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对有助于伯克霍尔德菌生物膜形成的基因进行全基因组规模分析,鉴定出一个关键的胞外多糖生物合成基因簇。

Genome-scale analysis of the genes that contribute to Burkholderia pseudomallei biofilm formation identifies a crucial exopolysaccharide biosynthesis gene cluster.

作者信息

Borlee Grace I, Plumley Brooke A, Martin Kevin H, Somprasong Nawarat, Mangalea Mihnea R, Islam M Nurul, Burtnick Mary N, Brett Paul J, Steinmetz Ivo, AuCoin David P, Belisle John T, Crick Dean C, Schweizer Herbert P, Borlee Bradley R

机构信息

Department of Microbiology, Immunology and Pathology, Colorado State University, Fort Collins, Colorado, United States of America.

Department of Molecular Genetics and Microbiology, University of Florida, Gainesville, Florida, United States of America.

出版信息

PLoS Negl Trop Dis. 2017 Jun 28;11(6):e0005689. doi: 10.1371/journal.pntd.0005689. eCollection 2017 Jun.

Abstract

Burkholderia pseudomallei, the causative agent of melioidosis, is an important public health threat due to limited therapeutic options for treatment. Efforts to improve therapeutics for B. pseudomallei infections are dependent on the need to understand the role of B. pseudomallei biofilm formation and its contribution to antibiotic tolerance and persistence as these are bacterial traits that prevent effective therapy. In order to reveal the genes that regulate and/or contribute to B. pseudomallei 1026b biofilm formation, we screened a sequence defined two-allele transposon library and identified 118 transposon insertion mutants that were deficient in biofilm formation. These mutants include transposon insertions in genes predicted to encode flagella, fimbriae, transcriptional regulators, polysaccharides, and hypothetical proteins. Polysaccharides are key constituents of biofilms and B. pseudomallei has the capacity to produce a diversity of polysaccharides, thus there is a critical need to link these biosynthetic genes with the polysaccharides they produce to better understand their biological role during infection. An allelic exchange deletion mutant of the entire B. pseudomallei biofilm-associated exopolysaccharide biosynthetic cluster was decreased in biofilm formation and produced a smooth colony morphology suggestive of the loss of exopolysaccharide production. Conversely, deletion of the previously defined capsule I polysaccharide biosynthesis gene cluster increased biofilm formation. Bioinformatics analyses combined with immunoblot analysis and glycosyl composition studies of the partially purified exopolysaccharide indicate that the biofilm-associated exopolysaccharide is neither cepacian nor the previously described acidic exopolysaccharide. The biofilm-associated exopolysaccharide described here is also specific to the B. pseudomallei complex of bacteria. Since this novel exopolysaccharide biosynthesis cluster is retained in B. mallei, it is predicted to have a role in colonization and infection of the host. These findings will facilitate further advances in understanding the pathogenesis of B. pseudomallei and improve diagnostics and therapeutic treatment strategies.

摘要

类鼻疽杆菌是类鼻疽病的病原体,由于治疗选择有限,它对公众健康构成了重大威胁。改善类鼻疽杆菌感染治疗方法的努力取决于了解类鼻疽杆菌生物膜形成的作用及其对抗生素耐受性和持续性的影响,因为这些细菌特性会阻碍有效治疗。为了揭示调控和/或促成类鼻疽杆菌1026b生物膜形成的基因,我们筛选了一个序列定义的双等位基因转座子文库,并鉴定出118个生物膜形成缺陷的转座子插入突变体。这些突变体包括转座子插入到预测编码鞭毛、菌毛、转录调节因子、多糖和假定蛋白的基因中。多糖是生物膜的关键成分,类鼻疽杆菌有能力产生多种多糖,因此迫切需要将这些生物合成基因与其产生的多糖联系起来,以更好地了解它们在感染过程中的生物学作用。类鼻疽杆菌整个生物膜相关胞外多糖生物合成簇的等位基因交换缺失突变体生物膜形成减少,产生了光滑的菌落形态,提示胞外多糖产生减少。相反,先前定义的荚膜I多糖生物合成基因簇的缺失增加了生物膜的形成。生物信息学分析、免疫印迹分析和部分纯化的胞外多糖的糖基组成研究表明,生物膜相关胞外多糖既不是cepacian也不是先前描述的酸性胞外多糖。这里描述的生物膜相关胞外多糖也是类鼻疽杆菌复合菌群特有的。由于这个新的胞外多糖生物合成簇在鼻疽杆菌中保留,预计它在宿主定殖和感染中起作用。这些发现将有助于在理解类鼻疽杆菌发病机制方面取得进一步进展,并改善诊断和治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f454/5507470/b72ebb8dbd2d/pntd.0005689.g001.jpg

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