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首页> 外文期刊>International Journal of Nanomedicine >InP/ZnS Quantum Dots Cause Inflammatory Response in Macrophages Through Endoplasmic Reticulum Stress and Oxidative stress
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InP/ZnS Quantum Dots Cause Inflammatory Response in Macrophages Through Endoplasmic Reticulum Stress and Oxidative stress

机译:通过内质网胁迫和氧化应激导致巨噬细胞炎症反应引起巨噬细胞

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Purpose: Quantum dots (QDs) are widely used semiconductor nanomaterials. Indium phosphide/zinc sulfide (InP/ZnS) QDs are becoming potential alternatives to toxic heavy metal-containing QDs. However, the potential toxicity and, in particular, the immunotoxicity of InP/ZnS QDs are unknown. This study aimed to investigate the impacts of InP/ZnS QDs on inflammatory responses both in vivo and in vitro. Methods: Mice and mouse bone marrow-derived macrophages (BMMs) were exposed to polyethylene glycol (PEG) coated InP/ZnS QDs. The infiltration of neutrophils and the release of interleukin-6 (IL-6) were measured using a hematology analyzer and an enzyme-linked immunosorbent assay (ELISA) for the in vivo test. Cytotoxicity, IL-6 secretion, oxidative stress and endoplasmic reticulum (ER) stress were studied in the BMMs, and then, inhibitors of oxidative stress and ER stress were used to explore the mechanism of the InP/ZnS QDs. Results: We found that 20 mg/kg PEG-InP/ZnS QDs increased the number of neutrophils and the levels of IL-6 in both peritoneal lavage fluids and blood, which indicated acute phase inflammation in the mice. PEG-InP/ZnS QDs also activated the BMMs and increased the production of IL-6. In addition, PEG-InP/ZnS QDs triggered oxidative stress and the ER stress-related PERK-ATF4 pathway in the BMMs. Moreover, the inflammatory response caused by the PEG-InP/ZnS QDs could be attenuated in the macrophages by blocking the oxidative stress or the ER stress with inhibitors. Conclusion: InP/ZnS QDs can activate macrophages and induce acute phase inflammation both in vivo and in vitro, which may be regulated by oxidative stress and ER stress. Our present work is expected to help clarify the biosafety of InP/ZnS QDs and promote their safe application in biomedical and engineering fields.
机译:目的:量子点(QDS)是广泛使用的半导体纳米材料。磷化铟/硫化锌(InP / ZnS)QDS正在成为含有有毒重金属QD的潜在替代品。然而,潜在的毒性,特别是InP / ZnS QD的免疫毒性是未知的。本研究旨在探讨INP / ZnS QDS对体内和体外炎症反应的影响。方法:将小鼠和小鼠骨髓衍生的巨噬细胞(BMMS)暴露于聚乙二醇(PEG)涂覆的INP / ZnS QD。使用血液学分析仪和用于体内试验的酶联免疫吸附测定(ELISA)测量中性粒细胞的渗透和白细胞介素-6(IL-6)的渗透。在BMMS中研究了细胞毒性,IL-6分泌,氧化应激和内质网(ER)应激,然后使用氧化应激和ER应激的抑制剂来探讨INP / ZnS QD的机制。结果:我们发现20mg / kg PEG-InP / ZnS QDS增加了中性粒细胞的数量和IL-6在腹膜灌洗液和血液中的水平,这表明小鼠中的急性相炎症。 PEG-INP / ZNS QDS还激活了BMMS并增加了IL-6的生产。另外,PEG-INP / ZnS QDS在BMMS中引发了氧化应激和ER应激相关的Perk-ATF4途径。此外,由PEG-INP / ZnS QDS引起的炎症反应可以通过阻断氧化应激或与抑制剂的ER应力来衰减在巨噬细胞中。结论:InP / ZnS QD可以激活巨噬细胞并诱导体内和体外急性期炎症,其可以通过氧化应激和ER应激调节。我们现在的工作有望帮助澄清INP / ZNS QDS的生物安全,并促进其在生物医学和工程领域的安全应用。

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