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印度夏季种植的鹰嘴豆和卡布里鹰嘴豆品种对盐胁迫耐受性表现出不同的行为。

Desi and kabuli chickpea cultivars had differential behaviour towards salinity stress tolerance.

机构信息

Department of Biochemistry, Punjab Agricultural University, Ludhiana, 141004, India.

Department of Plant Breeding and Genetics, Punjab Agricultural University, Ludhiana, 141004, India.

出版信息

Biol Futur. 2020 Jun;71(1-2):137-146. doi: 10.1007/s42977-020-00004-w.

Abstract

Twenty chickpea cultivars were germinated under control and different levels of salt stress induced by sodium chloride and out of these, three desi (PDG 3, GL 12003, C 106) and two kabuli (FLIP-08-125-C and GLK 28127) cultivars were selected on the basis of embryonic axis growth, biomass, salinity stress tolerance index. Antioxidative enzymes, non-enzymatic antioxidants proline and proline metabolizing enzymes and free radical scavenging activities were estimated in embryonic axes of these selected cultivars under control and salt stressed conditions. Higher activities of catalase and Δ-pyrroline-carboxylate synthetase (P5CS) and sustained activities of superoxide dismutase (SOD) and ascorbate peroxidase (APX) in embryonic axis along with higher SOD and glutathione reductase and maintained APX in cotyledons might be mediating salt stress tolerance in kabuli cultivar FLIP-08-125-C. Higher proline content, enhanced P5CS activity and decreased proline dehydrogenase activity in embryonic axis along with higher free radical scavenging activities both in cotyledons and embryonic axis in desi cultivar PDG 3 might be mediating salt stress tolerance by maintaining osmotic balance and reducing oxidative damage.

摘要

在控制条件和不同浓度氯化钠盐胁迫下,对 20 个鹰嘴豆品种进行了发芽实验,其中 3 个是地方品种(PDG3、GL12003 和 C106),2 个是卡布里品种(FLIP-08-125-C 和 GLK28127),根据胚芽轴生长、生物量和耐盐性指数进行了选择。在控制和盐胁迫条件下,对这些选定品种的胚芽轴中的抗氧化酶、非酶抗氧化剂脯氨酸和脯氨酸代谢酶以及自由基清除活性进行了评估。卡布里品种 FLIP-08-125-C 的胚芽轴中,过氧化氢酶和Δ-吡咯啉-5-羧酸合成酶(P5CS)的活性较高,超氧化物歧化酶(SOD)和抗坏血酸过氧化物酶(APX)的活性持续,同时,SOD 和谷胱甘肽还原酶在子叶中保持较高水平,APX 也在子叶中保持较高水平,这可能介导了该品种对盐胁迫的耐受性。在地方品种 PDG3 的胚芽轴中,脯氨酸含量较高,P5CS 活性增强,脯氨酸脱氢酶活性降低,同时在子叶和胚芽轴中自由基清除活性均较高,这可能通过维持渗透平衡和减少氧化损伤来介导对盐胁迫的耐受性。

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