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Cytotoxic or Not? Disclosing the Toxic Nature of Carbonaceous Nanomaterials through Nano–Bio Interactions

机译:是否具有细胞毒性?通过纳米生物相互作用揭示含碳纳米材料的毒性

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摘要

The cytotoxic influence of two different carbonaceous nanomaterials on human mesenchymal stem cells (MSCs) cultured in vitro was compared in the short (1–3 days) and long term (up to 60 days). Amorphous carbon and single-walled carbon nanotubes were chosen and evaluated due to their contrasting physicochemical properties. Both materials, though supposed similarly low-toxic in basic short-term cytotoxicity assays, demonstrated dramatically different properties in the long-term study. The surface chemistry and biomolecule-adsorption capacity turned out to be crucial factors influencing cytotoxicity. We proved that amorphous carbon is able to weakly bind a low-affinity protein coat (so-called soft corona), while carbon nanotubes behaved oppositely. Obtained results from zeta-potential and adsorption measurements for both nanomaterials confirmed that a hard protein corona was present on the single-walled carbon-nanotube surface that aggravated their cytotoxic influence. The long-term exposure of the mesenchymal stem cells to carbon nanotubes, coated by the strongly bound proteins, showed a significant decrease in cell-growth rate, followed by cell senescence and death. These results are of great importance in the light of increasing nanomaterial applications in biomedicine and cell-based therapies. Our better understanding of the puzzling cytotoxicity of carbonaceous nanomaterials, reflecting their surface chemistry and interactions, is helpful in adjusting their properties when tailored for specific applications.
机译:在短期(1-3天)和长期(长达60天)中,比较了两种不同的碳质纳米材料对体外培养的人间充质干细胞(MSC)的细胞毒性影响。由于无定形碳和单壁碳纳米管具有相反的理化性质,因此对其进行选择和评估。两种材料虽然在基本的短期细胞毒性测定中被认为具有低毒性,但在长期研究中却表现出显着不同的特性。表面化学和生物分子吸附能力被证明是影响细胞毒性的关键因素。我们证明了无定形碳能够弱结合低亲和力的蛋白质涂层(所谓的软电晕),而碳纳米管的行为却相反。从两种纳米材料的zeta电位和吸附测量获得的结果证实,单壁碳纳米管表面存在硬蛋白电晕,加剧了它们的细胞毒性影响。间充质干细胞长期暴露于碳纳米管,并被牢固结合的蛋白质覆盖,显示出细胞生长速率显着下降,随后细胞衰老和死亡。鉴于纳米材料在生物医学和基于细胞的疗法中的应用不断增加,这些结果非常重要。我们对碳质纳米材料令人费解的细胞毒性的更好理解,反映了它们的表面化学性质和相互作用,有助于在针对特定应用量身定制时调整其性能。

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