Schwarz G, Schulze J, Bittner F, Eilers T, Kuper J, Bollmann G, Nerlich A, Brinkmann H, Mendel R R
Botanical Institute, Technical University of Braunschweig, 38023 Braunschweig, Germany.
Plant Cell. 2000 Dec;12(12):2455-2472. doi: 10.1105/tpc.12.12.2455.
Molybdenum (Mo) plays an essential role in the active site of all eukaryotic Mo-containing enzymes. In plants, Mo enzymes are important for nitrate assimilation, phytohormone synthesis, and purine catabolism. Mo is bound to a unique metal binding pterin (molybdopterin [MPT]), thereby forming the active Mo cofactor (Moco), which is highly conserved in eukaryotes, eubacteria, and archaebacteria. Here, we describe the function of the two-domain protein Cnx1 from Arabidopsis in the final step of Moco biosynthesis. Cnx1 is constitutively expressed in all organs and in plants grown on different nitrogen sources. Mo-repairable cnxA mutants from Nicotiana plumbaginifolia accumulate MPT and show altered Cnx1 expression. Transformation of cnxA mutants and the corresponding Arabidopsis chl-6 mutant with cnx1 cDNA resulted in functional reconstitution of their Moco deficiency. We also identified a point mutation in the Cnx1 E domain of Arabidopsis chl-6 that causes the molybdate-repairable phenotype. Recombinant Cnx1 protein is capable of synthesizing Moco. The G domain binds and activates MPT, whereas the E domain is essential for activating Mo. In addition, Cnx1 binds to the cytoskeleton in the same way that its mammalian homolog gephyrin does in neuronal cells, which suggests a hypothetical model for anchoring the Moco-synthetic machinery by Cnx1 in plant cells.
钼(Mo)在所有真核生物含钼酶的活性位点中发挥着至关重要的作用。在植物中,钼酶对于硝酸盐同化、植物激素合成和嘌呤分解代谢很重要。钼与一种独特的金属结合蝶呤(钼蝶呤[MPT])结合,从而形成活性钼辅因子(Moco),Moco在真核生物、真细菌和古细菌中高度保守。在这里,我们描述了拟南芥中双结构域蛋白Cnx1在Moco生物合成最后一步中的功能。Cnx1在所有器官以及在以不同氮源生长的植物中组成型表达。来自烟草的钼可修复cnxA突变体积累MPT并表现出Cnx1表达改变。用cnx1 cDNA转化cnxA突变体和相应的拟南芥chl - 6突变体导致其Moco缺陷的功能重建。我们还在拟南芥chl - 6的Cnx1 E结构域中鉴定出一个点突变,该突变导致钼酸盐可修复表型。重组Cnx1蛋白能够合成Moco。G结构域结合并激活MPT,而E结构域对于激活钼至关重要。此外,Cnx1以与它在神经元细胞中的哺乳动物同源物gephyrin相同的方式与细胞骨架结合,这提示了一个由Cnx1在植物细胞中锚定Moco合成机制的假设模型。