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利用纳米结构全纤维素复合膜实现植物衍生纳米囊泡的可扩展纯化、储存和局部治疗释放。

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

机构信息

Laboratory of Developmental Biology, Disease Networks Research Unit, Faculty of Biochemistry and Molecular Medicine, University of Oulu, P.O. Box 5000, FI-90014 Oulu, Finland.

Kvantum Institute, University of Oulu, 90014 Oulu, Finland.

出版信息

Biomacromolecules. 2024 Sep 9;25(9):5847-5859. doi: 10.1021/acs.biomac.4c00535. Epub 2024 Aug 27.

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.

摘要

植物源纳米囊泡,如越橘纳米囊泡(BNV),作为下一代生物治疗剂和功能性食品成分具有巨大的应用前景;然而,其大规模的分离、纯化和储存仍然是一个挑战。在本研究中,采用生物相容性和纳米结构的全纤维素膜作为一种可扩展且简单的方法来分离 BNV。该膜由醋酸纤维素基质组成,其中注入了阴离子或阳离子纳米纤维素,通过静电和尺寸排阻介导的深度过滤来选择性捕获 BNV。此外,复合膜的表面充当 BNV 的储存基质,确保其在 4°C 下的长期稳定性。通过低压真空过滤辅助洗脱或在液体介质中扩散可以迅速将储存在膜中的 BNV 释放出来。提取的 BNV 的形态、生物活性和稳定性得以保留,并且可以调节 BNV 在不同细胞培养物中的释放速率,从而促进其用于局部治疗。因此,该方法为纳米囊泡的可扩展生产、纯化和储存铺平了道路,并推进了它们在生物治疗和功能性食品中的应用。

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