Fingerprinting of the antioxidant status in Alyssum markgrafii shoots during nickel hyperaccumulation in vitro

被引:0
作者
Nemanja Stanisavljević
Jelena Savić
Živko Jovanović
Jovanka Miljuš-Đukić
Jelena Senćanski
Mladen Simonović
Svetlana Radović
Dragan Vinterhalter
Branka Vinterhalter
机构
[1] University of Belgrade,Institute of Molecular Genetics and Genetic Engineering
[2] University of Belgrade,Institute for Biological Research “Siniša Stanković”
[3] University of Belgrade,Institute of General and Physical Chemistry
[4] University of Belgrade,Faculty of Biology
来源
Acta Physiologiae Plantarum | 2018年 / 40卷
关键词
Nickel; Hyperaccumulation; Antioxidant status;
D O I
暂无
中图分类号
学科分类号
摘要
This study investigated the role of antioxidant system of Alyssum markgrafii, during long-term exposure to 0.5 or 1 mM NiCl2 × 6H2O in vitro. Applied methodology included sample preparation protocol which reduces oxidation of key metabolites along with novel luminescent method and well-established photometric procedures. During 5-week treatments, plants accumulated 1121 and 2470 ppm of Ni2+ respectively, followed by severe growth retardation, chlorophyll degradation and peroxidation of lipids. These effects were more pronounced after 1 mM Ni2+ treatment and additionally accompanied by increased water loss. Activities of luminol-converting peroxidases and glutathione reductase upon 0.5 mM treatment were increased while catalase and superoxide dismutase were diminished. The fact that these two groups of enzymes run in antiparallel might suggest functional redistribution between antioxidant enzymes rather than orchestrated action to prevent oxidative damage. Total antioxidant capacity (TAC) was also increased after 0.5 mM treatment which coincided with increased GR activity and elevated glutathione content indicating this low molecular weight antioxidant as an important factor associated with nickel tolerance. This study also emphasizes the possible important role of luminol-converting peroxidases in nickel hyperaccumulation, although they are not considered as antioxidant enzymes sensu stricto since some of them can also produce reactive oxygen species as well.
引用
收藏
相关论文
共 123 条
[11]  
Sendor R(2003)Soluble and wall-bound phenolics and phenolic polymers in Phytochemistry 63 679-101
[12]  
Baker AJM(1981) roots exposed to elicitors from J Exp Bot 32 93-1570
[13]  
Boominathan R(1992) f.sp. cubense J Agric Food Chem 40 1566-2191
[14]  
Doran PM(2004)Leaf senescence correlated with increased levels of membrane permeability and lipid peroxidation, and decreased levels of superoxide dismutase and catalase Plant Cell 16 2176-80
[15]  
Bradford MM(2009)Modified thiobarbituric acid assay for measuring lipid oxidation in sugar-rich plant tissue extracts New Phytol 184 566-314
[16]  
Chen C(1976)Increased glutathione biosynthesis plays a role in nickel tolerance in Plant Physiol 59 309-198
[17]  
Huang D(1968) nickel hyperaccumulators Arch Biochem Biophys 125 189-1602
[18]  
Liu J(2013)Interference of nickel with copper and iron homeostasis contributes to metal toxicity symptoms in the nickel hyperaccumulator plant Afr J Agric 8 1596-641
[19]  
Cheng Z(2005)Superoxide dismutase I. Occurrence in higher plants Biometals 18 627-9855
[20]  
Moore J(2009)Photoperoxidation in isolated chloroplasts. Kinetics and stoichiometry of fatty acid peroxidation Agric Food Chem 57 9848-584