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用于高效可见光驱动体外药物代谢的光化学生物纳米反应器。

Photochemical Bionanoreactor for Efficient Visible-Light-Driven in Vitro Drug Metabolism.

机构信息

Department of Chemistry, Institute of Biomedical Sciences and State Key Lab of Molecular Engineering of Polymers, Fudan University , Shanghai 200433, China.

Department of Chemistry, University of California , Riverside 92501, United States.

出版信息

Anal Chem. 2017 Jul 18;89(14):7365-7372. doi: 10.1021/acs.analchem.7b00677. Epub 2017 Jun 27.

Abstract

In light of the significance of cytochrome P450 (CYP) catalyzed drug metabolism for drug development and toxicity screening, it is very important to imitate natural metabolic pathways accurately and efficiently in vitro. Herein, a novel and simple photochemical bionanoreactor has been constructed for efficient visible-light-driven in vitro drug metabolism based on eosin-Y-functionalized macroporous ordered silica foams (MOSF-EY). Because of the unique transfer of photoinduced electrons from photosensitizers to CYP heme domain, CYP catalyzed drug metabolism can be in vitro driven by the MOSF-EY nanoreactor under the irradiation of visible light. In such a case, the utilization of expensive electron donors, such as NADPH, can be avoided. Meanwhile, the in vitro drug metabolism approach exhibits high efficiency because of the fast adsorption of both CYP and drug molecules from the bulk solution into the nanopores of MOSF-EY, where the enzyme and substrate are highly concentrated and confined in nanospace to achieve a high reaction rate. Taking advantage of these attractive merits, the first example of photochemical bionanoreactor has been successfully applied in in vitro metabolism of both purified drug molecules and real tablets. Not only excellent CYP-catalyzed drug metabolism but also enzyme inhibition assay has been performed with the MOSF-EY photochemical bionanoreactor.

摘要

鉴于细胞色素 P450(CYP)催化的药物代谢对于药物开发和毒性筛选的重要性,在体外准确高效地模拟天然代谢途径非常重要。在此,基于曙红 Y 功能化的大孔有序硅泡沫(MOSF-EY)构建了一种新颖而简单的光化学仿生反应器,用于高效可见光驱动的体外药物代谢。由于光敏剂向 CYP 血红素结构域的光诱导电子的独特转移,在可见光照射下,CYP 可以通过 MOSF-EY 纳米反应器在体外驱动药物代谢。在这种情况下,可以避免使用昂贵的电子供体,如 NADPH。同时,由于 CYP 和药物分子从本体溶液快速吸附到 MOSF-EY 的纳米孔中,使得酶和底物在纳米空间中高度浓缩和受限,从而实现高反应速率,因此体外药物代谢方法具有高效性。利用这些吸引人的优点,已经成功地将光化学仿生反应器的第一个实例应用于纯化药物分子和实际片剂的体外代谢。利用 MOSF-EY 光化学仿生反应器不仅可以进行出色的 CYP 催化的药物代谢,还可以进行酶抑制测定。

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