量子点陶瓷复合材料在广谱辐射下的氧化应激缓解

IF 8.2 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Rajib Chandra Das, Marcela L. Chaki Borrás, Jung Ho Kim, Martin Carolan, Ronald Sluyter, Michael Lerch and Konstantin Konstantinov*, 
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引用次数: 0

摘要

纳米材料通过清除活性氧(ROS)来减轻辐射引起的氧化应激,这是一种很有前途的方法。然而,由于光电效应与材料的原子序数(Z)有关,开发一种在广泛的辐射条件下提供保护的纳米材料具有挑战性。复合系统中的量子点(QDs)由于其体积小且在低浓度下使用,可以最大限度地减少光电效应和二次电子的产生。在这项研究中,氧化铈(CeO2)量子点与低z氧化钇(Y2O3)结合,形成纳米复合材料(NC)(以下简称CeO2 QDs-Y2O3),利用两种材料的协同效应,在更广泛的辐射范围内提供保护。在非辐射条件下,CeO2 QDs-Y2O3表现出比单独的CeO2和Y2O3更强的活性氧清除能力,特别是对辐射下产生的两种主要活性氧——羟基自由基(•OH)和过氧化氢(H2O2)。由于增加的氧空位和更高的Ce3+/Ce4+比率,这种改进的性能表明这些特性可以帮助保护细胞免受辐射暴露时的氧化应激。利用线性二次(LQ)模型进行辐射防护分析表明,NC在150 kVp和10 MV辐射能量下都能提供有效的防护。在150 kVp下,在10%细胞存活率下,CeO2 QDs-Y2O3、Y2O3和CeO2的保护增强比(PER)分别为1.07、1.16和0.89,这表明Y2O3在NC中提供的辐射保护超过了包覆CeO2 QDs的辐射敏化。此外,尽管Y2O3的PER较高,但与Y2O3相比,在没有辐射的情况下,NC对人角质形成细胞HaCaT细胞系的生物相容性增强。在10 MV时,光电效应最小,NC的表现优于单独的两种成分,产生1.28的PER,或28%的剂量增强,而单独使用Y2O3的剂量增强为12%,而单独使用CeO2的剂量增强为19%。该研究强调了CeO2 QDs-Y2O3作为广谱辐射防护剂的潜力,在广泛的辐射条件下提供增强的生物相容性和对辐射诱导的氧化应激的有效保护。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Quantum-Dot Ceramic Composites for Oxidative Stress Mitigation under Broad-Spectrum Radiation Exposure

Quantum-Dot Ceramic Composites for Oxidative Stress Mitigation under Broad-Spectrum Radiation Exposure

Nanomaterials offer a promising approach to mitigating radiation-induced oxidative stress by scavenging reactive oxygen species (ROS). However, developing a nanomaterial that provides protection across a wide range of radiation conditions is challenging due to the photoelectric effects linked to the atomic number (Z) of the materials. Quantum dots (QDs) in a composite system, owing to their small size and when used at low concentrations, minimize photoelectric effects and secondary electron generation. In this study, cerium oxide (CeO2) QDs were combined with low-Z yttrium oxide (Y2O3) to create a nanocomposite (NC) (henceforth CeO2 QDs-Y2O3) that exploits the synergistic effects of both materials, providing protection across a broader spectrum of radiation. CeO2 QDs-Y2O3 demonstrated superior ROS scavenging than individual CeO2 and Y2O3 under nonradiative conditions, particularly for hydroxyl radicals (OH) and hydrogen peroxide (H2O2), two primary ROS generated under radiation. This improved performance, due to increased oxygen vacancies and a higher Ce3+/Ce4+ ratio, indicates that these properties could help protect cells from oxidative stress during radiation exposure. Radioprotection analysis using the linear-quadratic (LQ) model revealed that the NC provided effective protection at both 150 kVp and 10 MV radiation energies. At 150 kVp, the obtained protection enhancement ratio (PER) values at 10% cell survival for CeO2 QDs-Y2O3, Y2O3, and CeO2 were 1.07, 1.16, and 0.89, respectively, suggesting that the radioprotection afforded by Y2O3 in the NC outweighed the radiosensitization of the encrusted CeO2 QDs. Additionally, despite the higher PER of Y2O3, the NC displayed increased biocompatibility toward the human keratinocyte HaCaT cell line in the absence of radiation compared to Y2O3. At 10 MV, where photoelectric effects are minimal, the NC outperformed both individual components, yielding a PER of 1.28, or a 28% dose enhancement compared to 12% for Y2O3 alone and 19% for CeO2. This study highlights the potential of CeO2 QDs-Y2O3 as a broad-spectrum radioprotective agent, offering enhanced biocompatibility and effective protection against radiation-induced oxidative stress across broad-ranging radiation conditions.

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来源期刊
ACS Applied Materials & Interfaces
ACS Applied Materials & Interfaces 工程技术-材料科学:综合
CiteScore
16.00
自引率
6.30%
发文量
4978
审稿时长
1.8 months
期刊介绍: ACS Applied Materials & Interfaces is a leading interdisciplinary journal that brings together chemists, engineers, physicists, and biologists to explore the development and utilization of newly-discovered materials and interfacial processes for specific applications. Our journal has experienced remarkable growth since its establishment in 2009, both in terms of the number of articles published and the impact of the research showcased. We are proud to foster a truly global community, with the majority of published articles originating from outside the United States, reflecting the rapid growth of applied research worldwide.
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