首页> 外文期刊>Scientific reports. >Molecular chaperone accumulation as a function of stress evidences adaptation to high hydrostatic pressure in the piezophilic archaeon Thermococcus barophilus
【24h】

Molecular chaperone accumulation as a function of stress evidences adaptation to high hydrostatic pressure in the piezophilic archaeon Thermococcus barophilus

机译:分子伴侣积累与压力的关系表明嗜压古细菌嗜热球菌对高静水压力的适应性

获取原文
           

摘要

The accumulation of mannosyl-glycerate (MG), the salinity stress response osmolyte of Thermococcales, was investigated as a function of hydrostatic pressure in Thermococcus barophilus strain MP, a hyperthermophilic, piezophilic archaeon isolated from the Snake Pit site (MAR), which grows optimally at 40?MPa. Strain MP accumulated MG primarily in response to salinity stress, but in contrast to other Thermococcales, MG was also accumulated in response to thermal stress. MG accumulation peaked for combined stresses. The accumulation of MG was drastically increased under sub-optimal hydrostatic pressure conditions, demonstrating that low pressure is perceived as a stress in this piezophile, and that the proteome of T. barophilus is low-pressure sensitive. MG accumulation was strongly reduced under supra-optimal pressure conditions clearly demonstrating the structural adaptation of this proteome to high hydrostatic pressure. The lack of MG synthesis only slightly altered the growth characteristics of two different MG synthesis deletion mutants. No shift to other osmolytes was observed. Altogether our observations suggest that the salinity stress response in T. barophilus is not essential and may be under negative selective pressure, similarly to what has been observed for its thermal stress response.
机译:研究了嗜热球菌的盐度应激反应渗透体甘露糖基甘油酸酯(MG​​)的积累与嗜热球菌嗜热菌MP(从蛇坑位点(MAR)分离的高嗜热,嗜压古细菌)中的静水压力的函数关系。在40?MPa。 MP菌株主要是在盐分胁迫下积累MG,但与其他热球菌相反,MG在热胁迫下也积累了MG。 MG积累达到峰值的组合应力。在亚最佳静水压条件下,MG的积累急剧增加,这表明低压被认为是该亲脂性细菌中的一种压力,而嗜热巴氏杆菌的蛋白质组对低压敏感。在超最佳压力条件下,MG的积累被大大减少,这清楚地证明了该蛋白质组对高静水压的结构适应性。 MG合成的缺乏仅稍微改变了两个不同的MG合成缺失突变体的生长特性。没有观察到向其他渗透物的转变。总的来说,我们的观察结果表明,嗜盐丁香球菌的盐度胁迫响应不是必需的,并且可能处于负选择压力下,类似于对其热胁迫响应所观察到的。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号