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亚致死浓度铜对红假单胞菌光合器官的毒性损伤机制。

Mechanisms of sublethal copper toxicity damage to the photosynthetic apparatus of Rhodospirillum rubrum.

机构信息

Biology Centre of the Czech Academy of Sciences, Institute of Plant Molecular Biology, Department of Plant Biophysics & Biochemistry, Branišovská 31/1160, 370 05 České Budějovice, Czech Republic.

University of South Bohemia, Faculty of Science, Institute of Chemistry, Branišovská 1760, 370 05 České Budějovice, Czech Republic; Centre Algatech, Institute of Microbiology CAS, 37981 Třeboň, Czech Republic.

出版信息

Biochim Biophys Acta Bioenerg. 2019 Aug 1;1860(8):640-650. doi: 10.1016/j.bbabio.2019.06.004. Epub 2019 Jun 19.

Abstract

Magnesium (Mg) is the ubiquitous metal ion present in chlorophyll and bacteriochlorophyll (BChl), involved in photosystems in photosynthetic organisms. In the present study we investigated targets of toxic copper binding to the photosynthetic apparatus of the anoxygenic purple bacterium Rhodospirillum rubrum. This was done by a combination of in vivo measurements of flash photolysis and fast fluorescence kinetics combined with the analysis of metal binding to pigments and pigment-protein complexes isolated from Cu-stressed cells by HPLC-ICPMS (ICP-sfMS). This work concludes that R. rubrum is highly sensitive to Cu, with a strong inhibition of the photosynthetic reaction centres (RCs) already at 2 μM Cu. The inhibition of growth and of RC activity was related to the formation of Cu-containing BChl degradation products that occurred much more in the RC than in LH1. These results suggest that the shift of metal centres in BChl from Mg to Cu can occur in vivo in the RCs of R. rubrum under environmentally realistic Cu concentrations, leading to a strong inhibition of the function of these RCs.

摘要

镁(Mg)是叶绿素和细菌叶绿素(BChl)中普遍存在的金属离子,参与光合生物中的光系统。在本研究中,我们研究了有毒铜与厌氧紫色细菌红假单胞菌光合作用装置结合的靶标。这是通过体内测量闪光光解和快速荧光动力学的组合以及通过 HPLC-ICPMS(ICP-sfMS)分析从 Cu 胁迫细胞中分离的色素和色素-蛋白复合物与金属结合来完成的。这项工作得出的结论是,红假单胞菌对 Cu 非常敏感,在 2 μM Cu 时已经强烈抑制了光合作用反应中心(RCs)。生长和 RC 活性的抑制与形成 Cu 含量的 BChl 降解产物有关,这些产物在 RC 中比在 LH1 中发生得更多。这些结果表明,在环境现实的 Cu 浓度下,BChl 中的金属中心从 Mg 转移到 Cu 可以在体内发生在 R. rubrum 的 RC 中,导致这些 RC 功能受到强烈抑制。

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