Faculty of Biology, Genetics and Experimental Bioinformatics, Schänzlestr. 1, University of Freiburg, D-79104 Freiburg, Germany.
Plant Physiology department, A.-Einstein-Str. 3, University of Rostock, Institute of Biological Sciences, D-18059 Rostock, Germany.
Environ Microbiol. 2018 Aug;20(8):2757-2768. doi: 10.1111/1462-2920.14079. Epub 2018 Mar 26.
In nature, microorganisms are exposed to multiple stress factors in parallel. Here, we investigated the response of the model cyanobacterium Synechocystis sp. PCC 6803 to simultaneous iron limitation and osmotic stresses. Iron is a major limiting factor for bacterial and phytoplankton growth in most environments. Thus, bacterial iron homeostasis is tightly regulated. In Synechocystis, it is mediated mainly by the transcriptional regulator FurA and the iron-stress activated RNA 1 (IsaR1). IsaR1 is an important riboregulator that affects the acclimation of the photosynthetic apparatus to iron starvation in multiple ways. Upon increases in salinity, Synechocystis responds by accumulating the compatible solute glucosylglycerol (GG). We show that IsaR1 overexpression causes a reduction in the de novo GG synthesis rate upon salt shock. We verified the direct interaction between IsaR1 and the 5'UTR of the ggpS mRNA, which in turn drastically reduced the de novo synthesis of the key enzyme for GG synthesis, glucosylglycerol phosphate synthase (GgpS). Thus, IsaR1 specifically interferes with the salt acclimation process in Synechocystis, in addition to its primary regulatory function. Moreover, the salt-stimulated GgpS production became reduced under parallel iron limitation in WT - an effect which is, however, attenuated in an isaR1 deletion strain. Hence, IsaR1 is involved in the integration of the responses to different environmental perturbations and slows the osmotic adaptation process in cells suffering from parallel iron starvation.
在自然界中,微生物同时面临着多种压力因素。在这里,我们研究了模式蓝藻集胞藻 PCC 6803 对同时缺铁和渗透胁迫的反应。铁是大多数环境中细菌和浮游植物生长的主要限制因素。因此,细菌的铁稳态受到严格调控。在集胞藻中,主要由转录调节因子 FurA 和铁应激激活 RNA 1(IsaR1)介导。IsaR1 是一种重要的核糖调节因子,通过多种方式影响光合作用器对缺铁的适应。当盐度增加时,集胞藻通过积累相容性溶质葡萄糖基甘油(GG)来响应。我们表明,IsaR1 过表达导致盐冲击时从头合成 GG 的速率降低。我们验证了 IsaR1 与 ggpS mRNA 的 5'UTR 之间的直接相互作用,这反过来又大大降低了 GG 合成的关键酶葡萄糖基甘油磷酸合酶(GgpS)的从头合成。因此,除了其主要的调节功能外,IsaR1 还特异性地干扰集胞藻的盐适应过程。此外,在 WT 中,平行缺铁会减少盐刺激的 GgpS 产生 - 然而,在 isaR1 缺失菌株中,这种效应会减弱。因此,IsaR1 参与了对不同环境扰动的反应的整合,并减缓了同时遭受缺铁的细胞的渗透适应过程。