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Increasingthe Resistance of Living Cells against Oxidative Stress by NonnaturalSurfactants as Membrane Guards

机译:越来越多天然细胞对氧化应激的抵抗力表面活性剂作为膜保护剂

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摘要

The importation of construction principles or even constituents from biology into materials science is a prevailing concept. Vice versa, the cellular level modification of living systems with nonnatural components is much more difficult to achieve. It has been done for analytical purposes, for example, imaging, to learn something about intracellular processes. Cases describing the improvement of a biological function by the integration of a nonnatural (nano)constituent are extremely rare. Because biological membranes contain some kind of a surfactant, for example, phospholipids, our idea is to modify cells with a newly synthesized surfactant. However, this surfactant is intended to possess an additional functionality, which is the reduction of oxidative stress. We report the synthesis of a surfactant with Janus-type head group architecture, a fullerene C60 modified by five alkyl chains on one side and an average of 20 oxygen species on the other hemisphere. It is demonstrated that the amphiphilic properties of the fullerenol surfactant are similar to that of lipids. Not only quenching of reactive oxygen species (superoxide,hydroxyl radicals, peroxynitrite, and hydrogen peroxide) was successful,but also the fullerenol surfactant exceeds benchmark antioxidant agentssuch as quercetin. The surfactant was then brought into contact withdifferent cell types, and the viability even of delicate cells suchas human liver cells (HepG2) and human dopaminergic neurons (LUHMES)has proven to be extraordinarily high. We could show further thatthe cells take up the fullerenol surfactant, and as a consequence,they are protected much better against oxidative stress.
机译:从生物学向材料科学中导入构造原理甚至成分的方法是一个普遍的概念。反之亦然,用非天然成分对活体系统进行细胞水平的修饰要困难得多。出于分析目的(例如成像)已经完成,以了解有关细胞内过程的知识。描述通过整合非天然(纳米)成分改善生物学功能的案例极为罕见。因为生物膜包含某种表面活性剂,例如磷脂,所以我们的想法是用新合成的表面活性剂修饰细胞。然而,该表面活性剂旨在具有附加的功能,即减少氧化应激。我们报道了具有Janus型头基结构的表面活性剂的合成,富勒烯C60的一侧被五个烷基链修饰,另一半球上平均有20个氧物种。已证明富勒烯醇表面活性剂的两亲性质与脂质相似。不仅淬灭活性氧(超氧化物,羟基自由基,过氧亚硝酸盐和过氧化氢)成功,而且富勒烯醇表面活性剂也超过基准抗氧化剂如槲皮素。然后使表面活性剂与不同的细胞类型,甚至是脆弱细胞的生存力作为人类肝细胞(HepG2)和人类多巴胺能神经元(LUHMES)被证明是非常高的。我们可以进一步证明细胞吸收了富勒烯表面活性剂,结果,它们受到更好的保护以抵抗氧化应激。

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