Insights into morphological and physio-biochemical adaptive responses in mungbean (Vigna radiata L.) under heat stress

被引:19
作者
Bhardwaj, Ragini [1 ,2 ]
Lone, Jafar K. [1 ]
Pandey, Renu [3 ]
Mondal, Nupur [4 ]
Dhandapani, R. [3 ]
Meena, Surendra Kumar [5 ]
Khan, Suphiya [2 ]
Gayacharan [1 ]
机构
[1] Natl Bur Plant Genet Resources, ICAR, New Delhi, India
[2] Banasthali Vidyapith Univ, Dept Biosci & Biotechnol, Tonk Rajasthan, India
[3] Indian Agr Res Inst, Div Plant Physiol, ICAR, New Delhi, India
[4] Univ Delhi, Shivaji Coll, New Delhi, India
[5] Indian Grassland & Res Inst, Div Crop Improvement, ICAR, Jhansi, India
关键词
greengram; heat stress signaling pathways; oxidative stress; mungbean germplasm; adaptative traits; HIGH-TEMPERATURE STRESS; ORYZA-SATIVA L; HIGH NIGHT TEMPERATURE; TRITICUM-AESTIVUM L; SHOCK PROTEINS; CANOPY TEMPERATURE; HYDROGEN-PEROXIDE; OXIDATIVE STRESS; ANTIOXIDANT DEFENSE; GENETIC DISSECTION;
D O I
10.3389/fgene.2023.1206451
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Mungbean (Vigna radiata L. Wilczek) is an important food legume crop which contributes significantly to nutritional and food security of South and Southeast Asia. The crop thrives in hot and humid weather conditions, with an optimal temperature range of 28 degrees-35 degrees C, and is mainly cultivated under rainfed environments. However, the rising global temperature has posed a serious threat to mungbean cultivation. Optimal temperature is a vital factor in cellular processes, and every crop species has evolved with its specific temperature tolerance ability. Moreover, variation within a crop species is inevitable, given the diverse environmental conditions under which it has evolved. For instance, various mungbean germplasm can grow and produce seeds in extreme ambient temperatures as low as 20 degrees C or as high as 45 degrees C. This range of variation in mungbean germplasm for heat tolerance plays a crucial role in developing heat tolerant and high yielding mungbean cultivars. However, heat tolerance is a complex mechanism which is extensively discussed in this manuscript; and at the same time individual genotypes have evolved with various ways of heat stress tolerance. Therefore, to enhance understanding towards such variability in mungbean germplasm, we studied morphological, anatomical, physiological, and biochemical traits which are responsive to heat stress in plants with more relevance to mungbean. Understanding heat stress tolerance attributing traits will help in identification of corresponding regulatory networks and associated genes, which will further help in devising suitable strategies to enhance heat tolerance in mungbean. The major pathways responsible for heat stress tolerance in plants are also discussed.
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页数:19
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