Investigating temperature variability on antioxidative behavior of synthesized cerium oxide nanoparticle for potential biomedical application.

IF 2.3 4区 医学 Q3 ENGINEERING, BIOMEDICAL Journal of Biomaterials Applications Pub Date : 2024-02-01 Epub Date: 2024-01-03 DOI:10.1177/08853282231226037
Shivam Pandey, Sneha Kumari, Leela Manohar Aeshala, Sushant Singh
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Abstract

Cerium oxide nanoparticles (CNP) have garnered significant attention due to their versatile redox properties and wound-healing applications. The antioxidative nature of CNP is due to its ability to be oxidized and reduced, followed by the capture or release of oxygen which is used for scavenging reactive oxygen species (ROS). Herein, CNP is produced through a wet chemistry approach and its tunable redox property is tested across a range of temperatures. The synthesized CNP was observed to reveal the signature peak at 245 nm indicating a high Ce+3/Ce+4 ratio. Towards evaluating the redox antioxidative behavior, CNPs were subjected to a comprehensive analysis for superoxide dismutase mimetic analysis with riboflavin-mediated nitroblue tetrazolium scavenging assay. The results demonstrated that the redox activity of cerium oxide nanoparticles was strongly influenced by the different temperature ranges. Superoxide dismutase mimetic activity was observed to be reduced with a decrease in temperature as we moved from 4°C (80% activity) to -80°C (47% activity) at 1 mM conc of CNP. Similarly, the SOD mimetic activity increased with an increase in temperature from 40°C (72% activity) to 70°C (94% activity). Further, CNP was found to inhibit E. coli (gram+ve) and Enterobacter (gram-ve) beyond 70% simultaneously at 1 mM conc, indicating its potential application as a remarkable antimicrobial agent. CNP also inhibited the alpha-amylase activity up to the 60% at 1 mM conc suggesting its potential application in antidiabetic wound healing therapy. Overall, the CNP finds its application in mitigating the oxidative stress-related disorder exhibited by its high antioxidative, antimicrobial, and antidiabetic behavior.

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研究温度变化对合成纳米氧化铈抗氧化行为的影响,以开发潜在的生物医学应用。
氧化铈纳米粒子(CNP)因其多功能氧化还原特性和伤口愈合应用而备受关注。氧化铈纳米粒子的抗氧化性是由于它能够被氧化和还原,然后捕获或释放氧气,用于清除活性氧(ROS)。本文通过湿化学方法制备了 CNP,并在一定温度范围内测试了其可调氧化还原特性。经观察,合成的 CNP 在 245 纳米波长处显示出特征峰,表明 Ce+3/Ce+4 的比例很高。为了评估 CNP 的氧化还原抗氧化性,研究人员利用核黄素介导的硝基蓝四氮唑清除试验对 CNP 进行了全面的超氧化物歧化酶模拟分析。结果表明,氧化铈纳米粒子的氧化还原活性受不同温度范围的影响很大。在 CNP 浓度为 1 mM 时,随着温度的降低,超氧化物歧化酶模拟活性从 4°C (活性为 80%)降低到 -80°C (活性为 47%)。同样,随着温度从 40°C(72% 活性)升高到 70°C(94% 活性),SOD 模拟活性也随之升高。此外,在 1 毫摩尔浓度下,CNP 对大肠杆菌(革兰氏+ve)和肠杆菌(革兰氏-ve)的抑制率同时超过 70%,这表明它有可能被用作一种出色的抗菌剂。在 1 mM 浓度下,氯化萘还能抑制α-淀粉酶活性达 60%,这表明氯化萘具有应用于抗糖尿病伤口愈合疗法的潜力。总之,氯化萘具有很强的抗氧化、抗菌和抗糖尿病作用,可用于缓解氧化应激相关紊乱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biomaterials Applications
Journal of Biomaterials Applications 工程技术-材料科学:生物材料
CiteScore
5.10
自引率
3.40%
发文量
144
审稿时长
1.5 months
期刊介绍: The Journal of Biomaterials Applications is a fully peer reviewed international journal that publishes original research and review articles that emphasize the development, manufacture and clinical applications of biomaterials. Peer-reviewed articles by biomedical specialists from around the world cover: New developments in biomaterials, R&D, properties and performance, evaluation and applications Applications in biomedical materials and devices - from sutures and wound dressings to biosensors and cardiovascular devices Current findings in biological compatibility/incompatibility of biomaterials The Journal of Biomaterials Applications publishes original articles that emphasize the development, manufacture and clinical applications of biomaterials. Biomaterials continue to be one of the most rapidly growing areas of research in plastics today and certainly one of the biggest technical challenges, since biomaterial performance is dependent on polymer compatibility with the aggressive biological environment. The Journal cuts across disciplines and focuses on medical research and topics that present the broadest view of practical applications of biomaterials in actual clinical use. The Journal of Biomaterial Applications is devoted to new and emerging biomaterials technologies, particularly focusing on the many applications which are under development at industrial biomedical and polymer research facilities, as well as the ongoing activities in academic, medical and applied clinical uses of devices.
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