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利用多通道微流控装置流系统评估营养浓度对生物膜结构的改变。

Assessment of change in biofilm architecture by nutrient concentration using a multichannel microdevice flow system.

机构信息

Institute of Plant Science and Resources, Okayama University, Kurashiki, Okayama, Japan.

出版信息

J Biosci Bioeng. 2013 Mar;115(3):326-31. doi: 10.1016/j.jbiosc.2012.09.018. Epub 2012 Oct 22.

Abstract

A new multichannel microdevice flow system with stainless steel flow chamber was used for architecture visualization, development monitoring and structural quantification of GFP-labeled Pseudomonas aeruginosa PAO1 live biofilms. Direct in situ investigations using confocal laser scanning microscopy (CLSM) at 72 h revealed structural pattern differences as a result of nutrient concentration gradients. When grown in LB medium, round, dispersed cellular aggregates were formed whereas in 1/3-diluted LB medium, biofilms were mostly flat and compact. However, COMSTAT analyses showed no considerable differences in biomass and thickness between the two LB concentrations. Characterization of time-dependent development of biofilms grown in 1/3-diluted LB medium showed full maturation of colonies by 120 h reaching maximum biomass at 17.1 μm(3)/μm(2) and average thickness at 44.4 μm. Consequent thinning and formation of openings through interior in colonies occurred by 168 h. These results suggest that the new system tested allowed a fast and thick biofilm development on the surface of the stainless steel flow chamber. These findings may provide better estimates of biofilm activity and systematic evaluation of the effects of different parameters on biofilm morphology and development in industrial and biomedical systems.

摘要

采用带有不锈钢流动池的新型多通道微流控装置,对 GFP 标记的铜绿假单胞菌 PAO1 活生物膜的结构可视化、发展监测和结构定量进行了研究。72 小时时使用共聚焦激光扫描显微镜(CLSM)进行的直接原位研究表明,由于营养浓度梯度的存在,结构模式存在差异。在 LB 培养基中生长时,形成了圆形、分散的细胞聚集体,而在 1/3 稀释的 LB 培养基中,生物膜大多是平坦且致密的。然而,COMSTAT 分析表明,两种 LB 浓度之间的生物量和厚度没有明显差异。在 1/3 稀释的 LB 培养基中生长的生物膜的时间依赖性发展的特征表明,通过 120 小时,菌落完全成熟,达到最大生物量 17.1μm(3)/μm(2)和平均厚度 44.4μm。通过 168 小时,内部的菌落变薄并形成开口。这些结果表明,所测试的新系统允许在不锈钢流动池表面快速形成厚生物膜。这些发现可以更好地估计生物膜的活性,并系统地评估不同参数对工业和生物医学系统中生物膜形态和发展的影响。

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