College of Food and Drug, Luoyang Normal University, Luoyang 471934, China.
Institute of Medicinal Plant Development, Chinese Academy of Medical Sciences & Peking Union Medical College, No. 151, Malianwa North Road, Beijing 100193, China.
Molecules. 2023 Jan 20;28(3):1040. doi: 10.3390/molecules28031040.
The therapeutic efficacy of nanoscale drug delivery systems is related to particle size, zeta potential, morphology, and other physicochemical properties. The structure and composition of nanocarriers may affect their physicochemical properties. To systematically evaluate these characteristics, three analogues, namely polyethylene glycol (PEG), PEG-conjugated octadecylamine (PEG-C18), and tri(ethylene glycol) (TEG), were explored as nanocarriers to entrap celastrol (CSL) via the injection-combined dialysis method. CSL nanoparticles were successfully prepared as orange milky solutions, which revealed a similar particle size of approximately 120 nm, with narrow distribution and a negative zeta potential of -20 mV. All these CSL nanoparticles exhibited good storage stability and media stability but presented different drug-loading capacities (DLCs), release profiles, cytotoxicity, and hemolytic activity. For DLCs, PEG-C18/CSL exhibited better CSL entrapment capacity. Regarding the release profiles, TEG/CSL showed the lowest release rate, PEG-C18/CSL presented a moderate release rate, and PEG/CSL exhibited a relatively fast release rate. Based on the different release rates, PEG-C18/CSL and TEG/CSL showed higher degrees of cytotoxicity than PEG/CSL. Furthermore, TEG/CSL showed the lowest membrane toxicity, and its hemolytic rate was below 20%. These results suggest that the structural effects of nanocarriers can affect the interactions between nanocarriers and drugs, resulting in different release profiles and antitumor activity.
纳米药物递送系统的治疗效果与颗粒大小、Zeta 电位、形态等物理化学性质有关。纳米载体的结构和组成可能会影响其物理化学性质。为了系统地评估这些特性,我们探索了三种类似物,即聚乙二醇(PEG)、PEG 接枝十八烷基胺(PEG-C18)和三甘醇(TEG),作为纳米载体,通过注射联合透析法包载雷公藤红素(CSL)。成功制备了呈橙色乳光溶液的 CSL 纳米粒子,其粒径约为 120nm,分布较窄,Zeta 电位为-20mV。所有这些 CSL 纳米粒子均表现出良好的储存稳定性和介质稳定性,但表现出不同的载药量(DLC)、释放曲线、细胞毒性和溶血活性。对于 DLC,PEG-C18/CSL 表现出更好的 CSL 包封能力。就释放曲线而言,TEG/CSL 表现出最低的释放率,PEG-C18/CSL 表现出中等释放率,PEG/CSL 表现出相对较快的释放率。基于不同的释放率,PEG-C18/CSL 和 TEG/CSL 表现出比 PEG/CSL 更高的细胞毒性程度。此外,TEG/CSL 表现出最低的膜毒性,其溶血率低于 20%。这些结果表明,纳米载体的结构效应可以影响纳米载体与药物之间的相互作用,从而导致不同的释放曲线和抗肿瘤活性。