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通过颗粒状水凝胶介导的聚合物纳米粒给药来改变细胞-药物相互作用,以提高基因治疗的安全性和疗效。

Transforming Cell-Drug Interaction through Granular Hydrogel-Mediated Delivery of Polyplex Nanoparticles for Enhanced Safety and Extended Efficacy in Gene Therapy.

机构信息

State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, 30 Puzhu South Road, Nanjing 211816, P. R. China.

Electric Power Branch, Huaibei Mining Co., Ltd, Huaibei 235000, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2024 Jul 31;16(30):39784-39795. doi: 10.1021/acsami.4c05425. Epub 2024 Jul 22.

Abstract

The utilization of hydrogels for DNA/cationic polymer polyplex nanoparticle (polyplex) delivery has significantly advanced gene therapy in tissue regeneration and cancer treatment. However, persistent challenges related to the efficacy and safety of encapsulated polyplexes, stemming from issues such as aggregation, degradation, or difficulties in controlled release during or postintegration with hydrogel scaffolds, necessitate further exploration. Here, we introduce an injectable gene therapy gel achieved by incorporating concentrated polyplexes onto densely packed hydrogel microparticles (HMPs). Polyplexes, when uniformly adhered to the gene therapy gel through reversible electrostatic interactions, can detach from the HMP surface in a controlled manner, contrasting with free polyplexes, and thereby reducing dose-dependent toxicity during transfection. Additionally, the integration of RGD cell adhesion peptides enhances the scaffolding characteristics of the gel, facilitating cell adhesion, migration, and further minimizing toxicity during gene drug administration. Notably, despite the overall transfection efficiency showing average performance, utilizing confocal microscopy to meticulously observe and analyze the cellular states infiltrating into various depths of the gene therapy gel resulted in the groundbreaking discovery of significantly enhanced local transfection efficiency, with primary cell transfection approaching 80%. This phenomenon could be potentially attributed to the granular hydrogel-mediated delivery of polyplex nanoparticles, which revolutionizes the spatial and temporal distribution and thus the "encounter" mode between polyplexes and cells. Moreover, the gene therapy gel's intrinsic injectability and self-healing properties offer ease of administration, making it a highly promising candidate as a novel gene transfection gel dressing with significant potential across various fields, including regenerative medicine and innovative living materials.

摘要

水凝胶在 DNA/阳离子聚合物聚电解质复合物(polyplex)纳米颗粒(polyplex)递送上的应用,显著推进了组织再生和癌症治疗领域的基因治疗。然而,封装的 polyplex 存在功效和安全性方面的持续挑战,源于聚集、降解或在与水凝胶支架整合过程中控制释放等问题,需要进一步探索。在这里,我们介绍了一种可注射的基因治疗凝胶,通过将浓缩的 polyplex 整合到密集堆积的水凝胶微颗粒(HMP)上实现。当 polyplex 通过可逆静电相互作用均匀地附着在基因治疗凝胶上时,它们可以以可控的方式从 HMP 表面脱离,与游离 polyplex 形成对比,从而减少转染过程中的剂量依赖性毒性。此外,整合 RGD 细胞黏附肽增强了凝胶的支架特性,促进了细胞黏附、迁移,并进一步最小化基因药物给药过程中的毒性。值得注意的是,尽管整体转染效率表现中等,但利用共聚焦显微镜仔细观察和分析渗透到基因治疗凝胶不同深度的细胞状态,却发现了显著增强的局部转染效率,主要细胞转染率接近 80%。这种现象可能归因于颗粒状水凝胶介导的 polyplex 纳米颗粒的递送,彻底改变了 polyplex 与细胞之间的空间和时间分布以及“相遇”模式。此外,基因治疗凝胶的固有可注射性和自修复特性提供了给药的便利性,使其成为一种极具前途的新型基因转染凝胶敷料,在再生医学和创新活性材料等各个领域具有显著的应用潜力。

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