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利用高效的siRNA负载和pH响应性小细胞外囊泡增强基因传递至乳腺癌细胞

Enhancing Gene Delivery to Breast Cancer with Highly Efficient siRNA Loading and pH-Responsive Small Extracellular Vesicles.

作者信息

Kim Gaeun, Zhu Runyao, Yu Sihan, Fan Bowen, Jeon Hyunsu, Leon Jennifer, Webber Matthew J, Wang Yichun

机构信息

Department of Chemical and Biomolecular Engineering, University of Notre Dame, Notre Dame, Indiana46556, United States.

出版信息

ACS Biomater Sci Eng. 2025 Jan 13;11(1):213-227. doi: 10.1021/acsbiomaterials.4c01595. Epub 2024 Dec 23.

Abstract

Small extracellular vesicles (sEVs) are promising nanocarriers for drug delivery to treat a wide range of diseases due to their natural origin and innate homing properties. However, suboptimal therapeutic effects, attributed to ineffective targeting, limited lysosomal escape, and insufficient delivery, remain challenges in effectively delivering therapeutic cargo. Despite advances in sEV-based drug delivery systems, conventional approaches need improvement to address low drug-loading efficiency and to develop surface functionalization techniques for precise targeting of cells of interest, all while preserving the membrane integrity of sEVs. We report an enhanced gene delivery system using multifunctional sEVs for highly efficient siRNA loading and delivery. The integration of chiral graphene quantum dots enhanced the loading capacity while preserving the structural integrity of the sEVs. Additionally, lysosomal escape is facilitated by functionalizing sEVs with pH-responsive peptides, fully harnessing the inherent homing effect of sEVs for targeted and precise delivery. These sEVs achieved a 1.74-fold increase in cytosolic cargo delivery compared to unmodified sEVs, resulting in substantial gene silencing of around 73%. Our approach has significant potential to advance sEV-based gene delivery in order to accelerate clinical progress.

摘要

小型细胞外囊泡(sEVs)因其天然来源和固有的归巢特性,有望成为用于治疗多种疾病的药物递送纳米载体。然而,由于靶向无效、溶酶体逃逸受限和递送不足导致的治疗效果欠佳,仍然是有效递送治疗性货物的挑战。尽管基于sEV的药物递送系统取得了进展,但传统方法仍需改进,以解决低载药效率问题,并开发用于精确靶向目标细胞的表面功能化技术,同时保持sEV的膜完整性。我们报告了一种使用多功能sEVs的增强型基因递送系统,用于高效装载和递送siRNA。手性石墨烯量子点的整合提高了装载能力,同时保持了sEVs的结构完整性。此外,通过用pH响应肽对sEVs进行功能化来促进溶酶体逃逸,充分利用sEVs固有的归巢效应进行靶向和精确递送。与未修饰的sEVs相比,这些sEVs的胞质货物递送增加了1.74倍,导致约73%的显著基因沉默。我们的方法在推进基于sEV的基因递送以加速临床进展方面具有巨大潜力。

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