A variety of lipid-coated glycoside hydrolases as effective glycosyl transfer catalysts in homogeneous organic solvents
作者:Toshiaki Mori、Yoshio Okahata
DOI:10.1016/s0040-4039(97)00251-7
日期:1997.3
Various lipid-coated glycoside hydrolases were prepared, which act as efficient catalysts for transglycosylation of α-D- and β-D-mannoside, N-acetyl-β-D-glucosaminide, β-D-glucoside, and β-D-galactoside to hydrophobic acceptor alcohols in dry isopropyl ether. The enzyme activity for the glycosylation depended on coating lipids as well as origin or kind of enzymes.
A Facile Transgalactosylation catalyzed by a Lipid-Coated β-<i>D</i>-Galactosidase in the Water-Organic Two Phases
作者:Toshiaki Mori、Sanae Fujita、Yoshio Okahata
DOI:10.1246/cl.1997.73
日期:1997.1
A lipid-coated β-D-galactosidase could act as an efficient catalyst for transgalactosylation in the water-organic two phases: both the hydrophobic lipid-coated enzyme and alcohols were solubilized in isopropyl ether and mixed with an aqueous solution of lactose (a galactosyl donor). When a native β-D-galactosidase was employed for the same reaction, neither the transgalactosylation nor the hydrolysis reaction proceeded due to the deactivation of the enzyme at the interface.
Effective biocatalytic transgalactosylation in a supercritical fluid using a lipid-coated enzyme
作者:Toshiaki Mori、Yoshio Okahata
DOI:10.1039/a806168h
日期:——
A lipid-coated β-D-galactosidase is soluble and acts as an efficient trangalactosylation catalyst (the reverse hydrolysis reaction) in supercritical carbon dioxide (scCO2).
The transgalactosylation rate catalyzed by the lipid-coated beta-d-galactosidase in supercriticalfluoroform (scCHF3) can be reversibly controlled by changing temperature or pressure (reflecting polarity changes) without damaging enzymes.
Stabilized biocatalysts and methods of bioconversion using the same
申请人:Kwon Seok-Joon
公开号:US20050176096A1
公开(公告)日:2005-08-11
The present invention relates to a biocatalyst displayed on spore or virus surface and a method of bioconversion using the same, in particular to a method of bioconversion using a biocatalyst, which comprises the steps of: (a) preparing a vector for spore surface display comprising a gene construct containing a gene encoding a display motif and a gene encoding the biocatalyst, wherein, when expressed, the gene construct expresses the display motif and the biocatalyst in a fusion form and the biocatalyst is displayed on a spore surface; (b) transforming a host cell with the vector for spore surface display; (c) displaying the biocatalyst on the spore surface of the host cell; (d) recovering the spore displaying on its surface the biocatalyst; and (e) performing the bioconversion reaction using the spore displaying on its surface the biocatalyst, and a biocatalyst.