Yaseen Salama A, Saif Faizaa A, Undre Prabhakar B
Department of Physics, Hodeidah University, Al Hudaydah, Yemen.
Department of Physics, Dr Babasaheb Ambedkar Marathwada University, Aurangabad, Maharashtra, India.
J Appl Biomater Funct Mater. 2025 Jan-Dec;23:22808000251354888. doi: 10.1177/22808000251354888. Epub 2025 Jul 23.
Cerium oxide nanoparticles (CeO NPs) have unique physicochemical properties that make them suitable for various applications, particularly in biomedicine. To enhance their compatibility with biological systems, we functionalized these nanoparticles with selected amino acids, which significantly improved their potential for biomedical use, as our findings show. Cerium oxide has a fluorite-type structure and can exist in both trivalent and tetravalent states. Notably, cerium oxide also serves as an effective radioprotectant, offering selective protection to normal cells over tumor cells. The present embodiment provides functionalized cerium oxide nanoflakes with a plurality of amino acids. The surface modification by amino acids has been studied and characterized with various techniques. The cytotoxicity and the biological activity of nanoceria and the functionalization of nanoceria were evaluated. The result of this investigation shows the change in morphology structure and optical properties. The anticancer activity of the samples shows significant results against the MCF-7 and SCC-29B cell lines overall. In the case of comparing pure and functionalized nanoceria in the microbial study, the functionalization of nanoceria shows better significance by improving biological activity in some cases than synthesized/pure nanoceria and becomes suitable for biomedical applications. Therefore, the results show that the functionalization of nanoceria plays an important role in manufacturing and the possibility of using it as a therapeutic compound in the future to improve the public health of society.
氧化铈纳米颗粒(CeO NPs)具有独特的物理化学性质,使其适用于各种应用,尤其是在生物医学领域。正如我们的研究结果所示,为了增强它们与生物系统的兼容性,我们用选定的氨基酸对这些纳米颗粒进行了功能化处理,这显著提高了它们在生物医学方面的应用潜力。氧化铈具有萤石型结构,能以三价和四价两种状态存在。值得注意的是,氧化铈还是一种有效的辐射防护剂,对正常细胞的保护作用优于肿瘤细胞。本实施方案提供了具有多种氨基酸的功能化氧化铈纳米片。已经用各种技术对氨基酸进行的表面改性进行了研究和表征。评估了纳米氧化铈的细胞毒性、生物活性以及纳米氧化铈的功能化情况。这项研究的结果显示了形态结构和光学性质的变化。样品的抗癌活性总体上对MCF - 7和SCC - 29B细胞系显示出显著效果。在微生物研究中比较纯的和功能化的纳米氧化铈时,纳米氧化铈的功能化在某些情况下通过提高生物活性比合成的/纯的纳米氧化铈显示出更好的效果,并且变得适用于生物医学应用。因此,结果表明纳米氧化铈的功能化在制造过程中起着重要作用,并且未来有可能将其用作治疗化合物以改善社会公众健康。