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Antioxidant Activity of Degradable Polymer Poly(trolox ester) to Suppress Oxidative Stress Injury in the Cells

机译:可降解聚合物聚(trolox酯)的抗氧化活性抑制细胞中的氧化应激损伤。

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摘要

Oxidative stress is a pathological condition that has been implicated as a central player in a variety of diseases, including vascular and neurodegenerative diseases. More recently, oxidative stress has also been shown to be involved in the biological incompatibility of many materials, especially at the nanoscale. As such, there is a critical need for new biomaterials that can inhibit this response, improving the compatibility of medical devices. In this work, trolox, a synthetic antioxidant and water-soluble analogue of Vitamin E, is polymerized to form an oxidation active polymer as a new class of biomaterial. Synthesized poly(trolox ester) polymers were formulated into nanoparticles using a single emulsion technique, and their size was controlled by changing the polymer concentration in the organic solvent. Nanoparticle cytotoxicity, protective effects against cellular oxidative stress, and degradation kinetics were all evaluated. Poly(trolox ester) nanoparticles were found to have little to no cytotoxicity and were capable of suppressing cellular oxidative stress induced by cobalt nanoparticles. In vitro degradation studies of poly(trolox ester) nanoparticles indicate that the antioxidant activity of nanoparticles was derived from its enzymatic degradation to release active antioxidants.
机译:氧化应激是一种病理状态,已被认为是包括血管疾病和神经退行性疾病在内的多种疾病的主要病因。最近,氧化应激也已被证明与许多材料的生物不相容性有关,特别是在纳米级。因此,迫切需要能够抑制这种反应,改善医疗设备兼容性的新型生物材料。在这项工作中,trolox是维生素E的合成抗氧化剂和水溶性类似物,经过聚合形成氧化活性聚合物,成为一类新型的生物材料。使用单乳液技术将合成的聚(trolox酯)聚合物配制为纳米颗粒,并通过改变有机溶剂中的聚合物浓度来控制其尺寸。评估了纳米粒子的细胞毒性,对细胞氧化应激的保护作用以及降解动力学。发现聚(trolox酯)纳米粒子几乎没有细胞毒性,并且能够抑制钴纳米粒子诱导的细胞氧化应激。聚(trolox酯)纳米粒子的体外降解研究表明,纳米粒子的抗氧化活性源自其酶促降解以释放出活性抗氧化剂。

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  • 来源
    《Advanced Functional Materials》 |2010年第1期|147-154|共8页
  • 作者单位

    Department of Chemical and Materials Engineering College of Engineering, University of Kentucky 177 F. Paul Anderson Tower, Lexington, KY 40506 (USA);

    rnDepartment of Environmental and Occupational Health Sciences University of Louisville 485 E. Gray Street, Louisville, KY 40292 (USA);

    rnDepartment of Environmental and Occupational Health Sciences University of Louisville 485 E. Gray Street, Louisville, KY 40292 (USA);

    rnDepartment of Chemical and Materials Engineering College of Engineering, University of Kentucky 177 F. Paul Anderson Tower, Lexington, KY 40506 (USA);

    rnDepartment of Environmental and Occupational Health Sciences University of Louisville 485 E. Gray Street, Louisville, KY 40292 (USA);

    rnDepartment of Chemical and Materials Engineering College of Engineering, University of Kentucky 177 F. Paul Anderson Tower, Lexington, KY 40506 (USA);

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