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The role of positively charged sites in the interaction between model cell membranes and γ-Fe_2O_3 NPs

机译:带正电的位点在模型细胞膜与γ-Fe_2O_3NP之间相互作用中的作用

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The various applications of iron oxide nanoparticles (NPs) in clinical care and wastewater treatment are rapidly developing, thus their biological safety is worth attention. The electrostatic interaction between cell membranes and NPs is the key mechanism behind membrane damage and membrane penetration. Cell membranes are generally negatively charged with a few positively charged domains. The role of the positively charged sites in the NP membrane interaction needs further investigation. In this study, the ratio of the positively charged sites was adjusted in two model cell membranes: giant and small unilamellar vesicles (GUVs and SUVs). After exposure to negatively charged-gamma-Fe2O3 NPs, the adhesion of NPs on the membranes and the induced membrane disruption were studied by microscopic observation and quartz crystal microbalance (QCM) monitoring.-gamma-Fe2O3 NPs adhered to and disrupted the membranes containing even few positively charged sites, although the whole membrane exhibited a negative zeta potential and hence electrostatically repels the NPs. The number of adhered-gamma-Fe2O3 NPs increased remarkably on membranes with overall positive zeta potential, but more serious disruption happened to membranes with higher ratios of positively charged sites. Therefore, the membrane rupture was more correlated to the number of positively charged sites than to the zeta potential of the whole membrane. In addition, exposure to gamma-Fe2O3 NPs decreased the order of the lipid molecules and hence increased the fluidity of the membrane phase, and the most significant phase change occurred in the negatively charged membrane with the highest ratio of positively charged sites. Infrared spectra indicated that-gamma-Fe2O3 NPs probably interact with the membranes via the phosphodiester and trimethylamine groups in the lipid head groups. Our research furthers our knowledge of the electrostatic interaction between NPs and cell membranes, which should help to predict the biological effects of gamma-Fe2O3 NPs. (C) 2019 Elsevier B.V. All rights reserved.
机译:氧化铁纳米颗粒(NPs)在临床护理和废水处理中的各种应用正在迅速发展,因此其生物安全性值得关注。细胞膜和NP之间的静电相互作用是膜损伤和膜穿透的关键机制。细胞膜通常带有一些带正电的结构域带负电。带正电的位点在NP膜相互作用中的作用需要进一步研究。在这项研究中,在两个模型细胞膜中调节带正电荷的位点的比例:巨大和小的单层囊泡(GUV和SUV)。暴露于带负电的γ-Fe2O3NPs后,通过显微镜观察和石英晶体微量天平(QCM)监测研究了NPs在膜上的附着力和诱导的膜破裂。尽管整个膜表现出负的ζ电势,因此静电排斥NP,但几乎没有带正电荷的位点。具有整体正ζ电势的膜上附着的γ-Fe2O3NP的数量显着增加,但具有较高正电荷位点的膜发生了更严重的破坏。因此,膜破裂与带正电的位点的数量更多的是相关,而不是整个膜的ζ电位。另外,暴露于γ-Fe2O3NPs减少了脂质分子的顺序,因此增加了膜相的流动性,并且最显着的相变发生在带负电的膜中,带正电的位置比例最高。红外光谱表明,γ-Fe2O3NP可能通过脂质头基团中的磷酸二酯和三甲胺基团与膜相互作用。我们的研究进一步了解了NP与细胞膜之间的静电相互作用,这应该有助于预测γ-Fe2O3NP的生物学作用。 (C)2019 Elsevier B.V.保留所有权利。

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