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基于可生物降解淀粉的薄膜实现光触发和半胱氨酸介导的一氧化氮释放。

Light-triggered and cysteine-mediated nitric oxide release from a biodegradable starch-based film.

作者信息

Roveda Antonio Carlos, de Fazio Aguiar Helena, Miranda Katrina M, Tadini Carmen Cecília, Franco Douglas Wagner

机构信息

Instituto de Química de São Carlos, Universidade de São Paulo - USP, P.O. Box 780, CEP 13566-590, São Carlos, SP, Brazil.

出版信息

J Mater Chem B. 2014 Nov 7;2(41):7232-7242. doi: 10.1039/c4tb00996g. Epub 2014 Sep 23.

Abstract

A new nitric oxide-releasing material produced with cassava starch is described. The ruthenium nitrosyl complex trans-Ru(NH)(isn)NO (RuNOisn; isn = isonicotinamide) is able to release NO upon either photolysis or chemical reduction. Impregnating this complex under mild conditions into cassava starch (CS) films produced a NO-delivery platform (CS-RuNOisn). Spectroscopic analysis of CS-RuNOisn indicates that the coordination sphere of RuNOisn remains intact during film production. Exposure of CS-RuNOisn to long wave UV-light (λ = 355 nm) leads to NO release and formation of the paramagnetic photoproduct trans-[Ru(NH)isn(HO)] in the CS film. Reaction of this aquaruthenium(iii) complex with aqueous nitrite regenerates RuNOisn in the film. Delivery of NO upon photolysis of CS-RuNOisn was verified by trapping with oxymyoglobin. Moreover, NO release upon chemical reduction was carried out using l-cysteine as a reductant. Cysteine-mediated NO delivery from CS-RuNOisn persisted for more than 7 h, during which physiologically relevant NO concentrations were liberated. These results suggest that CS-RuNOisn is a promising candidate for use in biological applications.

摘要

本文描述了一种由木薯淀粉制备的新型一氧化氮释放材料。钌亚硝酰配合物反式-Ru(NH)(异烟酰胺)NO(RuNO异烟酰胺;异烟酰胺=异烟酰胺)在光解或化学还原时能够释放一氧化氮。在温和条件下将该配合物浸渍到木薯淀粉(CS)薄膜中,制备了一个一氧化氮递送平台(CS-RuNO异烟酰胺)。对CS-RuNO异烟酰胺的光谱分析表明,RuNO异烟酰胺的配位球在薄膜制备过程中保持完整。将CS-RuNO异烟酰胺暴露于长波紫外光(λ = 355 nm)下会导致一氧化氮释放,并在CS薄膜中形成顺磁性光产物反式-[Ru(NH)异烟酰胺(HO)]。该水合钌(III)配合物与亚硝酸盐水溶液反应可使薄膜中的RuNO异烟酰胺再生。通过与氧合肌红蛋白捕获验证了CS-RuNO异烟酰胺光解时一氧化氮的释放。此外,使用L-半胱氨酸作为还原剂进行了化学还原时的一氧化氮释放。半胱氨酸介导的CS-RuNO异烟酰胺释放一氧化氮持续超过7小时,在此期间释放出生理相关浓度的一氧化氮。这些结果表明,CS-RuNO异烟酰胺是生物应用中有前景的候选材料。

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