首页> 外文OA文献 >Synchronous Effects of Temperature, Hydrostatic Pressure, and Salinity on Growth, Phospholipid Profiles, and Protein Patterns of Four Halomonas Species Isolated from Deep-Sea Hydrothermal- Vent and Sea Surface Environments
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Synchronous Effects of Temperature, Hydrostatic Pressure, and Salinity on Growth, Phospholipid Profiles, and Protein Patterns of Four Halomonas Species Isolated from Deep-Sea Hydrothermal- Vent and Sea Surface Environments

机译:温度,静水压力和盐度对分离自深海热液排放口和海面环境的四种卤单胞菌物种的生长,磷脂谱和蛋白质模式的同步影响

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摘要

Four strains of euryhaline bacteria belonging to the genus Halomonas were tested for their response to a range of temperatures (2, 13, and 30°C), hydrostatic pressures (0.1, 7.5, 15, 25, 35, 45, and 55 MPa), and salinities (4, 11, and 17% total salts). The isolates were psychrotolerant, halophilic to moderately halophilic, and piezotolerant, growing fastest at 30°C, 0.1 MPa, and 4% total salts. Little or no growth occurred at the highest hydrostatic pressures tested, an effect that was more pronounced with decreasing temperatures. Growth curves suggested that the Halomonas strains tested would grow well in cool to warm hydrothermal-vent and associated subseafloor habitats, but poorly or not at all under cold deep-sea conditions. The intermediate salinity tested enhanced growth under certain high-hydrostatic-pressure and low-temperature conditions, highlighting a synergistic effect on growth for these combined stresses. Phospholipid profiles obtained at 30°C indicated that hydrostatic pressure exerted the dominant control on the degree of lipid saturation, although elevated salinity slightly mitigated the increased degree of lipid unsaturation caused by increased hydrostatic pressure. Profiles of cytosolic and membrane proteins of Halomonas axialensis and H. hydrothermalis performed at 30°C under various salinities and hydrostatic pressure conditions indicated several hydrostatic pressure and salinity effects, including proteins whose expression was induced by either an elevated salinity or hydrostatic pressure, but not by a combination of the two. The interplay between salinity and hydrostatic pressure on microbial growth and physiology suggests that adaptations to hydrostatic pressure and possibly other stresses may partially explain the euryhaline phenotype of members of the genus Halomonas living in deep-sea environments.
机译:测试了属于盐单胞菌属的四种盐藻细菌对温度范围(2、13、30°C),静水压力(0.1、7.5、15、25、35、45和55 MPa)的响应和盐度(总盐分分别为4%,11%和17%)。分离株是耐精神病的,嗜盐的至中等嗜盐的和耐压电的,在30°C,0.1 MPa和4%的总盐下生长最快。在测试的最高静水压力下几乎没有或根本没有生长,随着温度降低,这种影响更加明显。生长曲线表明,所测试的Halomonas菌株将在凉爽至温暖的热液通风口和相关的海底生境中生长良好,但在寒冷的深海条件下则完全不生长或根本不生长。在某些高静水压力和低温条件下,测试中的盐度可促进生长,从而突出了这些综合胁迫对生长的协同作用。在30°C下获得的磷脂曲线表明,静水压对脂质饱和度起着主要的控制作用,尽管盐度的升高稍微减轻了静水压升高引起的脂质不饱和度的增加。在不同盐度和静水压力条件下于30°C进行的Halomonas axisensis和H.hydrothermalis的胞浆和膜蛋白的分布图表明了几种静水压力和盐度效应,包括其表达是由升高的盐度或静水压力诱导的蛋白,但不是通过两者的结合。盐度和静水压力对微生物生长和生理的相互作用表明,对静水压力和可能的其他压力的适应可能部分解释了生活在深海环境中的盐单胞菌属成员的胆碱表型。

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