Nickel-free porous stainless-steel nanocomposites for versatile biomedical applications: fabrication, characterization, and evaluation of electrochemical and immunogenicity detection

IF 5.2 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Advances Pub Date : 2024-12-12 DOI:10.1039/D4MA01024H
Sabreen Abdallah Abdelwahab, Mohamad Warda, Mamdouh Zewaid, Hisham Saleh, Omar A. Ahmed-Farid, Hassan A. M. Hendawy, Elbadawy A. Kamoun, Amr Negm, Jong Yeog Son and Ahmed I. Ali
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Abstract

This study focuses on the development of nickel-free stainless-steel nanocomposites with porosities tailored for surgical implants and biological applications. Alloy F2581 (Fe–17Cr–10Mn–3Mo–0.4Si–0.5N–0.2C wt%), modified by replacing Mo with metals such as Al, Cu, Ti, and W, was successfully fabricated via a solid-state reaction method. X-ray diffraction analysis revealed a significant alteration in the crystal phase, accompanied by the formation of nanostructures, including nanowires, square nanotubes, wave-like configurations reminiscent of a growing clover farm, and nanofibers. The particle sizes of these structures were determined to be 73, 27.2, 76 and 98.5 nm for Al, Cu, Ti, and W ions, respectively, indicating a distribution of nanopores. Biological evaluation of adult male Albino rats after exposure to single intraperitoneal doses of various concentrations (10, 20, and 50 mg kg−1 wt%) were assessed with testing alloys (Cu, Al, W, and Ti, respectively). Over a subacute period lasting 60 days, a comprehensive evaluation of biological responses, including hepatic function, renal performance, oxidative and/or nitrosative stress parameters, and the levels of serum immune modulators was conducted. Notably, low doses elicited negligible immune responses, higher doses, barring copper, induced notable reactions. Interestingly, aluminum demonstrated optimization within biological settings, alongside titanium and tungsten. These findings highlight the applicability of copper and tungsten for medical implantation and biological applications under controlled circumstances, particularly at lower dosage levels.

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通用生物医学应用的无镍多孔不锈钢纳米复合材料:电化学和免疫原性检测的制造、表征和评估
本研究的重点是开发适合外科植入物和生物应用的无镍多孔不锈钢纳米复合材料。用Al、Cu、Ti、W等金属代替Mo改性F2581合金(Fe-17Cr-10Mn-3Mo-0.4Si-0.5N-0.2C wt%),通过固相反应法制备。x射线衍射分析显示,晶体相位发生了显著变化,并伴随着纳米结构的形成,包括纳米线、方形纳米管、让人想起生长中的三叶草农场的波浪状结构和纳米纤维。Al、Cu、Ti和W离子的粒径分别为73、27.2、76和98.5 nm,表明了纳米孔的分布。用测试合金(分别为Cu、Al、W和Ti)评估成年雄性白化病大鼠暴露于不同浓度(10、20和50 mg kg - 1 wt%)单次腹腔剂量后的生物学评价。在为期60天的亚急性期,对生物反应进行综合评估,包括肝功能、肾功能、氧化和/或亚硝化应激参数以及血清免疫调节剂水平。值得注意的是,低剂量引起的免疫反应可以忽略不计,高剂量,除铜外,引起明显的反应。有趣的是,铝与钛和钨一起在生物环境中表现出最优化。这些发现强调了铜和钨在受控环境下,特别是在较低剂量水平下,在医疗植入和生物应用方面的适用性。
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来源期刊
Materials Advances
Materials Advances MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
7.60
自引率
2.00%
发文量
665
审稿时长
5 weeks
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