TP53 缺失通过上调 NF-κB-IFN-β-MHC-Ia 信号促进骨肉瘤对 NK 细胞的抵抗
TP53 Loss Elevates NF-κB-IFN-β-MHC-Ia Signaling to Promote NK Cell Resistance in Osteosarcoma.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:In vitro assessments of nanoplexes of polyethylenimine-coated graphene oxide-plasmid through various cancer cell lines and primary mesenchymal stem cells.
In vitro assessments of nanoplexes of polyethylenimine-coated graphene oxide-plasmid through various cancer cell lines and primary mesenchymal stem cells.
分数与星级只用于站内排序 —— 不代表疗效、安全性或个人适用性。
高效基因治疗依赖有效的基因递送系统。病毒基因递送在外源基因转移和表达方面表现出色,但其免疫原性及难以大规模生产限制了临床应用。相比之下,基于纳米颗粒的基因递送系统因免疫原性较低且便于规模化生产而日益受到关注。
不过,与病毒系统相比,其转染效率较低仍是重大障碍。本研究考察了聚乙烯亚胺(PEI)包被氧化石墨烯在HEK293T、Calu-3、Calu-6细胞系及人原代骨髓间充质干细胞(MSC)中的转染效率。氧化石墨烯具有较大的表面积比和良好的生物相容性,是基因递送系统的理想工具;但其在水环境中的分散性较差,首先需要克服这一障碍。为此,我们在pH 7条件下对氧化石墨烯进行至少5小时超声处理,以提高其在水中的分散性和稳定性。随后将氧化石墨烯与支化PEI(25 kDa)偶联,使其带正电,从而能够凝聚天然带负电的核酸。采用动态光散射(DLS)、傅里叶变换红外光谱(FT-IR)和原子力显微镜(AFM)表征合成纳米载体(GO-PEI)的理化特性。多聚复合物所用质粒含有GFP基因,因此可通过荧光显微镜和流式细胞术验证转染效率。GO-PEI载体对HEK293T细胞转染效率很高,但对MSC和Calu-3细胞的转染效率明显较低。
我们推测,这些细胞中转染效率低的主要原因是载体毒性较高。尽管如此,考虑到氧化石墨烯在药物递送以及生物医学光学和电学应用方面的多种优势,我们建议使用生物相容性更好的材料对其进行功能化,以提升其作为这些细胞类型基因载体的潜力。
Efficient gene therapy relies on an efficient gene delivery system. Viral gene delivery approaches excel in transferring and expressing external genes; however, their immunogenicity and difficulty in large-scale production limit their clinical applications. In contrast, nanoparticle-based gene delivery systems have gained increasing attention due to less immunogenicity and more convenience for large-scale production.
Nevertheless, their poor transfection efficiency compared to viral systems remains a significant obstacle. In the present study, we investigated the transfection efficiency of our PEI-coated graphene oxides in HEK293T, Calu-3, Calu-6 cell lines, and primary human bone marrow mesenchymal stem cell (MSC). The high surface ratio and good biocompatibility of graphene oxide make it an appealing tool for gene delivery systems.
However, the low dispersity of graphene oxide in aqueous environments is the first barrier that needs to be conquered. For this, we enhanced the dispersity and stability of graphene oxide in water by sonicating it for at least 5 hours at a pH of 7. Then, graphene oxide was conjugated with branched PEI (25 kDa) to have a positive charge, enabling it to condense nucleic acids with a naturally negative potential.
The physio-chemical characteristics of our synthesized nano-carriers (GO-PEI) were determined by DLS, FT-IR, and AFM. The utilized plasmid in polyplexes contained a GFP gene, allowing us to verify transfection efficiency through fluorescent microscopy and flow cytometry. While GO-PEI carriers were highly efficient in transfecting HEK293T cells, the transfection efficiency in MSCs and Calu-3 cells was notably low.
We suppose that the main reason for the low transfection efficiency of GO-PEI in these cells is due to its higher toxicity. Despite this, considering the various advantages of graphene oxide in drug delivery as well as its optical and electrical applications in biomedicine, we propose to functionalize graphene oxide with more biocompatible materials to enhance its potential as a successful gene carrier in these cell types.
在 PubMed 查看 → 出版商原文(DOI) 全文 PDF(PMC)· 可下载 治疗专题与资料阅读指南 资料来源与翻译说明 报告译文或资料问题 →
MEMBER ACCOUNT
登录成功会直接打开下一页。