The role of selenium in amelioration of heat-induced oxidative damage in cucumber under high temperature stress

被引:0
作者
Rashad Mukhatar Balal
Muhammad Adnan Shahid
Muhammad Mansoor Javaid
Zafar Iqbal
Muhammad Akbar Anjum
Francisco Garcia-Sanchez
Neil Scott Mattson
机构
[1] University of Sargodha,Department of Horticulture, University College of Agriculture
[2] University of Florida,Horticultural Sciences Department, Institute of Food and Agricultural Sciences
[3] University of Sargodha,Department of Agronomy, University College of Agriculture
[4] University of Sargodha,Department of Plant Pathalogy, University College of Agriculture
[5] Bahauddin Zakariya University,Department of Horticulture
[6] CSIC,Dpto. Nutrición Vegetal, Centro de Edafología y Biología aplicada del Segura
[7] Cornell University,Department of Horticulture, College of Life and Agriculture
来源
Acta Physiologiae Plantarum | 2016年 / 38卷
关键词
Antioxidant enzymes; Osmolytes; Reactive oxygen species; Photosynthesis; Chlorophyll fluorescence; Oxidative damage;
D O I
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学科分类号
摘要
High temperature is an environmental stress which destroys agricultural crops and inhibits their growth and productivity. The aim of current investigation was to examine the role of selenium (Se) on cucumber (Cucumis sativus L.) cv. Sahil plant growth, physio-biochemical and yield attributes under heat stress (HS) in controlled conditions. Plants were grown under normal temperature (NT; 28/18 °C day/night) from sowing to 32 days after sowing (DAS). All plants were foliar-sprayed with Se (8 µM) at flower-initiation stage (32-DAS) and heat stress (HS; 40/30 °C day/night) was induced from 35-DAS to entire duration of the experiment (75-DAS). Data regarding growth, physio-biochemical and yield traits were measured. Heat stress decreased growth traits, total chlorophyll contents, chlorophyll fluorescence parameters, photosynthesis (Pn), stomatal conductance (gs), transpiration rate (E), antioxidant enzyme activities, membrane stability index (MSI) and yield-related attributes, while increased intercellular CO2 (Ci), ROS production, lipid peroxidation (LPO), non-photochemical quenching (NPQ) and compatible solutes. Exogenous application of Se mitigated HS-induced injurious effects by improving growth components, Pn, gs, E, chlorophyll content, chlorophyll fluorescence parameters, antioxidant enzyme activities, level of osmolytes, MSI and yield attributes and reducing ROS, LPO and NPQ. Selenium reversed heat-induced oxidative damage by strengthening antioxidative mechanism, which resulted in higher scavenging of ROS, thereby minimizing LPO. It is suggested that Se-induced improvement in Pn, growth and productivity associated traits under HS is linked with enhanced antioxidant activities and osmolytes accumulation. In addition, Se applied at flower initiation is highly effective in alleviating heat damage in cucumber.
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  • [1] Abbas T(2015)Silicon-induced alleviation of NaCl toxicity in okra ( Acta Physiol Plant 37 1-15
  • [2] Balal RM(2010)) is associated with enhanced photosynthesis, osmoprotectants and antioxidant metabolism Adv Agric Bot 2 213-224
  • [3] Shahid MA(2012)Variation in plant growth, tiller dynamics and yield components of wheat ( Int J Environ St 69 273-288
  • [4] Pervez MA(2004) L.) due to high temperature stress Annu Rev Plant Biol 55 373-399
  • [5] Ayyub CM(1949)The impact of heat and water stress conditions on the growth of the biofuel plant Plant Physiol 24 1-15
  • [6] Aqueel MA(2008)Reactive oxygen species: metabolism, oxidative stress, and signal transduction Plant Cell Environ 31 11-38
  • [7] Javaid MM(1973)Copper enzymes in isolated chloroplasts. Polyphenoloxidase in Beta vulgaris Plant Soil 39 205-207
  • [8] Ahamed KU(2012)The effect of drought and heat stress on reproductive processes in cereals Bulg J Agric Sci 18 589-594
  • [9] Nahar K(1976)Rapid determination of free proline for water-stress studies Anal Biochem 72 248-254
  • [10] Fujita M(2007)Photosynthesis and water use efficiency relations to yield of ten pepper varieties ( Plant Physiol 143 4-10