{"title":"生物转化硒纳米粒子的绿色合成、表征和功能验证","authors":"S. Vasanthakumar , M. Manikandan , Muthu Arumugam","doi":"10.1016/j.bbrep.2024.101760","DOIUrl":null,"url":null,"abstract":"<div><p>Selenium, an essential micronutrient with potent anticancer and antioxidant properties, the inorganic form of selenium is highly toxic, while organic and elemental nanoforms are more bioavailable and less toxic and have gained attention owing to their dietary and clinical relevance. This study aims to optimize conditions for the biosynthesis and production of elemental selenium nanoparticles for selenium supplements using marine microalgae, Nannochloropsis oceanica CASA CC201. The 10 mM precursor solution treated with 1 % of the algal extract (10:1 ratio of precursor and algal extract, respectively) was shown to be the optimal concentration for synthesizing highly stable selenium nanoparticles with a size of 183 nm and a zeta potential of −38.5 mV. AFM and TEM analysis suggest that the spherical-shaped nanoparticles with smooth surfaces were polydispersely distributed. The nanoparticles are well characterized using various analytical and advanced techniques, including Raman spectroscopy and X-ray photoelectron spectroscopy. FT-IR analyses reveal the presence of microalgae proteins and peptides as stabilizing and fabricating agents of Se-NPs to further understand the mode of bioreduction. The synthesized elemental nanoform (Se<sup>0</sup>) has been validated for its biological functions, showing enhanced radical scavenging activity (74 % in a concentration-dependent manner). Subsequently, algal-mediated selenite reduction and nanoparticle synthesis is an eco-friendly, non-toxic, and sustainable method for the large-scale production of highly stable Se-NPs for niche applications as dietary and feed supplements.</p></div>","PeriodicalId":8771,"journal":{"name":"Biochemistry and Biophysics Reports","volume":null,"pages":null},"PeriodicalIF":2.3000,"publicationDate":"2024-06-22","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S2405580824001249/pdfft?md5=2f88091055e7ddd70a5e8958dfa2d356&pid=1-s2.0-S2405580824001249-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Green synthesis, characterization and functional validation of bio-transformed selenium nanoparticles\",\"authors\":\"S. Vasanthakumar , M. 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AFM and TEM analysis suggest that the spherical-shaped nanoparticles with smooth surfaces were polydispersely distributed. The nanoparticles are well characterized using various analytical and advanced techniques, including Raman spectroscopy and X-ray photoelectron spectroscopy. FT-IR analyses reveal the presence of microalgae proteins and peptides as stabilizing and fabricating agents of Se-NPs to further understand the mode of bioreduction. The synthesized elemental nanoform (Se<sup>0</sup>) has been validated for its biological functions, showing enhanced radical scavenging activity (74 % in a concentration-dependent manner). 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引用次数: 0
摘要
硒是一种重要的微量营养素,具有强大的抗癌和抗氧化功能,无机硒具有很强的毒性,而有机硒和元素硒纳米形式的生物利用率更高,毒性更低,因其在饮食和临床方面的相关性而备受关注。本研究旨在优化利用海洋微藻 Nannochloropsis oceanica CASA CC201 生物合成和生产元素硒纳米粒子的条件,以生产硒补充剂。结果表明,用 1 % 的海藻提取物处理 10 mM 前体溶液(前体和海藻提取物的比例分别为 10:1)是合成高度稳定的硒纳米粒子的最佳浓度,其尺寸为 183 nm,Zeta 电位为 -38.5 mV。原子力显微镜(AFM)和电子显微镜(TEM)分析表明,这些表面光滑的球形纳米粒子呈多分散分布。利用各种分析和先进技术,包括拉曼光谱和 X 射线光电子能谱,对纳米粒子进行了很好的表征。傅立叶变换红外分析揭示了微藻蛋白质和肽作为 Se-NPs 的稳定剂和制造剂的存在,从而进一步了解了生物还原的模式。合成的元素纳米形式(Se0)的生物功能已得到验证,显示出更强的自由基清除活性(浓度依赖性为 74%)。因此,藻类介导的亚硒酸盐还原和纳米粒子合成是一种生态友好、无毒和可持续的方法,可用于大规模生产高度稳定的硒纳米粒子,作为膳食和饲料补充剂。
Green synthesis, characterization and functional validation of bio-transformed selenium nanoparticles
Selenium, an essential micronutrient with potent anticancer and antioxidant properties, the inorganic form of selenium is highly toxic, while organic and elemental nanoforms are more bioavailable and less toxic and have gained attention owing to their dietary and clinical relevance. This study aims to optimize conditions for the biosynthesis and production of elemental selenium nanoparticles for selenium supplements using marine microalgae, Nannochloropsis oceanica CASA CC201. The 10 mM precursor solution treated with 1 % of the algal extract (10:1 ratio of precursor and algal extract, respectively) was shown to be the optimal concentration for synthesizing highly stable selenium nanoparticles with a size of 183 nm and a zeta potential of −38.5 mV. AFM and TEM analysis suggest that the spherical-shaped nanoparticles with smooth surfaces were polydispersely distributed. The nanoparticles are well characterized using various analytical and advanced techniques, including Raman spectroscopy and X-ray photoelectron spectroscopy. FT-IR analyses reveal the presence of microalgae proteins and peptides as stabilizing and fabricating agents of Se-NPs to further understand the mode of bioreduction. The synthesized elemental nanoform (Se0) has been validated for its biological functions, showing enhanced radical scavenging activity (74 % in a concentration-dependent manner). Subsequently, algal-mediated selenite reduction and nanoparticle synthesis is an eco-friendly, non-toxic, and sustainable method for the large-scale production of highly stable Se-NPs for niche applications as dietary and feed supplements.
期刊介绍:
Open access, online only, peer-reviewed international journal in the Life Sciences, established in 2014 Biochemistry and Biophysics Reports (BB Reports) publishes original research in all aspects of Biochemistry, Biophysics and related areas like Molecular and Cell Biology. BB Reports welcomes solid though more preliminary, descriptive and small scale results if they have the potential to stimulate and/or contribute to future research, leading to new insights or hypothesis. Primary criteria for acceptance is that the work is original, scientifically and technically sound and provides valuable knowledge to life sciences research. We strongly believe all results deserve to be published and documented for the advancement of science. BB Reports specifically appreciates receiving reports on: Negative results, Replication studies, Reanalysis of previous datasets.