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Transforming Plant Viruses into Vectors for Next-Generation Agriculture-A Review
Mirza Abid Mehmood1,2, Muhammad Mazhar Iqbal2, Yueyan Yin3
1State Key Laboratory of Vegetation Structure, Function and Construction; Ministry of Education Key Laboratory for Transboundary Ecosecurity of Southwest China; Crop Disease & Pest Biocontrol Engineering Research Center of Yunnan Province; School of Ecology and Environmental Science, Yunnan University, Kunming, Yunnan, 650500, China.
Abstract:
Plant viral vectors have evolved from tools for transient gene expression into a versatile platform for precise genetic intervention, offering a rapid, transgene-free alternative to conventional crop transformation. This review critically assesses their engineering for scalable field application, moving beyond foundational techniques like virus-induced gene silencing (VIGS). We highlight how advanced vector design, including deconstructed genomes and synthetic regulatory circuits enhances cargo capacity, specificity, and biosafety. The integration of viral delivery with CRISPR-Cas systems has unlocked virus-induced genome editing (VIGE), base editing, and prime editing, enabling heritable trait modification without tissue culture. However, the transition from proof-of-concept in model plants to robust field technology hinges on overcoming critical bottlenecks: expanding host range through chimeric vectors, ensuring environmental containment, and developing scalable delivery methods such as nano-formulations or adjusted agroinfiltration protocols. We evaluate these delivery routes and emerging synergies with nanobiotechnology for targeted and efficient applications. While challenges in regulation, public perception, and large-scale production persist, the strategic engineering of viral vectors for stability, specificity, and safety positions them as a transformative, next-generation biotechnological input for achieving sustainable crop improvement and protection under changing climatic conditions.
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