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Calcium-mediated modulation of Pseudomonas fluorescens biofilm formation

生物膜 荧光假单胞菌 群体感应 群集运动 生物化学 微生物学 生物 小桶 化学 基因 细胞生物学 细菌 基因表达 遗传学 转录组
作者
Lei Yuan,Yanhe Zhang,Zizhuo Mi,Xiangfeng Zheng,Shuo Wang,Huaxiang Li,Zhenquan Yang
出处
期刊:Journal of Dairy Science [Elsevier BV]
卷期号:107 (4): 1950-1966 被引量:6
标识
DOI:10.3168/jds.2023-23860
摘要

Biofilm formation is usually affected by many environmental factors including divalent cations. The purpose of the current work was to analyze how calcium (Ca2+) affects the biofilm formation of dairy Pseudomonas fluorescens isolates by investigating their growth, swarming motility, biofilm-forming capacity, EPS production, and biofilm structures. Moreover, the regulation mechanism of Ca2+ involved in its biofilm formation was explored through RNA-sequencing analysis. This work revealed that supplementation of 5, 10, 15, and 20 mM Ca2+ significantly reduced the swarming motility of P. fluorescens strains (P.F2, P.F4, and P.F17), but the biofilm-forming ability and polysaccharide production were increased after the supplementation of 5 and 10 mM Ca2+. By the supplementation of Ca2+, complex structures with more cell clusters glued together in P. fluorescens P.F4 biofilms were confirmed by scanning electron microscopy, and increased biomass and coverage of P. fluorescens P.F4 biofilms were observed by confocal laser scanning microscopy. In addition, RNA-sequencing results showed that P. fluorescens P.F4 showed a transcriptional response to the supplementation of 10 mM Ca2+, and a total of 137 genes were significantly expressed. The differential genes were represented in 4 upregulated KEGG pathways (nonribosomal peptide structures, quorum sensing, biosynthesis of siderophore group nonribosomal peptides, and phenylalanine metabolism), and 4 downregulated KEGG pathways (flagellar assembly, amino sugar and nucleotide sugar metabolism, nitrotoluene degradation, and cationic antimicrobial peptide (CAMP) resistance). The results indicate that Ca2+ might serve as an enhancer to substantially trigger the biofilm formation of dairy P. fluorescens isolates in the dairy industry.
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