首页> 外文期刊>The Plant Cell >Subunit organization of a Synechocystis hetero-oligomeric thylakoid FtsH complex involved in photosystem II repair.
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Subunit organization of a Synechocystis hetero-oligomeric thylakoid FtsH complex involved in photosystem II repair.

机译:参与光系统II修复的集胞藻杂-低聚类囊体FtsH复合物的亚基组织。

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FtsH metalloproteases are key components of the photosystem II (PSII) repair cycle, which operates to maintain photosynthetic activity in the light. Despite their physiological importance, the structure and subunit composition of thylakoid FtsH complexes remain uncertain. Mutagenesis has previously revealed that the four FtsH homologs encoded by the cyanobacterium Synechocystis sp PCC 6803 are functionally different: FtsH1 and FtsH3 are required for cell viability, whereas FtsH2 and FtsH4 are dispensable. To gain insights into FtsH2, which is involved in selective D1 protein degradation during PSII repair, we used a strain of Synechocystis 6803 expressing a glutathione S-transferase (GST)-tagged derivative (FtsH2-GST) to isolate FtsH2-containing complexes. Biochemical analysis revealed that FtsH2-GST forms a hetero-oligomeric complex with FtsH3. FtsH2 also interacts with FtsH3 in the wild-type strain, and a mutant depleted in FtsH3, like ftsH2- mutants, displays impaired D1 degradation. FtsH3 also forms a separate heterocomplex with FtsH1, thus explaining why FtsH3 is more important than FtsH2 for cell viability. We investigated the structure of the isolated FtsH2-GST/FtsH3 complex using transmission electron microscopy and single-particle analysis. The three-dimensional structural model obtained at a resolution of 26 A revealed that the complex is hexameric and consists of alternating FtsH2/FtsH3 subunits.
机译:FtsH金属蛋白酶是光系统II(PSII)修复周期的关键组成部分,该周期可维持光的光合作用。尽管它们的生理重要性,类囊体FtsH复合物的结构和亚基组成仍然不确定。诱变以前已经揭示了由蓝藻集胞藻属PCC 6803编码的四个FtsH同源物在功能上是不同的:FtsH1和FtsH3是细胞活力所必需的,而FtsH2和FtsH4是可有可无的。为了深入了解PSts修复过程中参与选择性D1蛋白降解的FtsH2,我们使用了表达谷胱甘肽S-转移酶(GST)标记衍生物(FtsH2-GST)的集胞藻6803菌株来分离含FtsH2的复合物。生化分析表明,FtsH2-GST与FtsH3形成异源寡聚复合物。 FtsH2还与野生型菌株中的FtsH3相互作用,并且耗尽ftsH3的突变体(如ftsH2 -突变体)显示D1降解受损。 FtsH3还与FtsH1形成单独的杂合物,从而解释了为什么FtsH3对于细胞活力而言比FtsH2更重要。我们使用透射电子显微镜和单颗粒分析研究了分离的FtsH2-GST / FtsH3复合物的结构。以26 A的分辨率获得的三维结构模型表明,该复合物是六聚体,由交替的FtsH2 / FtsH3亚基组成。

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