Cheng Qingyuan, Duan Yiping, Fan Wei, Li Dongxu, Zhu Cuiwen, Ma Tiantian, Liu Jie, Yu Mingxia
Department of Laboratory Medicine, Zhongnan Hospital of Wuhan University, Wuhan, Hubei, China.
Department of Andrology/Sichuan Human Sperm Bank, West China Second University Hospital, Sichuan University, Chengdu, Sichuan, China.
Heliyon. 2023 Sep 9;9(9):e20028. doi: 10.1016/j.heliyon.2023.e20028. eCollection 2023 Sep.
Quantum Dots (QDs) modified with branched Polyethylene Glycol-amine (6- or 8-arm PEG-amine) coupled with methoxy PEG (mPEG) hold great promise for biomedical applications due to a long half-life in blood and negligible toxicity. However, the potential risks regarding their concomitant prolonged co-incubation with cardiovascular and blood cells remains inconclusive. In the present study, the feasible, effective and convenient proliferating-restricted cell line models representing the circulatory system were established to investigate the cellular internalization followed by intracellular outcomes and resulting acute/sub-acute cytotoxicity of the 6-arm PEG-amine/mPEG QDs. We found a dose-, time- and cell type-dependent cellular uptake of the 6-arm PEG-amine/mPEG QDs, which was ten-fold lower compared to the traditional linear PEG-modified counterpart. The QDs entered cells via multiple endocytic pathways and were mostly preserved in Golgi apparatus for at least one week instead of degradation in lysosomes, resulting in a minimal acute cytotoxicity, which is much lower than other types of PEG-modified QDs previously reported. However, a sub-acute cytotoxicity of QDs were observed several days post exposure using the concentrations eliciting no-significant acute cytotoxic effects, which was associated with elevated ROS generation caused by QDs remained inside cells. Finally, a non-cytotoxic concentration of the QDs was identified at the sub-acute cytotoxic level. Our study provided important information for clinical translation of branched PEG-amine/mPEG QDs by elucidating the QDs-cell interactions and toxicity mechanism using the proliferation-restricted cell models representing circulatory system. What's more, we emphasized the indispensability of sub-acute cytotoxic effects in the whole biosafety evaluation process of nanomaterials like QDs.
用支链聚乙二醇胺(6臂或8臂聚乙二醇胺)与甲氧基聚乙二醇(mPEG)修饰的量子点(QDs),由于其在血液中的半衰期长且毒性可忽略不计,在生物医学应用中具有巨大潜力。然而,关于它们与心血管和血细胞长时间共同孵育的潜在风险仍无定论。在本研究中,建立了可行、有效且便捷的代表循环系统的增殖受限细胞系模型,以研究6臂聚乙二醇胺/mPEG量子点的细胞内化、细胞内结果以及由此产生的急性/亚急性细胞毒性。我们发现6臂聚乙二醇胺/mPEG量子点的细胞摄取具有剂量、时间和细胞类型依赖性,与传统线性聚乙二醇修饰的量子点相比低10倍。量子点通过多种内吞途径进入细胞,并且大部分在高尔基体中保留至少一周,而不是在溶酶体中降解,从而导致最小的急性细胞毒性,这比先前报道的其他类型的聚乙二醇修饰的量子点要低得多。然而,在使用引起无明显急性细胞毒性作用的浓度暴露几天后,观察到量子点的亚急性细胞毒性,这与细胞内残留的量子点引起的活性氧生成增加有关。最后,在亚急性细胞毒性水平确定了量子点的无细胞毒性浓度。我们的研究通过使用代表循环系统的增殖受限细胞模型阐明量子点与细胞的相互作用和毒性机制,为支链聚乙二醇胺/mPEG量子点的临床转化提供了重要信息。此外,我们强调了亚急性细胞毒性作用在量子点等纳米材料整个生物安全性评估过程中的不可或缺性。