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Scalable Purification, Storage, and Release of Plant-Derived Nanovesicles for Local Therapy Using Nanostructured All-Cellulose Composite Membranes. | LitMetric

AI Article Synopsis

  • Plant-derived nanovesicles (BNVs) have great potential as biotherapeutics and functional food ingredients, but their large-scale isolation, purification, and storage are challenging.
  • The study introduces a new method using composite all-cellulose membranes that selectively capture and stabilize BNVs through electrostatic and size-exclusion filtration.
  • This method allows for the efficient production, purification, and release of BNVs while maintaining their bioactivity, making it promising for therapeutic applications.

Article Abstract

Plant-derived nanovesicles such as bilberries nanovesicles (BNVs) show immense promise as next-generation biotherapeutics and functional food ingredients; however, their isolation, purification, and storage on a large scale remain a challenge. In this study, biocompatible and nanostructured composite all-cellulose membranes are introduced as a scalable and straightforward approach to the isolation of BNV. The membranes consisting of a cellulose acetate matrix infused with anionic or cationic nanocelluloses promoted selective capture of BNVs through electrostatic and size-exclusion-mediated depth filtration. Furthermore, the surface of the composite membrane acted as a storage matrix for BNVs, ensuring their prolonged stability at 4 °C. The BNVs stored in the membrane could be promptly released through elution assisted by low-pressure vacuum filtration or diffusion in liquid media. The morphology, bioactivity, and stability of the extracted BNVs were preserved, and the release rate of BNVs in different cell cultures could be regulated, facilitating their use for local therapy. Consequently, this approach paves the way for the scalable production, purification, and storage of nanovesicles and advances their use in biotherapeutics and functional foods.

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Source
http://dx.doi.org/10.1021/acs.biomac.4c00535DOI Listing

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