School of Life and Basic Sciences, Sichuan Agricultural University, Yaan, Sichuan 625014, People's Republic of China.
Funct Integr Genomics. 2013 Jun;13(2):229-39. doi: 10.1007/s10142-013-0315-6. Epub 2013 Mar 3.
Nicotianamine (NA) is an important divalent metal chelator and the main precursor of phytosiderophores. NA is synthesized from S-adenosylmethionine in a process catalyzed by nicotianamine synthase (NAS). In this study, a set of structural and phylogenetic analyses have been applied to identify the maize NAS genes based on the maize genome sequence release. Ten maize NAS genes have been mapped; seven of them have not been reported to date. Phylogenetic analysis and expression pattern from microarray data led to their classification into two different orthologous groups. C-terminal fusion of ZmNAS3 with GFP was found in the cytoplasm of Arabidopsis leaf protoplast. Expression analysis by reverse transcription polymerase chain reaction revealed ZmNAS genes are responsive to heavy metal ions (Ni, Fe, Cu, Mn, Zn, and Cd), and all 10 ZmNAS genes were only observed in the root tissue except of ZmNAS6. The promoter of ZmNAS genes was analyzed for the presence of different cis-element response to all kinds of phytohormones and environment stresses. We found that the ZmNAS gene expression of maize seedlings was regulated by jasmonic acid, abscisic acid, and salicylic acid. Microarray data demonstrated that the ZmNAS genes show differential, organ-specific expression patterns in the maize developmental steps. The integrated comparative analysis can improve our current view of ZmNAS genes and facilitate the functional characterization of individual members.
植物螯合肽是一种重要的二价金属螯合剂,也是植物铁载体的主要前体。它是由 S-腺苷甲硫氨酸在尼克酰胺合成酶(NAS)的催化下合成的。本研究基于玉米基因组序列的发布,应用了一系列结构和系统发育分析来鉴定玉米 NAS 基因。已经定位了 10 个玉米 NAS 基因;其中 7 个迄今尚未报道过。系统发育分析和微阵列数据的表达模式将它们分为两个不同的直系同源群。ZmNAS3 与 GFP 的 C 端融合在拟南芥叶片原生质体的细胞质中被发现。通过反转录聚合酶链反应的表达分析显示,ZmNAS 基因对重金属离子(Ni、Fe、Cu、Mn、Zn 和 Cd)有反应,除了 ZmNAS6 之外,所有 10 个 ZmNAS 基因都只在根组织中观察到。分析了 ZmNAS 基因的启动子,以研究不同顺式元件对各种植物激素和环境胁迫的反应。我们发现玉米幼苗的 ZmNAS 基因表达受到茉莉酸、脱落酸和水杨酸的调节。微阵列数据表明,ZmNAS 基因在玉米发育阶段表现出不同的、器官特异性的表达模式。综合比较分析可以提高我们对 ZmNAS 基因的认识,并有助于对各个成员的功能进行特征描述。