Bastow Emma L, Bych Katrine, Crack Jason C, Le Brun Nick E, Balk Janneke
John Innes Centre, Norwich, NR4 7UH, UK.
University of East Anglia, Norwich, NR4 7TJ, UK.
Plant J. 2017 Feb;89(3):590-600. doi: 10.1111/tpj.13409. Epub 2017 Feb 3.
Proteins of the cytosolic pathway for iron-sulphur (FeS) cluster assembly are conserved, except that plants lack a gene for CFD1 (Cytosolic FeS cluster Deficient 1). This poses the question of how NBP35 (Nucleotide-Binding Protein 35 kDa), the heteromeric partner of CFD1 in metazoa, functions on its own in plants. Firstly, we created viable mutant alleles of NBP35 in Arabidopsis to overcome embryo lethality of previously reported knockout mutations. RNAi knockdown lines with less than 30% NBP35 protein surprisingly showed no developmental or biochemical differences to wild-type. Substitution of Cys14 to Ala, which destabilized the N-terminal Fe S cluster in vitro, caused mild growth defects and a significant decrease in the activity of cytosolic FeS enzymes such as aconitase and aldehyde oxidases. The DNA glycosylase ROS1 was only partially decreased in activity and xanthine dehydrogenase not at all. Plants with strongly depleted NBP35 protein in combination with Cys14 to Ala substitution had distorted leaf development and decreased FeS enzyme activities. To find protein interaction partners of NBP35, a yeast-two-hybrid screen was carried out that identified NBP35 and DRE2 (Derepressed for Ribosomal protein S14 Expression). NBP35 is known to form a dimer, and DRE2 acts upstream in the cytosolic FeS protein assembly pathway. The NBP35-DRE2 interaction was not disrupted by Cys14 to Ala substitution. Our results show that NBP35 has a function in the maturation of FeS proteins that is conserved in plants, and is closely allied to the function of DRE2.
铁硫(FeS)簇组装的胞质途径中的蛋白质是保守的,只是植物缺乏CFD1(胞质FeS簇缺陷1)基因。这就提出了一个问题,即后生动物中CFD1的异源伴侣NBP35(35 kDa核苷酸结合蛋白)在植物中如何独自发挥作用。首先,我们在拟南芥中创建了NBP35的可行突变等位基因,以克服先前报道的敲除突变导致的胚胎致死性。NBP35蛋白含量低于30%的RNA干扰敲低株系令人惊讶地显示出与野生型在发育或生化方面没有差异。将Cys14替换为Ala,这在体外使N端FeS簇不稳定,导致轻微的生长缺陷以及胞质FeS酶如乌头酸酶和醛氧化酶的活性显著降低。DNA糖基化酶ROS1的活性仅部分降低,而黄嘌呤脱氢酶的活性完全没有降低。NBP35蛋白严重缺失并伴有Cys14到Ala替换的植物,叶片发育畸形且FeS酶活性降低。为了找到NBP35的蛋白质相互作用伙伴,进行了酵母双杂交筛选,鉴定出NBP35和DRE2(核糖体蛋白S14表达去抑制)。已知NBP35会形成二聚体,并且DRE2在胞质FeS蛋白组装途径中起上游作用。Cys14到Ala的替换并未破坏NBP35与DRE2之间的相互作用。我们的结果表明,NBP35在植物中保守的FeS蛋白成熟过程中具有功能,并且与DRE2的功能密切相关。