College of Materials Science and Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
Key Lab of Biobased Polymer Materials, Shandong Provincial Education Department, College of Polymer Science and Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
Mater Sci Eng C Mater Biol Appl. 2020 Jan;106:110294. doi: 10.1016/j.msec.2019.110294. Epub 2019 Oct 8.
Controlled release strategies of DNA vaccine hold promise for the design of in vivo vaccination platforms, yet the formulation and sustained delivery still pose a substantial challenge. In this study, we developed a novel hybrid dual-particulate delivery system, nanoparticle-in-microsphere (NIM), to integrate the advantages of nano-sized polymer/DNA polyplex with the sustained-release microsphere for DNA vaccine delivery. The nano-sized cores, consisting of polyethylene glycol-graft-polyethylenimine (PEG-g-PEI)/DNA polyplexes, were formulated into PLGA microspheres using a solid-in-oil-in-water (S/O/W) emulsion. The PEG block was used as stabilizing excipient to make DNA soluble and stable in organic solvent to prevent the inactivation of DNA at aqueous-organic interface during encapsulation. The fashion of DNA in dry solid state greatly increased the encapsulation efficiency of DNA in NIMs. This new formulation exhibited a burst release less than 15% and then sustain release close to zero-order kinetics in physiological environment. In addition, the microspheres showed pH-sensitivity and degraded faster in lysosomal compartments, which contributed to the accelerated intracellular release kinetics of DNA. Finally, intramuscular injection of NIMs encoding HIV proteins elicited distinct humoral and cellular immune response in mice at low dose. These results thus may aid NIM-based vaccination towards more extensive clinical evaluations.
DNA 疫苗的控释策略为体内疫苗接种平台的设计带来了希望,但制剂和持续传递仍然是一个重大挑战。在这项研究中,我们开发了一种新型混合双颗粒递药系统,即纳米颗粒-微球(NIM),将纳米级聚合物/DNA 聚集体的优势与 DNA 疫苗传递的缓释微球相结合。纳米级核心由聚乙二醇接枝聚亚乙基亚胺(PEG-g-PEI)/DNA 聚集体组成,采用固态油包水(S/O/W)乳液法制成 PLGA 微球。PEG 嵌段用作稳定赋形剂,使 DNA 在有机溶剂中溶解且稳定,以防止 DNA 在包封过程中在水-有机界面失活。DNA 在干燥固体状态下的形式极大地提高了 NIM 中 DNA 的包封效率。这种新制剂在生理环境中表现出小于 15%的突释,然后接近零级动力学持续释放。此外,微球显示出 pH 敏感性,并在溶酶体隔室中更快降解,这有助于促进 DNA 的细胞内释放动力学。最后,肌肉内注射编码 HIV 蛋白的 NIM 在低剂量下可在小鼠中引发明显的体液和细胞免疫反应。因此,这些结果可能有助于基于 NIM 的疫苗接种进行更广泛的临床评估。