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Enhanced Photosynthesis and Water-Use Efficiency in Transgenic Sugarcane Expressing Arabidopsis DREB1A Under Drought
Ghulam Raza1, Muhammad Omar Khan2, Muhammad Tahir Khan2
1Agricultural Biotechnology Division, National Institute for Biotechnology and Genetic Engineering College, Pakistan Institute of Engineering and Applied Sciences (NIBGE-C, PIEAS); graza4@gmail.com.
Abstract:
Drought stress imposes a critical limitation on sugarcane productivity, thereby necessitating the development of stress-resilient cultivars for sustainable agriculture. The present study aimed to enhance drought tolerance in sugarcane by introducing the Arabidopsis DREB1A gene under the control of the stress-inducible rd29A promoter. Transgenic sugarcane lines were generated via particle bombardment-mediated transformation and subsequently evaluated through molecular, physiological, and agronomic assessments under controlled and drought-stressed conditions. Molecular analysis confirmed stable transgene integration, with transgenic lines exhibiting up to a 10-fold increase in DREB1A expression relative to wild-type plants. Physiological assessments demonstrated that, under drought stress at 60% field capacity (FC), transgenic lines maintained photosynthetic rates (PN) that were 224-270% higher, stomatal conductance (gs) increased by 84-167%, and relative water content (RWC) was enhanced by 25-31% compared to non-transgenic controls. Moreover, the leaves of transgenic sugarcane displayed improved osmotic regulation and water-use efficiency. Agronomic evaluations further revealed significant improvements in plant growth and productivity. Under drought stress (60% FC), transgenic lines exhibited 76-109% greater cane height, with cane diameter 71-86% larger. Shoot biomass increased by 39-87%, and root biomass was enhanced by 65-103%. Additionally, the Brix percentage, indicative of sucrose accumulation, increased by 36-55% in the transgenic plants at 60% FC. These findings establish a robust correlation between DREB1A expression, enhanced physiological resilience, and improved agronomic performance under drought conditions. The capacity of DREB1A-expressing transgenic sugarcane to sustain higher photosynthetic activity, superior water-use efficiency, and increased biomass accumulation underscores its potential as a genetic strategy for developing drought-resilient sugarcane varieties. This study offers novel insights into the molecular mechanisms underlying drought tolerance and provides a promising approach for ensuring sustainable sugarcane cultivation in water-scarce regions.
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