详细信息
Single-pot conversion of cephalosporin C to 7-aminocephalosporanic acid using cell-bound and support-bound enzymes ( SCI-EXPANDED收录 EI收录)
文献类型:期刊文献
英文题名:Single-pot conversion of cephalosporin C to 7-aminocephalosporanic acid using cell-bound and support-bound enzymes
作者:Tan, Qiang[1]; Song, Qingxun[1]; Wei, Dongzhi[1]
机构:[1]E China Univ Sci & Technol, Inst Biochem, State Key Lab Bioreactor Engn, New World Inst Biotechnol, Shanghai 200237, Peoples R China
年份:2006
卷号:39
期号:5
起止页码:1166
外文期刊名:ENZYME AND MICROBIAL TECHNOLOGY
收录:;EI(收录号:20062910017103);WOS:【SCI-EXPANDED(收录号:WOS:000239694500029)】;
语种:英文
外文关键词:D-amino acid oxidase; glutaryl-7-aminocephalosporanic acid acylase; cephalosporin C; 7-aminocephalosporanic acid; alpha-ketoadipyl-7-ACA
摘要:The two enzymes in two disparate forms, D-amino acid oxidase (DAAO) in the permeabilized Pichia pastoris cells and immobilized glutaryl-7-aminocephalosporanic acid acylase (GA) on support, were employed to convert cephalosporin C (CPC) to 7-aminocephalosporanic acid (7-ACA) in a single reactor. As a catalyst used in the reaction, DAAO in the permeabilized cells was relatively stable and its half-life was up to 14.5 days at 30 degrees C. In this study, CPC could be converted to 90.9% 7-ACA, 5% alpha-ketoadipyl-7-ACA (AKA-7-ACA) and 4.1% unidentified by-product within 2.5 h. During the reaction process, the loss of DAAO activity in the reactor was at an average rate of 0.07 U min(-1), but it could be compensated by continuous addition of the new permeabilized cell suspension. At the end of reaction, the stable immobilized GA was intercepted in a specially designed reactor, and reused for the next conversions. The permeabilized cells were separated outside the reactor by centrifugation and reused. Thus,, the consecutive production of 7-ACA from CPC in a single reactor is achieved by a fed-batch strategy. In the reaction system, the used permeabilized cells and immobilized GA were renewed every four cycles and every seven cycles, respectively. The yield of 7-ACA reached around 90% at each reaction cycle. (c) 2006 Elsevier Inc. All rights reserved.
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