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February 2, 2026The Plant Pathology Journal2 citationsOpen Access

Control Strategies of Plant Viruses Using Spray-Induced Gene Silencing

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SCSeung-Kook ChoiEBEseul BaekHJHo-Jong Ju

Key Points

  • The aim is to explore the use of spray-induced gene silencing as a method to control plant viruses and enhance crop productivity.
  • Reviewed advancements in double-stranded RNA technologies for plant virus control.
  • Discussed spray-induced gene silencing applications through foliar sprays, seed treatments, and root uptake.
  • Analyzed challenges such as environmental degradation and production costs.
  • Identified the advantages of using dsRNA technologies for targeted viral suppression.
  • Noted improvements in dsRNA stability and application through nanomaterials.
  • Outlined the need for innovations to address production costs and regulatory concerns.

Abstract

Plant viruses severely limit global crop productivity, yet no pesticide-like antiviral agents are currently available for effective control. Double-stranded RNA (dsRNA) technologies, acting through RNA interference, provide a sequence-specific and non-transgenic strategy to suppress viral replication and have emerged as promising non-transgenic solutions for crop protection. Spray-induced gene silencing (SIGS), which applies externally produced dsRNA through foliar sprays, seed treatments, or root uptake, provides practical advantages over genetic modification, including rapid deployment, environmental compatibility, and target specificity. Recent advances in industry-scale dsRNA production and nanomaterial-based formulations have improved dsRNA stability, uptake, and persistence in planta, supporting the feasibility of field application. However, major challenges persist, such as rapid environmental degradation, restricted systemic mobility, high production costs, and unresolved biosafety and regulatory issues. Overcoming these challenges will require innovations in cost-effective and scalable in vitro RNA production, protective formulations, and precision delivery technologies, alongside comprehensive ecological risk assessments. Finally, this review emphasizes current technological advances of SIGS, integrating with nanotechnology and other reliable field application methodologies. Taken together, these advances position dsRNA-based technologies as a realistic and transformative platform for next-generation, sustainable plant virus management.

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Cite This Study

Choi et al. (2026) studied this question.

synapsesocial.com/papers/6980feb9c1c9540dea8110f9https://doi.org/10.5423/ppj.rw.10.2025.0148
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