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Export of Vacuolar Manganese by AtNRAMP3 and AtNRAMP4 Is Required for Optimal Photosynthesis and Growth under Manganese Deficiency

机译:缺锰条件下最佳光合作用和生长需要AtNRAMP3和AtNRAMP4出口液状锰。

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摘要

Manganese (Mn) is an essential element, acting as cofactor in numerous enzymes. In particular, a Mn cluster is indispensable for the function of the oxygen-evolving complex of photosystem II. Metal transporters of the Natural Resistance-Associated Macrophage Protein (NRAMP) family have the ability to transport both iron and Mn. AtNRAMP3 and AtNRAMP4 are required for iron mobilization in germinating seeds. The results reported here show that, in adult Arabidopsis (Arabidopsis thaliana) plants, AtNRAMP3 and AtNRAMP4 have an important role in Mn homeostasis. Vacuolar Mn accumulation in mesophyll cells of rosette leaves of adult nramp3nramp4 double mutant plants was dramatically increased when compared with the wild type. This suggests that a considerable proportion of the cellular Mn pool passes through the vacuole and is retrieved in an AtNRAMP3/AtNRAMP4-dependent manner. The impaired Mn release from mesophyll vacuoles of nramp3nramp4 double mutant plants is associated with reduced growth under Mn deficiency. However, leaf AtNRAMP3 and AtNRAMP4 protein levels are unaffected by Mn supply. Under Mn deficiency, nramp3nramp4 plants contain less functional photosystem II than the wild type. These data are consistent with a shortage of Mn to produce functional photosystem II, whereas mitochondrial Mn-dependent superoxide dismutase activity is maintained under Mn deficiency in both genotypes. The results presented here suggest an important role for AtNRAMP3/AtNRAMP4-dependent Mn transit through the vacuole prior to the import into chloroplasts of mesophyll cells.
机译:锰(Mn)是必不可少的元素,可在多种酶中充当辅助因子。特别地,Mn簇对于光系统II的析氧络合物的功能是必不可少的。天然抗性相关巨噬细胞蛋白(NRAMP)家族的金属转运蛋白具有转运铁和锰的能力。 AtNRAMP3和AtNRAMP4是发芽种子中铁动员所必需的。此处报道的结果表明,在成年拟南芥(Arabidopsis thaliana)植物中,AtNRAMP3和AtNRAMP4在Mn稳态中具有重要作用。与野生型相比,成年nramp3nramp4双重突变植物的莲座叶叶肉细胞中的液泡Mn积累显着增加。这表明大量的细胞锰池通过液泡并以依赖于AtNRAMP3 / AtNRAMP4的方式被回收。 Nramp3nramp4双重突变植物的叶肉液泡中Mn释放受损与Mn缺乏下生长减少有关。但是,叶片的AtNRAMP3和AtNRAMP4蛋白水平不受锰供应的影响。在锰缺乏的情况下,nramp3nramp4植物比野生型植物包含的功能性光系统II更少。这些数据与锰缺乏以产生功能性光系统II相一致,而线粒体锰依赖性超氧化物歧化酶活性在两种基因型均缺乏锰的情况下得以维持。此处介绍的结果表明,依赖AtNRAMP3 / AtNRAMP4的Mn在进入叶肉细胞叶绿体之前先通过液泡转运。

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