Luckarift Heather R, Ku Bosung S, Dordick Jonathan S, Spain Jim C
Air Force Research Laboratory, 139 Barnes Drive, Tyndall AFB, Florida 32403, USA.
Biotechnol Bioeng. 2007 Oct 15;98(3):701-5. doi: 10.1002/bit.21447.
The combinatorial synthesis of 2-aminophenoxazin-3-one (APO) in a microfluidic device is reported. Individual microfluidic chips containing metallic zinc, silica-immobilized hydroxylaminobenzene mutase and silica-immobilized soybean peroxidase are connected in series to create a chemo-enzymatic system for synthesis. Zinc catalyzes the initial reduction of nitrobenzene to hydroxylaminobenzene which undergoes a biocatalytic conversion to 2-aminophenol, followed by enzymatic polymerization to APO. Silica-immobilization of enzymes allows the rapid stabilization and integration of the biocatalyst within a microfluidic device with minimal preparation. The system proved suitable for synthesis of a complex natural product (APO) from a simple substrate (nitrobenzene) under continuous flow conditions.
报道了在微流控装置中2-氨基吩恶嗪-3-酮(APO)的组合合成。含有金属锌、二氧化硅固定化的羟氨基苯突变酶和二氧化硅固定化的大豆过氧化物酶的单个微流控芯片串联连接,以创建用于合成的化学酶系统。锌催化硝基苯最初还原为羟氨基苯,羟氨基苯经过生物催化转化为2-氨基苯酚,随后酶促聚合成APO。酶的二氧化硅固定化使得生物催化剂能够在微流控装置中以最少的制备快速稳定并整合。该系统被证明适用于在连续流动条件下从简单底物(硝基苯)合成复杂天然产物(APO)。