TY - JOUR
T1 - Effect of carbonic anhydrase on enzymatic conversion of CO2 to formic acid and optimization of reaction conditions
AU - Wang, Yanzi
AU - Li, Manfeng
AU - Zhao, Zhiping
AU - Liu, Wenfang
N1 - Publisher Copyright:
© 2015 Elsevier B.V. All rights reserved.
PY - 2015/6/1
Y1 - 2015/6/1
N2 - Enzymatic reduction of CO2 to formic acid promises the production of high-value chemicals from greenhouse gases in the way of high selectivity and low energy consumption. However, slow hydration process of CO2 in reaction solution leads to low production rate of formic acid. Carbonic anhydrase (CA), a vigorous biocatalyst for CO2 hydration, has attracted much attention for its potential applications in CO2 capture and sequestration in recent years, while its use in biosynthesis of chemicals and fuels based on CO2 has hardly been reported. Herein we report the feasibility of CA in facilitating biosynthesis of formic acid from CO2 with the catalysis of formate dehydrogenase (FDH), and various reaction conditions were optimized for the first time. With the addition of CA, the substrate of FDH might transform from CO2 to more soluble HCO3-, together with the increase in the hydration rate of CO2, resulting in that the production rate of formic acid was increased by a factor of 4.2-fold. Due to the decrease in pH value induced by CA with the reaction proceeded, the ratio of two enzymes was important to coordinate the reaction rate and avoid the accumulation of hydrogen ions, at the same time, buffer system was critical to ensure the synergize effect of CA. It appeared to us that the introduction of CA represents a new bioprocessing strategy for efficient biotansformation of CO2 to formic acid and its further products.
AB - Enzymatic reduction of CO2 to formic acid promises the production of high-value chemicals from greenhouse gases in the way of high selectivity and low energy consumption. However, slow hydration process of CO2 in reaction solution leads to low production rate of formic acid. Carbonic anhydrase (CA), a vigorous biocatalyst for CO2 hydration, has attracted much attention for its potential applications in CO2 capture and sequestration in recent years, while its use in biosynthesis of chemicals and fuels based on CO2 has hardly been reported. Herein we report the feasibility of CA in facilitating biosynthesis of formic acid from CO2 with the catalysis of formate dehydrogenase (FDH), and various reaction conditions were optimized for the first time. With the addition of CA, the substrate of FDH might transform from CO2 to more soluble HCO3-, together with the increase in the hydration rate of CO2, resulting in that the production rate of formic acid was increased by a factor of 4.2-fold. Due to the decrease in pH value induced by CA with the reaction proceeded, the ratio of two enzymes was important to coordinate the reaction rate and avoid the accumulation of hydrogen ions, at the same time, buffer system was critical to ensure the synergize effect of CA. It appeared to us that the introduction of CA represents a new bioprocessing strategy for efficient biotansformation of CO2 to formic acid and its further products.
KW - Carbon dioxide
KW - Carbonic anhydrase
KW - Formate dehydrogenase
KW - Formic acid
KW - Synergy
UR - http://www.scopus.com/inward/record.url?scp=84926468664&partnerID=8YFLogxK
U2 - 10.1016/j.molcatb.2015.03.014
DO - 10.1016/j.molcatb.2015.03.014
M3 - Article
AN - SCOPUS:84926468664
SN - 1381-1177
VL - 116
SP - 89
EP - 94
JO - Journal of Molecular Catalysis - B Enzymatic
JF - Journal of Molecular Catalysis - B Enzymatic
ER -