TY - JOUR
T1 - Thermal Cycling Cascade Biocatalysis of myo-Inositol Synthesis from Sucrose
AU - Zhong, Chao
AU - You, Chun
AU - Wei, Ping
AU - Zhang, Yi Heng Percival
N1 - Publisher Copyright:
© 2017 American Chemical Society.
PY - 2017/9/1
Y1 - 2017/9/1
N2 - myo-Inositol belongs to the vitamin B group (vitamin B8) and is widely used in the drug, cosmetic, and food and feed industries. It is produced by acid hydrolysis of phytate, but this method suffers from costly feedstock and serious phosphorus pollution. Here a four-enzyme pathway containing thermophilic sucrose phosphorylase, phosphoglucomutase, inositol 1-phosphate synthase, and inositol monophosphatase was designed to convert sucrose to inositol and fructose. To enable the use of enzymes with different optimal temperatures and thermostabilities, we developed a thermal cycling cascade biocatalysis that can selectively add less-thermostable sucrose phosphorylase immobilized on cellulose-containing magnetic nanoparticles into the cold enzyme cocktail or remove it from the hot enzyme cocktail by using a magnetic field (ON/OFF) switch. A series of exergonic reactions push the overall reaction forward, resulting in a high product molar yield (0.98 mol of inositol/mol of sucrose). This cascade biocatalysis platform could open a door to the large-scale production of less-costly inositol and upgrade sucrose to a value-added nutraceutical and functional sweetener.
AB - myo-Inositol belongs to the vitamin B group (vitamin B8) and is widely used in the drug, cosmetic, and food and feed industries. It is produced by acid hydrolysis of phytate, but this method suffers from costly feedstock and serious phosphorus pollution. Here a four-enzyme pathway containing thermophilic sucrose phosphorylase, phosphoglucomutase, inositol 1-phosphate synthase, and inositol monophosphatase was designed to convert sucrose to inositol and fructose. To enable the use of enzymes with different optimal temperatures and thermostabilities, we developed a thermal cycling cascade biocatalysis that can selectively add less-thermostable sucrose phosphorylase immobilized on cellulose-containing magnetic nanoparticles into the cold enzyme cocktail or remove it from the hot enzyme cocktail by using a magnetic field (ON/OFF) switch. A series of exergonic reactions push the overall reaction forward, resulting in a high product molar yield (0.98 mol of inositol/mol of sucrose). This cascade biocatalysis platform could open a door to the large-scale production of less-costly inositol and upgrade sucrose to a value-added nutraceutical and functional sweetener.
KW - cascade biocatalysis
KW - functional sweetener
KW - magnetic relaxation switching
KW - myo-inositol
KW - nutraceutical
UR - http://www.scopus.com/inward/record.url?scp=85029125903&partnerID=8YFLogxK
U2 - 10.1021/acscatal.7b01929
DO - 10.1021/acscatal.7b01929
M3 - 文章
AN - SCOPUS:85029125903
SN - 2155-5435
VL - 7
SP - 5992
EP - 5999
JO - ACS Catalysis
JF - ACS Catalysis
IS - 9
ER -