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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Generic nitric oxide (NO) generating surface by immobilizing organoselenium species via Layer-by-Layer assembly
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Generic nitric oxide (NO) generating surface by immobilizing organoselenium species via Layer-by-Layer assembly

机译:通过逐层组装固定有机硒物质而生成一氧化氮(NO)的通用表面

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摘要

A universal nitric oxide (NO) generating surface is assembled via Layer-by-Layer (LbL) deposition of sodium alginate (Alg) and organoselenium modified polyethyleneimine (SePEI) on quartz and polymeric substrates. The immobilized SePEI species is capable of catalytically decomposing S-nitrosothiol species (RSNO) to NO in the presence of thiol reducing agents (e.g., glutathione, cysteine, etc.). The stepwise buildup of the multilayer films is monitored by UV-vis spectroscopy, SEM and surface contact angle measurements. X-ray photoelectron spectroscopy is used to study the stoichiometry between the polyanion and polycation, and also the presence of Se in the catalytic LbL film. A reductive annealing process is necessary to improve the stability of freshly coated multilayer films via chain rearrangement. Chemiluminescence measurements illustrate the ability of the LbL films to generate NO from S-nitrosoglutathione (GSNO) in the presence of glutathione (GSH). Enhanced NO fluxes can be achieved by increasing the number of catalytic (SePEI/Alg) bilayers coated on the substrates. Nitric oxide generation is observed even after prolonged contact with sheep whole blood. Preliminary applications of this LbL on silicone rubber tubings and polyurethane catheters reveal similar NO generation behavior from these biomedical grade polymeric substrates.
机译:通过藻酸钠(Alg)和有机硒改性的聚乙烯亚胺(SePEI)的逐层(LbL)沉积在石英和聚合物基板上组装通用的一氧化氮(NO)生成表面。固定的SePEI物质能够在硫醇还原剂(例如谷胱甘肽,半胱氨酸等)存在下将S-亚硝基硫醇物质(RSNO)催化分解为NO。通过UV-可见光谱,SEM和表面接触角测量来监测多层膜的逐步堆积。 X射线光电子能谱用于研究聚阴离子和聚阳离子之间的化学计量,以及催化LbL膜中硒的存在。必须进行还原性退火工艺,以通过链重排提高刚涂覆的多层膜的稳定性。化学发光测量表明,在存在谷胱甘肽(GSH)的情况下,LbL膜从S-亚硝基谷胱甘肽(GSNO)生成NO的能力。可以通过增加涂覆在基材上的催化(SePEI / Alg)双层的数量来提高NO通量。即使长时间与绵羊全血接触也可以观察到一氧化氮的产生。这种LbL在硅橡胶管和聚氨酯导管上的初步应用表明,这些生物医学级聚合物基质的NO生成行为相似。

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