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定制基于磁铁矿纳米颗粒的纳米载体用于基因递送:在还原条件下发挥CRISPRa的潜力

Tailoring Magnetite-Nanoparticle-Based Nanocarriers for Gene Delivery: Exploiting CRISPRa Potential in Reducing Conditions.

作者信息

Arango David, Cifuentes Javier, Puentes Paola Ruiz, Beltran Tatiana, Bittar Amaury, Ocasión Camila, Muñoz-Camargo Carolina, Bloch Natasha I, Reyes Luis H, Cruz Juan C

机构信息

Department of Biomedical Engineering, Universidad de Los Andes, Bogotá 111711, Colombia.

Department of Chemical and Food Engineering, Universidad de Los Andes, Bogotá 111711, Colombia.

出版信息

Nanomaterials (Basel). 2023 May 31;13(11):1782. doi: 10.3390/nano13111782.

Abstract

Gene delivery has emerged as a promising alternative to conventional treatment approaches, allowing for the manipulation of gene expression through gene insertion, deletion, or alteration. However, the susceptibility of gene delivery components to degradation and challenges associated with cell penetration necessitate the use of delivery vehicles for effective functional gene delivery. Nanostructured vehicles, such as iron oxide nanoparticles (IONs) including magnetite nanoparticles (MNPs), have demonstrated significant potential for gene delivery applications due to their chemical versatility, biocompatibility, and strong magnetization. In this study, we developed an ION-based delivery vehicle capable of releasing linearized nucleic acids (tDNA) under reducing conditions in various cell cultures. As a proof of concept, we immobilized a CRISPR activation (CRISPRa) sequence to overexpress the gene on MNPs functionalized with polyethylene glycol (PEG), 3-[(2-aminoethyl)dithio]propionic acid (AEDP), and a translocating protein (OmpA). The nucleic sequence (tDNA) was modified to include a terminal thiol group and was conjugated to AEDP's terminal thiol via a disulfide exchange reaction. Leveraging the natural sensitivity of the disulfide bridge, the cargo was released under reducing conditions. Physicochemical characterizations, including thermogravimetric analysis (TGA) and Fourier-transform infrared (FTIR) spectroscopy, confirmed the correct synthesis and functionalization of the MNP-based delivery carriers. The developed nanocarriers exhibited remarkable biocompatibility, as demonstrated by the hemocompatibility, platelet aggregation, and cytocompatibility assays using primary human astrocytes, rodent astrocytes, and human fibroblast cells. Furthermore, the nanocarriers enabled efficient cargo penetration, uptake, and endosomal escape, with minimal nucleofection. A preliminary functionality test using RT-qPCR revealed that the vehicle facilitated the timely release of CRISPRa vectors, resulting in a remarkable 130-fold overexpression of . We demonstrate the potential of the developed ION-based nanocarrier as a versatile and promising gene delivery vehicle with potential applications in gene therapy. The developed nanocarrier is capable of delivering any nucleic sequence (up to 8.2 kb) once it is thiolated using the methodology explained in this study. To our knowledge, this represents the first MNP-based nanocarrier capable of delivering nucleic sequences under specific reducing conditions while preserving functionality.

摘要

基因递送已成为一种有前景的替代传统治疗方法的手段,它能够通过基因插入、缺失或改变来操纵基因表达。然而,基因递送组件易降解以及与细胞穿透相关的挑战使得需要使用递送载体来实现有效的功能性基因递送。纳米结构载体,如包括磁铁矿纳米颗粒(MNP)在内的氧化铁纳米颗粒(ION),由于其化学多功能性、生物相容性和强磁性,在基因递送应用中显示出巨大潜力。在本研究中,我们开发了一种基于ION的递送载体,它能够在各种细胞培养物的还原条件下释放线性化核酸(tDNA)。作为概念验证,我们将CRISPR激活(CRISPRa)序列固定在经聚乙二醇(PEG)、3-[(2-氨基乙基)二硫代]丙酸(AEDP)和转运蛋白(OmpA)功能化的MNP上,以过表达该基因。核酸序列(tDNA)经过修饰以包含末端硫醇基团,并通过二硫键交换反应与AEDP的末端硫醇偶联。利用二硫键的天然敏感性,货物在还原条件下释放。包括热重分析(TGA)和傅里叶变换红外(FTIR)光谱在内的物理化学表征证实了基于MNP的递送载体的正确合成和功能化。使用原代人星形胶质细胞、啮齿动物星形胶质细胞和人成纤维细胞进行的血液相容性、血小板聚集和细胞相容性试验表明,所开发的纳米载体具有显著的生物相容性。此外,纳米载体能够实现高效的货物穿透、摄取和内体逃逸,且核转染极少。使用RT-qPCR进行的初步功能测试表明,该载体促进了CRISPRa载体的及时释放,导致该基因显著过表达130倍。我们证明了所开发的基于ION的纳米载体作为一种通用且有前景的基因递送载体在基因治疗中的潜在应用。一旦使用本研究中解释的方法进行硫醇化,所开发的纳米载体能够递送任何核酸序列(长达8.2 kb)。据我们所知,这代表了第一种能够在特定还原条件下递送核酸序列同时保持功能的基于MNP的纳米载体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/38a3/10254418/8fc64e63e333/nanomaterials-13-01782-g0A1.jpg

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