Aug 2026· Discover Plants· Vol 3· 1 citation· 306 references
TL;DR
The integration of multi-omics and biotechnological approaches is presented as the most effective strategy for developing climate-resilient rice varieties under increasingly saline and arid conditions.
Abstract
Rice (Oryza sativa L.) is an important global food crop; however, its production is continuously susceptible to drought and salinity. The present review presents the complex morpho-physiological, hormonal and molecular mechanisms adopted by rice employs to survive the drought and salinity stress. Morphologically, rice adapts by increasing root length and adjusting the root-to-shoot ratio, while physiological defenses include stomatal regulation and activation of antioxidant systems to scavenge reactive oxygen species (ROS) produced during the stress condition. We discuss the important role of phytohormones, specifically abscisic acid (ABA) and jasmonic acid (JA), in mediating stress signalling. Furthermore, the review also provides a detailed key role of important transcription factor families, including NAC, MYB, bZIP, and AP2/ERF. The sub-section of review also highlighting specific genetic evidence from recent overexpression and CRISPR/Cas9-mediated studies in rice crop against the said stress. The integration of multi-omics and biotechnological approaches is presented as the most effective strategy for developing climate-resilient rice varieties. This condensed review offers an up-to-date roadmap for researchers aiming to improve rice productivity under increasingly saline and arid conditions.
This review synthesizes recent advances in elucidating the molecular and physiological mechanisms underlying drought tolerance in Vitis vinifera to provide an integrative conceptual framework to support sustainable viticulture in water-limited environments.
Introduction Soil salinization constrains plant growth, and enhancing salt tolerance is of great significance. Methods Here, Ginkgo biloba seedlings were treated with control (CK), salt stress (S), or salt stress + melatonin (S+M). Integrating physiology, transcriptomics, and weighted gene co-expression network analysi...
Xinyu Yang, Shu-Rong Peng, Yanxue Zhao et al.· Frontiers in Plant Science· 0 citations
Rice (Oryza sativa L.) production is severely affected by drought, which reduces yield, growth and physiological functions in various environments. This review integrates the morphological, physiological, biochemical, phenological and genetic responses of rice to drought, focusing on both common and environment-specifi...
B. Vidya, K. Ujjwal, M. Pragya et al.· Plant Science Today· 0 citations
Saline soil and drought are among the most devastating abiotic stresses constraining sugarcane (Saccharum spp.) production globally, with soil salinity affecting over 1,125 Mha worldwide and drought causing severe yield losses in tropical and subtropical agroecosystems. As a glycophytic C4 crop supplying ~80% of the wo...
K. Verma, Xiu-Peng Song, Qiang Liang et al.· Frontiers in Plant Science· 0 citations
Maize (Zea mays L.) is a paramount global staple crop; however, its production is severely limited by diverse abiotic stresses, particularly drought and saline-alkali stress. Although glutaredoxins (GRXs) are known to regulate plant growth and stress responses, their specific functions and underlying molecular mechanis...
Xing-Shuai Zhang, Meiyi Liu, Chong Wang et al.· Plant Science· 1 citation
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