分区(防火)
乳果糖
生物催化
酶
纤维二糖
生物转化
大肠杆菌
合成生物学
化学
生物
发酵
生物化学
计算生物学
催化作用
纤维素酶
离子液体
基因
作者
Meihereayi Mutailifu,Nuo-Qiao Lin,Fei Liu,Jian-Zhong Liu
标识
DOI:10.1021/acs.jafc.5c04270
摘要
Lactulose, a high-value lactose derivative with extensive pharmaceutical and nutritional applications, continues to face production challenges in enzymatic synthesis using cellobiose 2-epimerase (CE). To address this limitation, we present an integrated biocatalytic strategy combining enzyme engineering, spatial compartmentalization, and process optimization. Through targeted artificial DNA replisome (TADR)-directed evolution and rational design with UniKP computational prediction, we developed a quadruple mutant Dictyoglomus thermophilum CE (DithCEMUT) with enhanced catalytic efficiency. Systematic evaluation of four compartmentalization approaches revealed that vesicle-nucleating peptide 6 (VNp6)-mediated spatial organization increased lactulose production by 2.3-fold compared to no-compartmentalization enzyme systems. We further established three streamlined bioconversion platforms (whole-cell, crude enzyme and heat-treated enzyme biocatalysis), with the heat-treated enzyme from VNp6-compartmentalized DithCEMUT achieving record productivity: 320.49 ± 4.81 g/L lactulose with a yield of 94.5% in the presence of borate. These strategies of enzymatic modification and compartmentalization are powerful tools for synthetic biomanufacturers.
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