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希登伯勒脱硫弧菌中的盐胁迫:一种综合基因组学方法。

Salt stress in Desulfovibrio vulgaris Hildenborough: an integrated genomics approach.

作者信息

Mukhopadhyay Aindrila, He Zhili, Alm Eric J, Arkin Adam P, Baidoo Edward E, Borglin Sharon C, Chen Wenqiong, Hazen Terry C, He Qiang, Holman Hoi-Ying, Huang Katherine, Huang Rick, Joyner Dominique C, Katz Natalie, Keller Martin, Oeller Paul, Redding Alyssa, Sun Jun, Wall Judy, Wei Jing, Yang Zamin, Yen Huei-Che, Zhou Jizhong, Keasling Jay D

机构信息

Virtual Institute of Microbial Stress and Survival, Physical Biosciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

出版信息

J Bacteriol. 2006 Jun;188(11):4068-78. doi: 10.1128/JB.01921-05.

Abstract

The ability of Desulfovibrio vulgaris Hildenborough to reduce, and therefore contain, toxic and radioactive metal waste has made all factors that affect the physiology of this organism of great interest. Increased salinity is an important and frequent fluctuation faced by D. vulgaris in its natural habitat. In liquid culture, exposure to excess salt resulted in striking elongation of D. vulgaris cells. Using data from transcriptomics, proteomics, metabolite assays, phospholipid fatty acid profiling, and electron microscopy, we used a systems approach to explore the effects of excess NaCl on D. vulgaris. In this study we demonstrated that import of osmoprotectants, such as glycine betaine and ectoine, is the primary mechanism used by D. vulgaris to counter hyperionic stress. Several efflux systems were also highly up-regulated, as was the ATP synthesis pathway. Increases in the levels of both RNA and DNA helicases suggested that salt stress affected the stability of nucleic acid base pairing. An overall increase in the level of branched fatty acids indicated that there were changes in cell wall fluidity. The immediate response to salt stress included up-regulation of chemotaxis genes, although flagellar biosynthesis was down-regulated. Other down-regulated systems included lactate uptake permeases and ABC transport systems. The results of an extensive NaCl stress analysis were compared with microarray data from a KCl stress analysis, and unlike many other bacteria, D. vulgaris responded similarly to the two stresses. Integration of data from multiple methods allowed us to develop a conceptual model for the salt stress response in D. vulgaris that can be compared to those in other microorganisms.

摘要

希登伯勒脱硫弧菌还原并因此容纳有毒和放射性金属废物的能力,使得所有影响该生物体生理机能的因素都备受关注。盐度增加是希登伯勒脱硫弧菌在其自然栖息地面临的一个重要且频繁的波动因素。在液体培养中,暴露于过量盐分导致希登伯勒脱硫弧菌细胞显著伸长。我们运用转录组学、蛋白质组学、代谢物分析、磷脂脂肪酸谱分析和电子显微镜的数据,采用系统方法来探究过量氯化钠对希登伯勒脱硫弧菌的影响。在本研究中,我们证明了诸如甘氨酸甜菜碱和四氢嘧啶等渗透保护剂的导入,是希登伯勒脱硫弧菌应对高离子胁迫的主要机制。几个外排系统也高度上调,ATP合成途径亦是如此。RNA和DNA解旋酶水平的增加表明盐胁迫影响了核酸碱基对的稳定性。分支脂肪酸水平的总体增加表明细胞壁流动性发生了变化。对盐胁迫的即时反应包括趋化基因的上调,尽管鞭毛生物合成被下调。其他下调的系统包括乳酸摄取通透酶和ABC转运系统。将广泛的氯化钠胁迫分析结果与氯化钾胁迫分析的微阵列数据进行比较,与许多其他细菌不同,希登伯勒脱硫弧菌对这两种胁迫的反应相似。整合来自多种方法的数据使我们能够构建一个希登伯勒脱硫弧菌盐胁迫反应的概念模型,该模型可与其他微生物的模型进行比较。

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