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

氧化铈 超氧化物歧化酶 活性氧 氧化还原 氧化应激 核化学 化学 铈 纳米颗粒 氧气 生物物理学 氧化物 材料科学 生物化学 纳米技术 无机化学 有机化学 生物
作者
Shivam Pandey,Sneha Kumari,Leela Manohar Aeshala,Sushant Singh
出处
期刊:Journal of Biomaterials Applications [SAGE Publishing]
卷期号:38 (7): 866-874 被引量:14
标识
DOI:10.1177/08853282231226037
摘要

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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