Yang Taihua, Xia Lei, Li Gen, Zhao Jie, Li Jie, Ge Jiahao, Yuan Qinggong, Zhang Jianjun, He Kang, Xia Qiang
Department of Liver Surgery, Renji Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai, China.
Department of Orthopedics, Ruijin Hospital, Shanghai Jiaotong University School of Medicine, Shanghai, China.
Front Bioeng Biotechnol. 2023 Mar 2;11:1160509. doi: 10.3389/fbioe.2023.1160509. eCollection 2023.
The intracellular delivery of messenger (m)RNA holds great potential for the discovery and development of vaccines and therapeutics. Yet, in many applications, a major obstacle to clinical translation of mRNA therapy is the lack of efficient strategy to precisely deliver RNA sequence to liver tissues and cells. In this study, we synthesized virus-like mesoporous silica (V-SiO) nanoparticles for effectively deliver the therapeutic RNA. Then, the cationic polymer polyethylenimine (PEI) was included for the further silica surface modification (V-SiO-P). Negatively charged mRNA motifs were successfully linked on the surface of V-SiO through electrostatic interactions with PEI (m@V-SiO-P). Finally, the supported lipid bilayer (LB) was completely wrapped on the bionic inspired surface of the nanoparticles (m@V-SiO-P/LB). Importantly, we found that, compared with traditional liposomes with mRNA loading (m@LNPs), the V-SiO-P/LB bionic-like morphology effectively enhanced mRNA delivery effect to hepatocytes both and , and PEI modification concurrently promoted mRNA binding and intracellular lysosomal escape. Furthermore, m@V-SiO-P increased the blood circulation time (t = 7 h) to be much longer than that of the m@LNPs (4.2 h). Understanding intracellular delivery mediated by the V-SiO-P/LB nanosystem will inspire the next-generation of highly efficient and effective mRNA therapies. In addition, the nanosystem can also be applied to the oral cavity, forehead, face and other orthotopic injections.
信使核糖核酸(mRNA)的细胞内递送在疫苗和治疗药物的发现与开发方面具有巨大潜力。然而,在许多应用中,mRNA疗法临床转化的一个主要障碍是缺乏将RNA序列精确递送至肝组织和细胞的有效策略。在本研究中,我们合成了病毒样介孔二氧化硅(V-SiO)纳米颗粒以有效递送治疗性RNA。然后,加入阳离子聚合物聚乙烯亚胺(PEI)对二氧化硅表面进行进一步修饰(V-SiO-P)。带负电荷的mRNA基序通过与PEI的静电相互作用成功连接在V-SiO表面(m@V-SiO-P)。最后,支撑脂质双层(LB)完全包裹在纳米颗粒的仿生表面上(m@V-SiO-P/LB)。重要的是,我们发现,与负载mRNA的传统脂质体(m@LNPs)相比,V-SiO-P/LB仿生形态在体内和体外均有效增强了mRNA向肝细胞的递送效果,并且PEI修饰同时促进了mRNA的结合和细胞内溶酶体逃逸。此外,m@V-SiO-P使血液循环时间(t = 7小时)比m@LNPs(4.2小时)长得多。了解由V-SiO-P/LB纳米系统介导的细胞内递送将为下一代高效有效的mRNA疗法带来启发。此外,该纳米系统还可应用于口腔、额头、面部等原位注射。