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铜绿假单胞菌菌膜形成过程中鞭毛、IV 型菌毛、生物表面活性剂和胞外聚合物质多糖的作用。

Role of Flagella, Type IV Pili, Biosurfactants, and Extracellular Polymeric Substance Polysaccharides on the Formation of Pellicles by Pseudomonas aeruginosa.

机构信息

Department of Mechanical Engineering , Texas Tech University , Lubbock 79409 , United States.

出版信息

Langmuir. 2019 Apr 16;35(15):5294-5304. doi: 10.1021/acs.langmuir.9b00271. Epub 2019 Apr 2.

Abstract

Microbial biofilms are viscoelastic materials formed by bacteria, which occur on solid surfaces, at liquid interfaces, or in free solution. Although solid surface biofilms have been widely studied, pellicles, biofilms at liquid interfaces, have had significantly less focus. In this work, interfacial shear rheology and scanning electron microscopy imaging are used to characterize how flagella, type IV pili, biosurfactants, and extracellular polymeric substance polysaccharides affect the formation of pellicles by Pseudomonas aeruginosa at an air/water interface. Pellicles still form with the loss of a single biological attachment mechanism, which is hypothesized to be due to surface tension-aided attachment. Changes in the surface structure of the pellicles are observed when changing both the function/structure of type IV pili, removing the flagella, or stopping the expression of biosurfactants. However, these changes do not appear to affect pellicle elasticity in a consistent way. Traits that affect adsorption and growth/spreading appear to affect pellicles in a manner consistent with literature results for solid surface biofilms; small differences are seen in attachment-related mechanisms, which may occur due to surface tension.

摘要

微生物生物膜是由细菌形成的粘弹性材料,存在于固体表面、液体界面或游离溶液中。尽管已经广泛研究了固体表面生物膜,但液体界面上的菌膜却受到的关注较少。在这项工作中,使用界面剪切流变学和扫描电子显微镜成像来表征鞭毛、IV 型菌毛、生物表面活性剂和胞外聚合物多糖如何影响铜绿假单胞菌在气/水界面形成菌膜。即使失去了单一的生物附着机制,菌膜仍然可以形成,这一机制假设是由于表面张力辅助附着。当改变 IV 型菌毛的功能/结构、去除鞭毛或停止生物表面活性剂的表达时,菌膜的表面结构会发生变化。然而,这些变化似乎并没有以一致的方式影响菌膜的弹性。影响吸附和生长/扩散的特性似乎以与固体表面生物膜文献结果一致的方式影响菌膜;在与附着相关的机制上存在细微差异,这可能是由于表面张力所致。

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