论文标题

聚合物涂层的氧化葡萄纳米颗粒作为氧化还原酶样催化剂

Polymer coated cerium oxide nanoparticles as oxidoreductase-like catalysts

论文作者

Baldim, Victor, Nisha, Yadav, Bia, Nicolas, Graillot, Alain, Loubat, Cedric, Singh, Sanjay, Karakoti, Ajay S., Berret, Jean-Francois

论文摘要

通过催化有机底物和活性氧的分解,氧化葡萄纳米颗粒已显示出模拟氧化还原酶的酶。这种模拟物可以在超氧化物自由基和过氧化氢,这是在氧化应激辅助疾病中产生的有害分子。尽管在纳米医学的背景下,纳米颗粒功能化是强制性的,但对聚合物涂层对其酶样催化活性的影响很少。在这项工作中,六个聚合物涂层的氧化葡萄纳米颗粒是通过与两个聚(丙烯酸钠)和四个聚(PEG)接枝的共聚物与不同末端或不同末端或锚定最终组(例如磷酸化的磷酸化的)的氧化岩核来制备的。系统地研究了涂层纳米颗粒的超氧化物歧化酶,过氧化酶,过氧化物酶和氧化酶样催化活性。结果表明,聚合物涂层不会使超氧化物歧化酶样的AF-aw-take损害过氧化氢酶样和氧化酶状的损害,并且令人惊讶地提出了氧化物纳米颗粒的过氧化物酶样催化活性。还证明,涂有PEG接枝共聚物的颗粒比聚(丙烯酸)涂层的颗粒作为氧化还原酶样酶,这一结果证实了将磷酸 - IC酸作为锚固基团在粒子表面上的益处。

Cerium oxide nanoparticles have been shown to mimic oxidoreductase enzymes by catalyzing the decomposition of organic substrates and reactive oxygen species. This mimicry can be found in superoxide radicals and hydrogen peroxides, harmful molecules produced in oxidative stress asso-ciated diseases. Despite the fact that nanoparticle functionalization is mandatory in the context of nanomedicine, the influence of polymer coatings on their enzyme-like catalytic activity is poorly understood. In this work, six polymer coated cerium oxide nanoparticles are prepared by associa-tion of 7.8 nm cerium oxide cores with two poly(sodium acrylate) and four poly(ethylene glycol) (PEG) grafted copolymers with different terminal or anchoring end groups, such as phosphonic acids. The superoxide dismutase-, catalase-, peroxidase- and oxidase-like catalytic activities of the coated nanoparticles were systematically studied. It is shown that the polymer coatings do not af-fect the superoxide dismutase-like, impair the catalase-like and oxidase-like and surprisingly im-proves peroxidase-like catalytic activities of cerium oxide nanoparticles. It is also demonstrated that the particles coated with the PEG-grafted copolymers perform better than the poly(acrylic acid) coated ones as oxidoreductase-like enzymes, a result that confirms the benefit of having phosphon-ic acids as anchoring groups at the particle surface.

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