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鞘氨醇醇生物合成基因在环境和临床伯克霍尔德氏菌菌株中的分布及鞘氨醇醇多糖在外源应激条件抗性中的作用。

Distribution of cepacian biosynthesis genes among environmental and clinical Burkholderia strains and role of cepacian exopolysaccharide in resistance to stress conditions.

机构信息

IBB-Instituto de Biotecnologia e Bioengenharia, Centro de Engenharia Biológica e Química, Instituto Superior Técnico, Av. Rovisco Pais, 1049-001 Lisbon, Portugal.

出版信息

Appl Environ Microbiol. 2010 Jan;76(2):441-50. doi: 10.1128/AEM.01828-09. Epub 2009 Nov 30.

Abstract

The genus Burkholderia includes strains pathogenic to animals and plants, bioremediators, or plant growth promoters. Genome sequence analyses of representative Burkholderia cepacia complex (Bcc) and non-Bcc strains for the presence of the bce-I gene cluster, directing the biosynthesis of the exopolysaccharide (EPS) cepacian, further extended this previously described cluster by another 9 genes. The genes in the bce-II cluster were named bceM to bceU and encode products putatively involved in nucleotide sugar precursor biosynthesis and repeat unit assembly, modification, and translocation across the cytoplasmic membrane. Disruption of the B. cepacia IST408 bceQ and bceR genes, encoding a putative repeat unit flippase and a glycosyltransferase, respectively, resulted in the abolishment of cepacian biosynthesis. A mutation in the bceS gene, encoding a putative acyltransferase, did not affect EPS production yield significantly but decreased its acetylation content by approximately 20%. Quantitative real-time reverse transcription-PCR experiments confirmed the induction of genes in the bce-I and bce-II clusters in a Burkholderia multivorans EPS producer clinical isolate in comparison to the level for its isogenic EPS-defective strain. Fourier Transform infrared spectroscopy analysis confirmed that the exopolysaccharide produced by 10 Burkholderia isolates tested was cepacian. The ability of Burkholderia strains to withstand desiccation and metal ion stress was higher when bacteria were incubated in the presence of 2.5 g/liter of cepacian, suggesting that this EPS plays a role in the survival of these bacteria by contributing to their ability to thrive in different environments.

摘要

伯克霍尔德氏菌属包括对动植物具有致病性、具有生物修复能力或能促进植物生长的菌株。对代表伯克霍尔德氏菌复合群(Bcc)和非 Bcc 菌株的基因组序列分析,发现了存在指导外多糖(EPS)cepacian 生物合成的 bce-I 基因簇,该基因簇进一步通过另外 9 个基因得到扩展。bce-II 簇中的基因被命名为 bceM 至 bceU,并编码假定参与核苷酸糖前体生物合成和重复单元组装、修饰以及穿过细胞质膜转运的产物。敲除 B. cepacia IST408 的 bceQ 和 bceR 基因,分别编码假定的重复单元翻转酶和糖基转移酶,导致 cepacian 生物合成被废除。bceS 基因(编码假定的酰基转移酶)突变并没有显著影响 EPS 产量,但将其乙酰化含量降低了约 20%。定量实时逆转录-PCR 实验证实,与同源 EPS 缺陷型菌株相比,在 Burkholderia multivorans EPS 产生临床分离株中,bce-I 和 bce-II 簇中的基因被诱导。傅里叶变换红外光谱分析证实,在所测试的 10 个 Burkholderia 分离株产生的外多糖是 cepacian。当细菌在 2.5 g/L cepacian 的存在下培养时,伯克霍尔德氏菌菌株耐受干燥和金属离子胁迫的能力更高,这表明这种 EPS 通过增强其在不同环境中生存的能力,在这些细菌的存活中发挥作用。

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