Duan Xing, Zhang Yi, Guo Mengran, Fan Na, Chen Kepan, Qin Shugang, Xiao Wen, Zheng Qian, Huang Hai, Wei Xiawei, Wei Yuquan, Song Xiangrong
Department of Critical Care Medicine, Department of Clinical Pharmacy, Frontiers Science Center for Disease-related Molecular Network, State Key Laboratory of Biotherapy and Cancer Center, West China Hospital, Sichuan University, Chengdu 610041, China.
West China Hospital, Sichuan University, Chengdu 610041, China.
Acta Pharm Sin B. 2023 Mar;13(3):942-954. doi: 10.1016/j.apsb.2022.08.015. Epub 2022 Aug 27.
The extraordinary advantages associated with mRNA vaccines, including their high efficiency, relatively low severity of side effects, and ease of manufacture, have enabled them to be a promising immunotherapy approach against various infectious diseases and cancers. Nevertheless, most mRNA delivery carriers have many disadvantages, such as high toxicity, poor biocompatibility, and low efficiency , which have hindered the widespread use of mRNA vaccines. To further characterize and solve these problems and develop a new type of safe and efficient mRNA delivery carrier, a negatively charged SA@DOTAP-mRNA nanovaccine was prepared in this study by coating DOTAP-mRNA with the natural anionic polymer sodium alginate (SA). Intriguingly, the transfection efficiency of SA@DOTAP-mRNA was significantly higher than that of DOTAP-mRNA, which was not due to the increase in cellular uptake but was associated with changes in the endocytosis pathway and the strong lysosome escape ability of SA@DOTAP-mRNA. In addition, we found that SA significantly increased the expression of LUC-mRNA in mice and achieved certain spleen targeting. Finally, we confirmed that SA@DOTAP-mRNA had a stronger antigen-presenting ability in E. G7-OVA tumor-bearing mice, dramatically inducing the proliferation of OVA-specific CLTs and ameliorating the antitumor effect. Therefore, we firmly believe that the coating strategy applied to cationic liposome/mRNA complexes is of potential research value in the field of mRNA delivery and has promising clinical application prospects.
信使核糖核酸(mRNA)疫苗具有诸多显著优势,包括高效性、相对较低的副作用严重程度以及易于生产等,使其成为一种针对各种传染病和癌症颇具前景的免疫治疗方法。然而,大多数mRNA递送载体存在诸多缺点,如高毒性、生物相容性差和效率低等,这些缺点阻碍了mRNA疫苗的广泛应用。为了进一步表征和解决这些问题,并开发一种新型的安全高效的mRNA递送载体,本研究通过用天然阴离子聚合物海藻酸钠(SA)包裹DOTAP-mRNA制备了带负电荷的SA@DOTAP-mRNA纳米疫苗。有趣的是,SA@DOTAP-mRNA的转染效率显著高于DOTAP-mRNA,这并非由于细胞摄取增加,而是与内吞途径的改变以及SA@DOTAP-mRNA强大的溶酶体逃逸能力有关。此外,我们发现SA显著增加了小鼠体内LUC-mRNA的表达,并实现了一定程度的脾脏靶向。最后,我们证实SA@DOTAP-mRNA在E.G7-OVA荷瘤小鼠中具有更强的抗原呈递能力,显著诱导OVA特异性细胞毒性T淋巴细胞(CLTs)的增殖并改善抗肿瘤效果。因此,我们坚信应用于阳离子脂质体/mRNA复合物的包被策略在mRNA递送领域具有潜在的研究价值,并具有广阔的临床应用前景。