Kaouthar Feki, Ameny Farhat-Khemakhem, Yosra Kamoun, Walid Saibi, Ali Gargouri, Faiçal Brini
Biotechnology and Plant Improvement Laboratory, Centre of Biotechnology of Sfax, Tunisia.
Laboratory of Microorganisms and Biomolecules, Centre of Biotechnology of Sfax, Tunisia.
J Plant Physiol. 2016 Jul 1;198:56-68. doi: 10.1016/j.jplph.2016.03.019. Epub 2016 Apr 28.
In plant cells, the manganese superoxide dismutase (Mn-SOD) plays an elusive role in the response to oxidative stress. In this study, we describe the isolation and functional characterization of a novel Mn-SOD from durum wheat (Triticum turgidum L. subsp. Durum), named TdMnSOD. Molecular phylogeny analysis showed that the durum TdMnSOD exhibited high amino acids sequence identity with other Mn-SOD plants. The three-dimensional structure showed that TdMnSOD forms a homotetramer and each subunit is composed of a predominantly α-helical N-terminal domain and a mixed α/β C-terminal domain. TdMnSOD gene expression analysis showed that this gene was induced by various abiotic stresses in durum wheat. The expression of TdMnSOD enhances tolerance of the transformed yeast cells to salt, osmotic, cold and H2O2-induced oxidative stresses. Moreover, the analysis of TdMnSOD transgenic Arabidopsis plants subjected to different environmental stresses revealed low H2O2 and high proline levels as compared to the wild-type plants. Compared with the non-transformed plants, an increase in the total SOD and two other antioxidant enzyme activities including catalase (CAT) and peroxidases (POD) was observed in the three transgenic lines subjected to abiotic stress. Taken together, these data provide evidence for the involvement of durum wheat TdMnSOD in tolerance to multiple abiotic stresses in crop plants.
在植物细胞中,锰超氧化物歧化酶(Mn-SOD)在应对氧化应激中发挥着难以捉摸的作用。在本研究中,我们描述了从硬粒小麦(Triticum turgidum L. subsp. Durum)中分离出的一种新型Mn-SOD(命名为TdMnSOD)及其功能特性。分子系统发育分析表明,硬粒小麦的TdMnSOD与其他Mn-SOD植物具有高度的氨基酸序列同一性。三维结构显示,TdMnSOD形成同型四聚体,每个亚基主要由α-螺旋的N端结构域和α/β混合的C端结构域组成。TdMnSOD基因表达分析表明,该基因在硬粒小麦中受多种非生物胁迫诱导。TdMnSOD的表达增强了转化酵母细胞对盐、渗透、冷和H2O2诱导的氧化胁迫的耐受性。此外,对经受不同环境胁迫的TdMnSOD转基因拟南芥植物的分析显示,与野生型植物相比,其H2O2含量低,脯氨酸含量高。与未转化的植物相比,在经受非生物胁迫的三个转基因株系中,总超氧化物歧化酶以及包括过氧化氢酶(CAT)和过氧化物酶(POD)在内的其他两种抗氧化酶的活性均有所增加。综上所述,这些数据为硬粒小麦TdMnSOD参与作物对多种非生物胁迫的耐受性提供了证据。