4.7 Review

'Omics' approaches in developing combined drought and heat tolerance in food crops

期刊

PLANT CELL REPORTS
卷 41, 期 3, 页码 699-739

出版社

SPRINGER
DOI: 10.1007/s00299-021-02742-0

关键词

Water stress; High temperature; Cereals; Legumes; Genomics; Proteomics; Metabolomics

资金

  1. CSIR
  2. DST
  3. UGC
  4. DBT
  5. UWA (Australia)
  6. ICARDA (Morocco)
  7. IIPR (Kanpur)
  8. PAU (Ludhiana)
  9. World Vegetable Center

向作者/读者索取更多资源

Global climate change will increase the intensity and frequency of hot, dry days, affecting various agronomic characteristics of crops. Plants will experience disruptions in physiological traits and metabolic processes, but have adaptive defense strategies in response to combined drought/heat stress. Understanding plant responses and tolerance mechanisms is crucial for developing stress-resilient crops, with genetic engineering and molecular breeding showing potential in this direction.
Global climate change will significantly increase the intensity and frequency of hot, dry days. The simultaneous occurrence of drought and heat stress is also likely to increase, influencing various agronomic characteristics, such as biomass and other growth traits, phenology, and yield-contributing traits, of various crops. At the same time, vital physiological traits will be seriously disrupted, including leaf water content, canopy temperature depression, membrane stability, photosynthesis, and related attributes such as chlorophyll content, stomatal conductance, and chlorophyll fluorescence. Several metabolic processes contributing to general growth and development will be restricted, along with the production of reactive oxygen species (ROS) that negatively affect cellular homeostasis. Plants have adaptive defense strategies, such as ROS-scavenging mechanisms, osmolyte production, secondary metabolite modulation, and different phytohormones, which can help distinguish tolerant crop genotypes. Understanding plant responses to combined drought/heat stress at various organizational levels is vital for developing stress-resilient crops. Elucidating the genomic, proteomic, and metabolic responses of various crops, particularly tolerant genotypes, to identify tolerance mechanisms will markedly enhance the continuing efforts to introduce combined drought/heat stress tolerance. Besides agronomic management, genetic engineering and molecular breeding approaches have great potential in this direction.

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