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May 20, 2014Critical Reviews in Plant Sciences696 citations

Drought Stress in Wheat during Flowering and Grain-filling Periods

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MFMuhammad FarooqMHMubshar HussainKSKadambot H. M. Siddique

Key Points

  • To review the physiological, biochemical, and morphological impacts of terminal drought during flowering and grain filling in wheat, and evaluate multi-disciplinary strategies for improving drought resistance.
  • Synthesized evidence on wheat physiological responses to terminal drought, focusing on leaf senescence, carbon fixation, and grain development.
  • Evaluated conventional breeding, marker-assisted selection, transgenics, and agronomic management strategies for drought mitigation.
  • Terminal drought severely impairs wheat yield primarily through stomatal closure, chloroplast oxidative damage, and reduced carbon fixation during flowering and grain development.
  • Stand-alone molecular breeding or physiological strategies offer limited success, highlighting the need for holistic approaches combining genomic tools, morphological traits, and agronomic practices.

Abstract

Drought is a major environmental stress threatening wheat productivity worldwide. Global climate models predict changed precipitation patterns with frequent episodes of drought. Although drought impedes wheat performance at all growth stages, it is more critical during the flowering and grain-filling phases (terminal drought) and results in substantial yield losses. The severity and duration of the stress determine the extent of the yield loss. The principal reasons for these losses are reduced rates of net photosynthesis owing to metabolic limitations—oxidative damage to chloroplasts and stomatal closure—and poor grain set and development. A comprehensive understanding of the impact of terminal drought is critical for improving drought resistance in wheat, with marker-assisted selection being increasingly employed in breeding for this resistance. The limited success of molecular breeding and physiological strategies suggests a more holistic approach, including interaction of drought with other stresses and plant morphology. Furthermore, integration of physiological traits, genetic and genomic tools, and transgenic approaches may also help to improve resistance against drought in wheat. In this review, we describe the influence of terminal drought on leaf senescence, carbon fixation, grain set and development, and explain drought resistance mechanisms. In addition, recent developments in integrated approaches such as breeding, genetics, genomics, and agronomic strategies for improving resistance against terminal drought in wheat are discussed.

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Cite This Study

Farooq et al. (2014) studied this question.

synapsesocial.com/papers/69d7760bdb9d5e1bf4b8ad0bhttps://doi.org/10.1080/07352689.2014.875291
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