formation, monitored using confocal laser scanning microscopy and microtiter assays, demonstrated that biofilm formation by strain AS1 increased dramatically in the presence of strain DR1 because of the exopolysaccharides generated by the latter. Furthermore, the metabolic commensal interaction of the two strains altered the initial attachment behavior of strain DR1 during biofilm formation. When this strain was cultivated alone under naphthalene-amended conditions, the cells immediately attached to the surface, probably due to the absence of usable substrates, whereas similar behavior was not observed in the mixed culture. This interspecies cell-cell interaction became more complex due to quenching of the quorum-sensing signal of strain DR1 by strain AS1. These complex metabolic and physiological interactions observed in mixed cultures suggest that interspecies interaction is more complicated than previously surmised.

摘要

寡养单胞菌 DR1 缺乏萘降解的上游途径,不能以萘作为唯一碳源生长;然而,在添加萘的条件下,在能够降解萘的假单胞菌 AS1 的存在下,它能够生长。¹H-NMR 光谱、高效液相色谱和基因表达分析表明,水杨酸是菌株 AS1 降解萘过程中主要分泌的代谢中间产物,而水杨酸反过来又支持菌株 DR1 的生长。使用共聚焦激光扫描显微镜和微量滴定板测定监测的种间生物膜形成表明,由于后者产生的胞外多糖,当菌株 AS1 存在时,菌株 AS1 的生物膜形成显著增加。此外,两种菌株的代谢共生相互作用改变了菌株 DR1 在生物膜形成过程中的初始附着行为。当该菌株在添加萘的条件下单独培养时,细胞立即附着在表面上,这可能是由于缺乏可用的底物,而在混合培养中没有观察到类似的行为。由于菌株 AS1 对菌株 DR1 的群体感应信号的淬灭,这种种间细胞-细胞相互作用变得更加复杂。在混合培养中观察到的这些复杂的代谢和生理相互作用表明,种间相互作用比之前推测的更为复杂。

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