Key Laboratory of Applied Chemistry, Hebei Key Laboratory of Heavy Metal Deep-remediation in Water and Resource Reuse, College of Environmental and Chemical Engineering, Yanshan University, Qinhuangdao 066004, China; State Key Laboratory of Metastable Materials Science and Technology, Yanshan University, Qinhuangdao 066004, China.
Key Laboratory of Applied Chemistry, Hebei Key Laboratory of Heavy Metal Deep-remediation in Water and Resource Reuse, College of Environmental and Chemical Engineering, Yanshan University, Qinhuangdao 066004, China.
Int J Pharm. 2021 May 1;600:120502. doi: 10.1016/j.ijpharm.2021.120502. Epub 2021 Mar 19.
Poly(amido amine) dendrimers and indocyanine green have inevitable interaction with proteins and cells, which induces biological toxicity and reduces therapeutic efficacy in vivo. To overcome these shortcomings, a new drug delivery system G5MEK7C(n)-ICG with a "stealth" layer was prepared. The surface of G5MEK7C(n)-ICG was modified with double-layer super hydrophilic zwitterionic materials. In the "stealth" double-layer structure, the outer layer was consisted of zwitterionic Glu-Lys-Glu-Lys-Glu-Lys-Cys (EK7) peptide, and the inner layer was composed of amino and carboxyl groups with a ratio of 1:1. DLS results showed that the average hydrodynamic size of G5MEK7C(n)-ICG was about 25-30 nm, and the zeta potential was proven to undergo a slight charge reversal with the increasing pH values of solutions. Furthermore, G5MEK7C(n)-ICG exhibited excellent biocompatibility to red blood cells and proteins resistance. Photothermal and photodynamic experiments demonstrated that G5MEK7C(n)-ICG had a good photothermal conversion effect and generated singlet oxygen (O) under laser irradiation. The MTT and hemolysis results showed that the toxicity of G5 PAMAM was significantly reduced after modification double-layer structure. Cytotoxicity studies and flow cytometry showed G5MEK7C(70)-ICG under laser irradiation had a good effect on killing A549 cells. More importantly, the tumor inhibition rate of mice treated with G5MEK7C(70)-ICG (under laser irradiation) was 78.2% in vivo, which was higher than that of mice treated with free ICG. Compared with free ICG, G5MEK7C(70)-ICG caused less damage to the liver according to the enzyme activities of alanine aminotransferase (ALT) and aspartate aminotransferase (AST). Therefore, dendrimers modified with a zwitterionic double layer will be a promising candidate as a drug delivery system.
聚酰胺-胺树枝状大分子和吲哚菁绿与蛋白质和细胞不可避免地相互作用,导致体内生物毒性和治疗效果降低。为了克服这些缺点,制备了具有“隐身”层的新型药物递送系统 G5MEK7C(n)-ICG。G5MEK7C(n)-ICG 的表面用双层超亲水性两性离子材料进行修饰。在“隐身”双层结构中,外层由两性离子 Glu-Lys-Glu-Lys-Glu-Lys-Cys (EK7) 肽组成,内层由氨基和羧基组成,比例为 1:1。DLS 结果表明,G5MEK7C(n)-ICG 的平均水动力粒径约为 25-30nm,并且随着溶液 pH 值的增加,证明其表面zeta 电位发生轻微的电荷反转。此外,G5MEK7C(n)-ICG 对红细胞和蛋白质具有优异的抗干扰能力。光热和光动力实验表明,G5MEK7C(n)-ICG 具有良好的光热转换效果,并在激光照射下产生单线态氧(O)。MTT 和溶血实验表明,修饰双层结构后,G5PAMAM 的毒性明显降低。细胞毒性研究和流式细胞术表明,在激光照射下,G5MEK7C(70)-ICG 对 A549 细胞具有良好的杀伤效果。更重要的是,在体内,经 G5MEK7C(70)-ICG(激光照射)处理的小鼠肿瘤抑制率为 78.2%,高于游离 ICG 处理的小鼠。与游离 ICG 相比,根据丙氨酸氨基转移酶(ALT)和天冬氨酸氨基转移酶(AST)的酶活性,G5MEK7C(70)-ICG 对肝脏的损伤较小。因此,用两性离子双层修饰的树枝状大分子将成为有前途的药物递送系统候选物。