Duy Daniela, Wanner Gerhard, Meda Anderson R, von Wirén Nicolaus, Soll Jürgen, Philippar Katrin
Department für Biologie 1, Botanik, Ludwig-Maximilians-Universität München, D-80638 Munich, Germany.
Plant Cell. 2007 Mar;19(3):986-1006. doi: 10.1105/tpc.106.047407. Epub 2007 Mar 2.
In chloroplasts, the transition metals iron and copper play an essential role in photosynthetic electron transport and act as cofactors for superoxide dismutases. Iron is essential for chlorophyll biosynthesis, and ferritin clusters in plastids store iron during germination, development, and iron stress. Thus, plastidic homeostasis of transition metals, in particular of iron, is crucial for chloroplast as well as plant development. However, very little is known about iron uptake by chloroplasts. Arabidopsis thaliana PERMEASE IN CHLOROPLASTS1 (PIC1), identified in a screen for metal transporters in plastids, contains four predicted alpha-helices, is targeted to the inner envelope, and displays homology with cyanobacterial permease-like proteins. Knockout mutants of PIC1 grew only heterotrophically and were characterized by a chlorotic and dwarfish phenotype reminiscent of iron-deficient plants. Ultrastructural analysis of plastids revealed severely impaired chloroplast development and a striking increase in ferritin clusters. Besides upregulation of ferritin, pic1 mutants showed differential regulation of genes and proteins related to iron stress or transport, photosynthesis, and Fe-S cluster biogenesis. Furthermore, PIC1 and its cyanobacterial homolog mediated iron accumulation in an iron uptake-defective yeast mutant. These observations suggest that PIC1 functions in iron transport across the inner envelope of chloroplasts and hence in cellular metal homeostasis.
在叶绿体中,过渡金属铁和铜在光合电子传递中起着至关重要的作用,并作为超氧化物歧化酶的辅因子。铁对于叶绿素生物合成至关重要,质体中的铁蛋白簇在种子萌发、发育和铁胁迫期间储存铁。因此,过渡金属,特别是铁的质体稳态对于叶绿体以及植物发育至关重要。然而,关于叶绿体对铁的吸收了解甚少。在质体金属转运蛋白筛选中鉴定出的拟南芥叶绿体通透酶1(PIC1)含有四个预测的α螺旋,定位于内膜,并与蓝细菌通透酶样蛋白具有同源性。PIC1的敲除突变体仅进行异养生长,其特征是出现类似于缺铁植物的黄化和矮小表型。对质体的超微结构分析显示叶绿体发育严重受损,铁蛋白簇显著增加。除了铁蛋白上调外,pic1突变体还显示出与铁胁迫或转运、光合作用和铁硫簇生物合成相关的基因和蛋白质的差异调节。此外,PIC1及其蓝细菌同源物介导了铁吸收缺陷型酵母突变体中的铁积累。这些观察结果表明,PIC1在铁跨叶绿体内膜的转运中起作用,从而在细胞金属稳态中起作用。