Morpho-physiological and biochemical responses of tolerant and sensitive rapeseed cultivars to drought stress during early seedling growth stage

被引:0
作者
Mohammad Nauman Khan
Jing Zhang
Tao Luo
Jiahuan Liu
Fei Ni
Muhammad Rizwan
Shah Fahad
Liyong Hu
机构
[1] Huazhong Agricultural University,MOA Key Laboratory of Crop Ecophysiology and Farming System in the Middle Reaches of the Yangtze River College of Plant Science and Technology
[2] The University of Swabi,Department of Agriculture
[3] Huazhong Agricultural University,Microelement Research Centre, College of Resources and Environment
来源
Acta Physiologiae Plantarum | 2019年 / 41卷
关键词
Rapeseed; Drought stress; Germination; Early seedling growth; Enzymatic and non-enzymatic antioxidants; Osmo-protectants;
D O I
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中图分类号
学科分类号
摘要
The edible oil production in China is highly dependent on the screening and development of drought-resistant rapeseed cultivars especially in water stress areas. However, for the successful production of rapeseed, germination and early seedling growth is the key steps under drought stress, which are not fully understood up till now. To better predict about the adoption of rapeseed cultivars to drought stress, the current study explored the presumed roles of enzymatic, non-enzymatic antioxidants and osmolytes in improving drought tolerance in rapeseed. The comparative analysis in terms of germination and early sprouting growth of six rapeseed cultivars was assessed under normal (0.00 MPa) and osmotic stresses (− 0.1, − 0.2, − 0.3, − 0.4, and − 0.5 MPa simulated by polyethylene glycol 6000). Subsequently, based on the process of germination and early sprouting growth, Shenguang 127 (SG 127) and Zhongyou 36 (ZY 36) were chosen as drought-tolerant and -sensitive rapeseed varieties, correspondingly and further evaluated under − 0.3 MPa osmotic stresses. The results indicated that drought stress rigorously hindered germination and early seedling growth of rapeseed cultivars. On the other hand, SG 127 exhibited less reduction in seedling growth paralleled with ZY 36. SG 127 revealed lower levels of hydrogen peroxide (H2O2), lipids peroxidation (MDA), electrolyte leakage (EL %) and less reduction in chlorophyll (Chl) content than ZY 36. The drought tolerance of SG 127 may be correlated with enhanced activities of enzymatic (superoxide peroxidase, catalase, and dismutase), non-enzymatic antioxidants (ascorbic acid, glutathione), more accumulation of proline; total soluble sugar and total soluble protein. Furthermore, our study highlighted the significance of enzymatic and non-enzymatic antioxidants and osmolytes in the establishment of rapeseed seedlings under drought stress. Nevertheless, the better knowledge is crucial to be further investigated on genomic and molecular basis to deeply insight the detail mechanisms of drought tolerance in rapeseed.
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[21]  
Blokhina E(2014)Biphasic effect of copper on the ascorbate–glutathione pathway in primary leaves of Environ Sci Pollut Res 96 281-287
[22]  
Virolainen KV(2014) seedlings during the early stages of metal assimilation Plant Growth Regul DOI 15 371-400
[23]  
Fagerstedt M(2015)A global data set of palmer drought severity index for 1870–2002: relationship with soil moisture and effects of surface warming Plant Physiol Biochem 11 e0159590-150
[24]  
Bor F(2015)Comparative lipid peroxidation, antioxidant systems and proline content in roots of two rice cultivars differing in salt tolerance Sustain Agric Rev 202 139-198
[25]  
Ozdemir I(2016)Antioxidant responses of rice seedlings to salinity stress PLoS One 7 1250-188
[26]  
Turkan MM(2016)Ultraviolet radiation effect on photosynthetic pigments, biochemical attributes, antioxidant enzyme activity and hormonal contents of wheat J Agron Crop Sci 103 191-228
[27]  
Bradford M(2016)Potential role of phytohormones and plant growth-promoting rhizobacteria in abiotic stresses: consequences for changing environment Front Plant Sci 8 1147-1375
[28]  
Centritto GS(2016)Phytohormones and plant responses to salinity stress: a review Plant Physiol Biochem 106 207-164
[29]  
Chaturvedi A(2017)A biochar application protects rice pollen from high-temperature stress Front Plant Sci 57 182-9684
[30]  
Singh R(2018)Crop plant hormones and environmental stress Arch Agron Soil Sci 72 221-198