Physiological and Molecular Approaches for Developing Thermotolerance in Vegetable Crops: A Growth, Yield and Sustenance Perspective

被引:24
作者
Chaudhary, Shikha [1 ]
Devi, Poonam [1 ]
HanumanthaRao, Bindumadhava [2 ,3 ]
Jha, Uday Chand [4 ]
Sharma, Kamal Dev [5 ]
Prasad, P. V. Vara [6 ]
Kumar, Shiv [7 ]
Siddique, Kadambot H. M. [8 ]
Nayyar, Harsh [1 ]
机构
[1] Panjab Univ, Dept Bot, Chandigarh, India
[2] Int Crops Res Inst Semi Arid Trop, World Vegetable Ctr, Hyderabad, India
[3] Marri Channa Reddy Fdn MCRF, Hyderabad, India
[4] Indian Inst Pulses Res, Crop Improvement Div, Kanpur, India
[5] Chaudhary Sarwan Kumar Himachal Pradesh Agr Univ, Dept Agr Biotechnol, Palampur, India
[6] Kansas State Univ, Dept Agron, Manhattan, KS USA
[7] Int Ctr Agr Res Dry Areas ICARDA, Rabat, Morocco
[8] Univ Western Australia, Inst Agr, Perth, WA, Australia
关键词
high temperature; vegetables; heat; environment; climate change; HIGH-TEMPERATURE STRESS; PHASEOLUS-VULGARIS L; WHEAT TRITICUM-AESTIVUM; QUANTITATIVE TRAIT LOCI; HEAT-SHOCK PROTEINS; CELL-MEMBRANE THERMOSTABILITY; LYCOPERSICON-ESCULENTUM MILL; VITRO POLLEN GERMINATION; CHICKPEA CICER-ARIETINUM; GENOME-WIDE ANALYSIS;
D O I
10.3389/fpls.2022.878498
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Vegetables are a distinct collection of plant-based foods that vary in nutritional diversity and form an important part of the healthy diet of the human being. Besides providing basic nutrition, they have great potential for boosting human health. The balanced consumption of vegetables is highly recommended for supplementing the human body with better nutrition density, dietary fiber, minerals, vitamins, and bioactive compounds. However, the production and quality of fresh vegetables are influenced directly or indirectly by exposure to high temperatures or heat stress (HS). A decline in quality traits and harvestable yield are the most common effects of HS among vegetable crops. Heat-induced morphological damage, such as poor vegetative growth, leaf tip burning, and rib discoloration in leafy vegetables and sunburn, decreased fruit size, fruit/pod abortion, and unfilled fruit/pods in beans, are common, often rendering vegetable cultivation unprofitable. Further studies to trace down the possible physiological and biochemical effects associated with crop failure reveal that the key factors include membrane damage, photosynthetic inhibition, oxidative stress, and damage to reproductive tissues, which may be the key factors governing heat-induced crop failure. The reproductive stage of plants has extensively been studied for HS-induced abnormalities. Plant reproduction is more sensitive to HS than the vegetative stages, and affects various reproductive processes like pollen germination, pollen load, pollen tube growth, stigma receptivity, ovule fertility and, seed filling, resulting in poorer yields. Hence, sound and robust adaptation and mitigation strategies are needed to overcome the adverse impacts of HS at the morphological, physiological, and biochemical levels to ensure the productivity and quality of vegetable crops. Physiological traits such as the stay-green trait, canopy temperature depression, cell membrane thermostability, chlorophyll fluorescence, relative water content, increased reproductive fertility, fruit numbers, and fruit size are important for developing better yielding heat-tolerant varieties/cultivars. Moreover, various molecular approaches such as omics, molecular breeding, and transgenics, have been proved to be useful in enhancing/incorporating tolerance and can be potential tools for developing heat-tolerant varieties/cultivars. Further, these approaches will provide insights into the physiological and molecular mechanisms that govern thermotolerance and pave the way for engineering "designer " vegetable crops for better health and nutritional security. Besides these approaches, agronomic methods are also important for adaptation, escape and mitigation of HS protect and improve yields.
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页数:32
相关论文
共 367 条
[91]   Heat Stress in Wheat during Reproductive and Grain-Filling Phases [J].
Farooq, Muhammad ;
Bramley, Helen ;
Palta, Jairo A. ;
Siddique, Kadambot H. M. .
CRITICAL REVIEWS IN PLANT SCIENCES, 2011, 30 (06) :491-507
[92]   STOMATAL CONDUCTANCE AND PHOTOSYNTHESIS [J].
FARQUHAR, GD ;
SHARKEY, TD .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1982, 33 :317-345
[93]   A small heat shock protein CaHsp25.9 positively regulates heat, salt, and drought stress tolerance in pepper (Capsicum annuum L.) [J].
Feng, Xiao-Hui ;
Zhang, Huai-Xia ;
Ali, Muhammad ;
Gai, Wen-Xian ;
Cheng, Guo-Xin ;
Yu, Qing-Hui ;
Yang, Sheng-Bao ;
Li, Xi-Xuan ;
Gong, Zhen-Hui .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2019, 142 :151-162
[94]   Agronomic Management for Enhancing Plant Tolerance to Abiotic Stresses: High and Low Values of Temperature, Light Intensity, and Relative Humidity [J].
Ferrante, Antonio ;
Mariani, Luigi .
HORTICULTURAE, 2018, 4 (03)
[95]   A review of heat stress signaling in plants [J].
Firmansyah ;
Argosubekti, N. .
INTERNATIONAL CONFERENCE ON SUSTAINABLE CEREALS AND CROPS PRODUCTION SYSTEMS IN THE TROPICS, 2020, 484
[96]   Pollen grains of heat tolerant tomato cultivars retain higher carbohydrate concentration under heat stress conditions [J].
Firon, N. ;
Shaked, R. ;
Peet, M. M. ;
Pharr, D. M. ;
Zamski, E. ;
Rosenfeld, K. ;
Althan, L. ;
Pressman, E. .
SCIENTIA HORTICULTURAE, 2006, 109 (03) :212-217
[97]  
Foolad M.R., 2005, Abiotic Stresses: Plant Resistance Through Breeding and Molecular Approaches, P613
[98]   Redox homeostasis and antioxidant signaling: A metabolic interface between stress perception and physiological responses [J].
Foyer, CH ;
Noctor, G .
PLANT CELL, 2005, 17 (07) :1866-1875
[99]  
Fu I. M., 1993, New crops., P570
[100]   Screening Ornamental Pepper Cultivars for Temperature Tolerance Using Pollen and Physiological Parameters [J].
Gajanayake, Bandara ;
Trader, Brian W. ;
Reddy, K. Raja ;
Harkess, Richard L. .
HORTSCIENCE, 2011, 46 (06) :878-884