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基因电转移和细胞电融合作为一种生成激活癌细胞疫苗的单步技术的可行性研究。

Feasibility Study for the Use of Gene Electrotransfer and Cell Electrofusion as a Single-Step Technique for the Generation of Activated Cancer Cell Vaccines.

机构信息

Faculty of Health and Life Sciences, Department of Chemistry and Biomedical Sciences, Linnaeus University, 391 82, Kalmar, Sweden.

Faculty of Medicine, Institute of Biophysics, University of Ljubljana, Vrazov Trg 2, 1000, Ljubljana, Slovenia.

出版信息

J Membr Biol. 2024 Dec;257(5-6):377-389. doi: 10.1007/s00232-024-00320-5. Epub 2024 Aug 12.

Abstract

Cell-based therapies hold great potential for cancer immunotherapy. This approach is based on manipulation of dendritic cells to activate immune system against specific cancer antigens. For the development of an effective cell vaccine platform, gene transfer, and cell fusion have been used for modification of dendritic or tumor cells to express immune (co)stimulatory signals and to load dendritic cells with tumor antigens. Both, gene transfer and cell fusion can be achieved by single technique, a cell membrane electroporation. The cell membrane exposed to external electric field becomes temporarily permeable, enabling introduction of genetic material, and also fusogenic, enabling the fusion of cells in the close contact. We tested the feasability of combining gene electrotransfer and electrofusion into a single-step technique and evaluated the effects of electroporation buffer, pulse parameters, and cell membrane fluidity for single or combined method of gene delivery or cell fusdion. We determined the percentage of fused cells expressing green fluorescence protein (GFP) in a murine cell model of melanoma B16F1, cell line used in our previous studies. Our results suggest that gene electrotransfer and cell electrofusion can be applied in a single step. The percentage of viable hybrid cells expressing GFP depends on electric pulse parameters and the composition of the electroporation buffer. Furthermore, our results suggest that cell membrane fluidity is not related to the efficiency of the gene electrotransfer and electrofusion. The protocol is compatible with microfluidic devices, however further optimization of electric pulse parameters and buffers is still needed.

摘要

基于细胞的疗法在癌症免疫疗法中具有巨大的潜力。这种方法基于树突状细胞的操纵,以激活免疫系统对抗特定的癌症抗原。为了开发有效的细胞疫苗平台,基因转移和细胞融合已被用于修饰树突状细胞或肿瘤细胞,以表达免疫(共)刺激信号,并将肿瘤抗原加载到树突状细胞中。基因转移和细胞融合都可以通过单一技术,细胞膜电穿孔来实现。暴露于外部电场的细胞膜暂时变得可渗透,从而能够引入遗传物质,并且也具有融合性,能够使紧密接触的细胞融合。我们测试了将基因电转移和电融合组合成单一技术的可行性,并评估了电穿孔缓冲液、脉冲参数和细胞膜流动性对单一或组合基因传递或细胞融合方法的影响。我们在我们之前研究中使用的黑色素瘤 B16F1 细胞系的鼠细胞模型中确定了表达绿色荧光蛋白 (GFP) 的融合细胞的百分比。我们的结果表明,基因电转移和细胞电融合可以应用于单一步骤。表达 GFP 的存活杂交细胞的百分比取决于电脉冲参数和电穿孔缓冲液的组成。此外,我们的结果表明,细胞膜流动性与基因电转移和电融合的效率无关。该方案与微流控设备兼容,但仍需要进一步优化电脉冲参数和缓冲液。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7dd1/11584437/4d54db7a5b59/232_2024_320_Fig1_HTML.jpg

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