LEPABE - Department of Chemical Engineering, Faculty of Engineering, University of Porto, Porto, Portugal.
Micalis Institute, INRA, AgroParisTech, Université Paris-Saclay, 78350 Jouy-en-Josas, France.
Int J Food Microbiol. 2018 Jul 20;277:74-82. doi: 10.1016/j.ijfoodmicro.2018.04.017. Epub 2018 Apr 12.
This work investigated the effects of diamond-like carbon (DLC) coatings on the architecture and biocide reactivity of dual-species biofilms mimicking food processing contaminants. Biofilms were grown using industrial isolates of Escherichia coli and Pantoea agglomerans on bare stainless steel (SST) and on two DLC surface coatings (a-C:H:Si:O designated by SICON® and a-C:H:Si designated by SICAN) in order to evaluate their antifouling activities. Quantification and spatial organization in single- and dual-species biofilms were examined by confocal laser scanning microscopy (CLSM) using a strain specific labelling procedure. Those assays revealed that the E. coli isolate exhibited a higher adhesion to the modified surfaces and a decreased susceptibility to disinfectant in presence of P. agglomerans than alone in axenic culture. While SICON® reduced the short-term growth of E. coli in axenic conditions, both DLC surfaces increased the E. coli colonization in presence of P. agglomerans. However, both modified surfaces triggered a significantly higher log reduction of E. coli cells within mixed-species biofilms, thus the use of SICON® and SICAN surfaces may be a good approach to facilitate the disinfection process in critical areas of food processing plants. This study presents a new illustration of the importance of interspecies interactions in surface-associated community functions, and of the need to evaluate the effectiveness of hygienic strategies with relevant multi-species consortia.
这项工作研究了类金刚石碳 (DLC) 涂层对模拟食品加工污染物的双物种生物膜结构和杀菌反应性的影响。生物膜是使用大肠杆菌和成团泛菌的工业分离株在裸露的不锈钢 (SST) 和两种 DLC 表面涂层 (用 SICON® 标记的 a-C:H:Si:O 和用 SICAN 标记的 a-C:H:Si) 上生长的,以评估它们的防污活性。通过使用针对特定菌株的标记程序的共聚焦激光扫描显微镜 (CLSM) 检查了单物种和双物种生物膜的定量和空间组织。这些测定表明,与单独在无菌培养物中相比,大肠杆菌分离株对改性表面的粘附性更高,对消毒剂的敏感性降低,而在存在 Pantoea agglomerans 的情况下。虽然 SICON® 减少了无菌条件下大肠杆菌的短期生长,但两种 DLC 表面都增加了大肠杆菌在存在 Pantoea agglomerans 时的定殖。然而,两种改性表面都在混合物种生物膜内触发了对大肠杆菌细胞的显著更高对数减少,因此使用 SICON® 和 SICAN 表面可能是促进食品加工厂关键区域消毒过程的一种好方法。本研究首次说明了种间相互作用在表面相关群落功能中的重要性,以及需要使用相关多物种联合体评估卫生策略的有效性。