ArticlePlant methods2025
An optimized protocol for plant extracellular vesicles isolation from Ophiopogon japonicus root: a comparative evaluation based on miRNA cargo.
Article in Plant methods, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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The trial behind it
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Who cites it
8 citing papers in PubMed.
- Cross-stress memory in plants: mobile RNAs, extracellular vesicles, and local-to-systemic signal integration.Plant molecular biology · 2026Review
- Progress, Challenges, and Standardization Pathways in the Isolation and Purification Techniques of Plant-Derived Vesicles.Plants (Basel, Switzerland) · 2026Review
- Cargo-driven extracellular vesicles as pharmaceutical nanocarriers: A pharmaceutics-oriented comparison of animal exosomes and plant-derived exosome-like nanoparticles.International journal of pharmaceutics: X · 2026Review
- Engineering Strategies for Plant-Derived Extracellular Vesicles: Modification, Drug Delivery Performance, and Synergistic Effects with Gel Composite Systems.Pharmaceutics · 2026Review
- Plant-Derived Nanovesicles: A Comprehensive Review from Isolation to Clinical Translation-Unlocking Natural Nanocarriers for Biomedical Applications.Biomolecules · 2026Review
- Plant-Derived Nanocarriers for Drug Delivery: A Unified Framework Integrating Extracellular Vesicles, Engineered Phytocarriers, Hybrid Platforms, and Bioinspired Systems.Plants (Basel, Switzerland) · 2026Review
- Secreted molecules as modulators of somatic embryogenesis efficiency - an overview.Frontiers in plant science · 2026Review
- Oral plant-derived exosome-like nanovesicles: a new therapeutic perspective for intestinal diseases.Frontiers in pharmacology · 2026Review
Corrections and comments
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Authors and funding
10 authors.
Funding
Abstract
backgroundPlant extracellular vesicles (EVs), hold significant therapeutic potential due to their roles in intercellular communication and cross-kingdom regulation, primarily mediated by their microRNA (miRNA) cargo. However, isolating high-purity plant EVs from complex plant tissues, such as the tuberous roots of Ophiopogon japonicus, is challenging due to the dense cell wall matrix and high content of contaminants like polysaccharides. Existing isolation methods, including differential ultracentrifugation (DUC) and density gradient ultracentrifugation (DGUC), involve trade-offs between yield, purity, and vesicle integrity, necessitating the development of optimized protocols.
resultsWe developed and systematically optimized an integrated protocol for isolating high-purity EVs from O. japonicus roots. Key optimizations included: (1) refining the DUC protocol by incorporating a double ultracentrifugation step; (2) implementing a modified DGUC approach with a pre-clearing step for superior debris removal; and (3) evaluating enzymatic pre-treatment with cellulase and pectinase to enhance EVs release. Comparative analysis demonstrated that the optimized method, particularly utilizing enzymatic pre-processing and double ultracentrifugation, significantly improved plant EVs yield and purity. Small RNA (sRNA) sequencing of the resulting high-purity EVs successfully characterized their functional miRNA cargo profile, validating the efficacy of the isolation strategy.
conclusionsThis study establishes a robust and adaptable pipeline for isolating high-quality, functionally intact plant EVs from challenging plant root tissues. The optimized protocol effectively addresses the critical methodological challenges of yield and purity, enabling reliable downstream functional characterization and advancing therapeutic investigations of plant-derived EVs.
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Registered trials
Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.