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Genetic Manipulation of the Plant Pathogen Ustilago maydis to Study Fungal Biology and Plant Microbe Interactions
Published on: September 30, 2016
A Trichoderma milRNA cross-species targeting chitin synthases genes is delivered by carbon nanomaterials to suppress
Yaping Yin1,2, Zhen Liu1,2, Ming Xue1,2
1Key Laboratory of Green Prevention and Control of Tropical Plant Diseases and Pests, Ministry of Education, School of Tropical Agriculture and Forestry, School of Breeding and Multiplication (Sanya Institute of Breeding and Multiplication), Hainan University, Sanya 572025, China.
Abstract:
Botrytis cinerea is a globally destructive plant pathogen that threatens major agricultural crops. Although biocontrol agents are widely used against this fungus, their inconsistent efficacy reflects a limited mechanistic understanding, hindering the development of effective disease management strategies. In this study, we investigated the in-depth biocontrol mechanism of Trichoderma breve against B. cinerea on tomato plants and various fruits. We identified a new microRNA Tri-milR29 from T. breve. Tri-milR29 is delivered into B. cinerea via extracellular vesicles, enabling cross-species RNA interference (RNAi). Once inside B. cinerea, Tri-milR29 targets the chitin synthase genes BcCHS7 and BcCHS6, thereby impairing fungal growth and reducing its pathogenicity. This cross-species miRNA phenomenon significantly enhanced the antifungal and disease-suppressing efficacy of T. breve against B. cinerea. Moreover, to optimize the antifungal and disease-control effects of Tri-milR29, we engineered polyethyleneimine-modified carbon dot nanocomposites (CPP) as nanocarriers using coconut water as a raw material. This green, biomass-based nanocarrier system improved the delivery and uptake of Tri-milR29 in B. cinerea. Pot experiments indicated that CPP-loaded Tri-milR29 improved disease control efficacy by 37.5%. A six-month field trial further confirmed that its field control rate reached 78.71%, which was close to the commercial fungicide procymidone (82.84%). Understanding the targets and mechanism of Tri-milR29, along with its enhanced performance via CPP facilitation, could support the broader application of dsRNA-CPP in other plant-pathogen systems, leading to reduced chemical inputs and encouraging safer, more environmentally-friendly alternatives.
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