Paul C. Lauterbur Research Center for Biomedical Imaging, Institute of Biomedical and Health Engineering, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, China.
PLoS One. 2013 Sep 26;8(9):e76544. doi: 10.1371/journal.pone.0076544. eCollection 2013.
A novel cationic microbubble (MB) for improvement of the DNA loading capacity and the ultrasound-mediated gene delivery efficiency has been developed; it has been prepared with commercial lipids and a stearic acid modified polyethylenimine 600 (Stearic-PEI600) polymer synthesized via acylation reaction of branched PEI600 and stearic acid mediated by N, N'-carbonyldiimidazole (CDI). The MBs' concentration, size distribution, stability and zeta potential (ζ-potential) were measured and the DNA loading capacity was examined as a function of the amount of Stearic-PEI600. The gene transfection efficiency and cytotoxicity were also examined using breast cancer MCF-7 cells via the reporter plasmid pCMV-Luc, encoding the firefly luciferase gene. The results showed that the Stearic-PEI600 polymer caused a significant increase in magnitude of ζ-potential of MBs. The addition of DNA into cationic MBs can shift ζ-potentials from positive to negative values. The DNA loading capacity of the MBs grew linearly from (5±0.2) ×10⁻³ pg/µm² to (20±1.8) ×10⁻³ pg/µm² when Stearic-PEI600 was increased from 5 mol% to 30 mol%. Transfection of MCF-7 cells using 5% PEI600 MBs plus ultrasound exposure yielded 5.76±2.58×10³ p/s/cm²/sr average radiance intensity, was 8.97- and 7.53-fold higher than those treated with plain MBs plus ultrasound (6.41±5.82) ×10² p/s/cm²/sr, (P<0.01) and PEI600 MBs without ultrasound (7.65±6.18) ×10² p/s/cm²/sr, (P<0.01), respectively. However, the PEI600 MBs showed slightly higher cytotoxicity than plain MBs. The cells treated with PEI600-MBs and plain MBs plus ultrasound showed 59.5±6.1% and 71.4±7.1% cell viability, respectively. In conclusion, our study demonstrated that the novel cationic MBs were able to increase DNA loading capacity and gene transfection efficiency and could be potentially applied in targeted gene delivery and therapy.
一种新型阳离子微泡(MB)已被开发用于提高 DNA 载量和超声介导的基因转染效率;它是由商业脂质和通过 N,N'-碳二亚胺(CDI)介导的支化 PEI600 和硬脂酸的酰化反应合成的硬脂酸改性的聚亚乙基亚胺 600(Stearic-PEI600)聚合物制备的。测量了 MB 的浓度、粒径分布、稳定性和 ζ 电位(ζ-potential),并考察了 Stearic-PEI600 的用量与 DNA 载量的关系。还使用乳腺癌 MCF-7 细胞通过报告质粒 pCMV-Luc(编码萤火虫荧光素酶基因)研究了基因转染效率和细胞毒性。结果表明,Stearic-PEI600 聚合物使 MB 的 ζ 电位显著增加。将 DNA 加入阳离子 MB 中可以使 ζ 电位从正变为负。当 Stearic-PEI600 从 5 mol%增加到 30 mol%时,MB 的 DNA 载量从(5±0.2)×10⁻³ pg/µm²线性增加到(20±1.8)×10⁻³ pg/µm²。使用 5%PEI600 MBs 加超声照射转染 MCF-7 细胞,平均辐射强度为 5.76±2.58×10³ p/s/cm²/sr,分别比用普通 MBs 加超声(6.41±5.82)×10² p/s/cm²/sr 和无超声的 PEI600 MBs(7.65±6.18)×10² p/s/cm²/sr 高 8.97-和 7.53 倍(P<0.01)。然而,PEI600 MBs 显示出比普通 MBs 略高的细胞毒性。用 PEI600-MBs 和普通 MBs 加超声处理的细胞活力分别为 59.5±6.1%和 71.4±7.1%。总之,我们的研究表明,新型阳离子 MBs 能够提高 DNA 载量和基因转染效率,可应用于靶向基因传递和治疗。