Engineered Rhizobacteria Exploit Bacterial Vesicles for Cross‐Kingdom RNAi and Soilborne Disease Control

The escalating severity of antifungal resistance necessitates novel crop protection strategies. RNAi is promising but faces challenges including environmental instability of dsRNA and poor cellular delivery efficiency. In this study, we engineered the cotton rhizobacterium Pantoea agglomerans YC4 to deliver dsRNA into Verticillium dahliae. Small RNA-seq revealed that bacterial outer membrane vesicles (OMVs) selectively enrich specific endogenous sRNAs compared with intracellular compartments, with a congruent sRNA enrichment pattern observed in fungal cells, thus confirming OMVs as the primary carriers for cross-kingdom RNA delivery. Synthetic biology strategies, including promoter engineering and OmpA-DRB4 fusion, further boosted dsRNA production and OMVs loading capacity. Greenhouse trials demonstrated the persistent colonization of engineered strain in the cotton rhizosphere, and alleviated Verticillium wilt symptoms and reduced fungal burden. This work establishes an engineered rhizosphere symbiont platform for in situ RNAi delivery, offering a practical and sustainable strategy for controlling soil-borne fungal diseases.

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Publication Details

Journal
Plant Cell & Environment
Published
2026-09-29
DOI
https://doi.org/10.1111/pce.70939
Primary Topic
Plant-Microbe Interactions and Immunity
Type
article
Field-Weighted Citation Impact
0.00
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article

Engineered Rhizobacteria Exploit Bacterial Vesicles for Cross‐Kingdom RNAi and Soilborne Disease Control

Yanyan Dang, Yan Zhang, Peihan Wu, Genlin Zhang et al.
Plant Cell & Environment
Plant-Microbe Interactions and Immunity
article

Engineered Rhizobacteria Exploit Bacterial Vesicles for Cross‐Kingdom RNAi and Soilborne Disease Control

Yanyan Dang, Yan Zhang, Peihan Wu, Genlin Zhang, Di Qiu, Chao Zhou, Haifeng Ding, Mingyang Liu
article en

Abstract

The escalating severity of antifungal resistance necessitates novel crop protection strategies. RNAi is promising but faces challenges including environmental instability of dsRNA and poor cellular delivery efficiency. In this study, we engineered the cotton rhizobacterium Pantoea agglomerans YC4 to deliver dsRNA into Verticillium dahliae. Small RNA-seq revealed that bacterial outer membrane vesicles (OMVs) selectively enrich specific endogenous sRNAs compared with intracellular compartments, with a congruent sRNA enrichment pattern observed in fungal cells, thus confirming OMVs as the primary carriers for cross-kingdom RNA delivery. Synthetic biology strategies, including promoter engineering and OmpA-DRB4 fusion, further boosted dsRNA production and OMVs loading capacity. Greenhouse trials demonstrated the persistent colonization of engineered strain in the cotton rhizosphere, and alleviated Verticillium wilt symptoms and reduced fungal burden. This work establishes an engineered rhizosphere symbiont platform for in situ RNAi delivery, offering a practical and sustainable strategy for controlling soil-borne fungal diseases.

Plant Cell & Environment
Shihezi University (CN), Yibin University (CN)
Openalex Percentile: Top 14%
Plant-Microbe Interactions and Immunity
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Engineered Rhizobacteria Exploit Bacterial Vesicles for Cross‐Kingdom RNAi and Soilborne Disease Control — Yanyan Dang, Yan Zhang, et al. · Plant Cell & Environment (2026) | TGRS Research Map | TGRS