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Updated: Feb 28, 2026

Peptide-derived Method to Transport Genes and Proteins Across Cellular and Organellar Barriers in Plants
Published on: December 16, 2016
Systemic Delivery of Functional Proteins Into Plants Using an Engineered Membrane Translocation Domain
Jiyang Wang1, Preeti Patel1, Prabhat Bhat2
1Department of Plant Pathology, Ohio State University, Columbus, Ohio, USA.
None:
Protein-based biopesticides and biostimulants are critical for the future of sustainable agriculture, yet their utility is severely limited by inefficient delivery into plant cells. Traditional cell-penetrating peptides enable protein uptake but lack the efficiency, systemic activity and scalability required for crop production. Here, we present a potential general solution using a novel engineered membrane translocation domain, MTD4, to enable robust, systemic protein delivery into crops and it is suitable for large-scale application. We first demonstrate that MTD4 enables rapid foliar delivery of a model protein (SEP) and, importantly, facilitates its systemic translocation from lower to upper leaves and from roots to shoots, a key requirement for whole-plant protection. To prove the platform's utility, we fused MTD4 to the harpin protein HrpZ, a known defence elicitor. MTD4-HrpZ delivered into tobacco and tomato plants triggered a potent hypersensitive response and systemic acquired resistance, resulting in significant reductions in disease severity from bacterial and fungal pathogens. Remarkably, the MTD4-HrpZ fusion protein was over five times more effective than HrpZ alone, highlighting MTD4's capacity to dramatically enhance protein efficacy. This work introduces MTD4 as a transformative tool for overcoming protein delivery barriers in plants, paving the way for a new generation of high-potency biotherapeutics that can advance sustainable crop protection and reduce dependence on chemical applications.
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