The Physiological, Biochemical, and Molecular Modifications of Chickpea (Cicer arietinum L.) Seedlings Under Freezing Stress

被引:0
作者
Hedayatollah Karimzadeh Soureshjani
Ahmad Nezami
Jafar Nabati
Ehsan Oskoueian
Mohammad Javad Ahmadi-Lahijani
机构
[1] Ferdowsi University of Mashhad,Research Center for Plant Sciences
[2] Ferdowsi University of Mashhad,Department of Agrotechnology
[3] Agricultural Research,Mashhad Branch Agricultural Biotechnology Research Institute of Iran (ABRII)
[4] Education,undefined
[5] and Extension Organization (AREEO),undefined
来源
Journal of Plant Growth Regulation | 2022年 / 41卷
关键词
Antioxidant; Chlorophyll fluorescence; Gene expression; Lipid peroxidation; Survival;
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中图分类号
学科分类号
摘要
Fall cultivation of field crops such as chickpea is prone to the risk of freezing stress. It is required to identify the mechanisms through which plants can tolerate low temperatures and provide conditions for fall cultivation of chickpea in the cold regions. To this, an experiment was carried out to evaluate the physiological, biochemical, and molecular alterations of chickpea genotypes (MCC797; cold-tolerant and MCC505; cold-sensitive) under freezing temperatures (− 3, − 6, − 9, and − 12 °C). Leaf malondialdehyde (MDA), hydrogen peroxide (H2O2), and electrolyte leakage (EL) were increased due to freezing stress in both genotypes, with a greater increase in the cold-sensitive genotype. The plant survival was decreased 20% at − 12 °C in the cold-sensitive genotype, while it remained constant (100%) in the cold-tolerant genotype. The cold-tolerant maximum efficiency of PSII and the PSII operating efficiency recovered faster (24 h after freezing stress; AFS) compare to the cold-sensitive genotype (48 h AFS) during the recovery period. Proline and enzymatic antioxidants activity, including ascorbate peroxidase, catalase (cat), peroxidase (pod), and superoxide dismutase, were increased more rapidly in the cold-tolerant genotype. The relative gene expression of cat, pod, and proline were more stimulated in the cold-tolerant genotype. The cat, pod, and proline were over-expressed on average by 4, 3, and 6 folds, and 16, 13, and 16 folds, in the cold-sensitive and cold-tolerant genotype, respectively, exposed to freezing temperatures. The greater gene expression and the higher antioxidant content of leaves led to lower lipid peroxidation (MDA and H2O2 content) in the cold-tolerant genotype.
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页码:1109 / 1124
页数:15
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  • [1] Apel K(2004)Reactive oxygen species: metabolism, oxidative stress, and signal transduction Annu Rev Plant Biol 55 373-399
  • [2] Hirt H(2018)Freezing tolerance of chickpea: biochemical and molecular changes at vegetative stage Biol Plant 62 140-148
  • [3] Arslan Ö(1973)Rapid determination of free proline for water-stress studies Plant Soil 39 205-207
  • [4] Eyidoğan F(1996)Somaclonal variation and improvement in chilling tolerance in rice: changes in chilling-induced electrolyte leakage Plant Breed 115 268-272
  • [5] Ekmekçi Y(2011)Nitrogen fixation potential in global chickpea mini-core collection Biol Fertil Soils 47 679-685
  • [6] Bates LS(2016)Transcriptome response mediated by cold stress in Front Plant Sci 7 374-962
  • [7] Waldren RP(2002)Membrane stabilization by abscisic acid under cold aids proline in alleviating chilling injury in maize ( Plant Cell Environ 25 955-1444
  • [8] Teare ID(2013) L.) cultured cells Plant Cell 25 1430-618
  • [9] Bertin P(2000)Acyl-lipid desaturase2 is required for chilling and freezing tolerance in Plant Cell Environ 23 609-1549
  • [10] Bouharmont J(2015)Glycinebetaine increases chilling tolerance and reduces chilling-induced lipid peroxidation in Mol Plant 8 1536-514