TY - JOUR
T1 - Computational insights into the catalytic mechanism of bacterial carboxylic acid reductase
AU - Qu, Ge
AU - Fu, Mingxing
AU - Zhao, Lili
AU - Liu, Beibei
AU - Liu, Pi
AU - Fan, Wenchao
AU - Ma, Jun An
AU - Sun, Zhoutong
N1 - Publisher Copyright:
© 2019 American Chemical Society.
PY - 2019/2/25
Y1 - 2019/2/25
N2 - Multidomain carboxylic acid reductases (CARs) can reduce a wide range of carboxylic acids to the corresponding aldehydes in the presence of ATP and NADPH. Recent X-ray structures of the individual (di)domains of Segniliparus rugosus CAR (SrCAR) shed light on the catalysis mechanism and revealed domain dynamics during the different states of the reaction. However, the details of the catalytic mechanism of each step operated by the corresponding domains are still elusive. Toward this end, several models based on the crystal structures were constructed, and molecular dynamics simulations along with density functional theory (DFT) calculations were employed to elucidate the conformational dynamics and catalytic mechanism of SrCAR concealed to static crystallography. We investigated the roles of the key residues in the substrate binding pocket involved in the adenylation and thiolation reactions and especially determined the roles played by a nonconserved Lys528 residue in the thiolation step, which were further verified by site-directed mutagenesis. The reduction mechanism of SrCAR, including the natures of the transition states for hydride and proton transfer, was also explored theoretically using the DFT method B3LYP. The information presented here is useful as a guide for the future rational design of CARs.
AB - Multidomain carboxylic acid reductases (CARs) can reduce a wide range of carboxylic acids to the corresponding aldehydes in the presence of ATP and NADPH. Recent X-ray structures of the individual (di)domains of Segniliparus rugosus CAR (SrCAR) shed light on the catalysis mechanism and revealed domain dynamics during the different states of the reaction. However, the details of the catalytic mechanism of each step operated by the corresponding domains are still elusive. Toward this end, several models based on the crystal structures were constructed, and molecular dynamics simulations along with density functional theory (DFT) calculations were employed to elucidate the conformational dynamics and catalytic mechanism of SrCAR concealed to static crystallography. We investigated the roles of the key residues in the substrate binding pocket involved in the adenylation and thiolation reactions and especially determined the roles played by a nonconserved Lys528 residue in the thiolation step, which were further verified by site-directed mutagenesis. The reduction mechanism of SrCAR, including the natures of the transition states for hydride and proton transfer, was also explored theoretically using the DFT method B3LYP. The information presented here is useful as a guide for the future rational design of CARs.
UR - http://www.scopus.com/inward/record.url?scp=85062094294&partnerID=8YFLogxK
U2 - 10.1021/acs.jcim.8b00763
DO - 10.1021/acs.jcim.8b00763
M3 - 文章
C2 - 30688451
AN - SCOPUS:85062094294
SN - 1549-9596
VL - 59
SP - 832
EP - 841
JO - Journal of Chemical Information and Modeling
JF - Journal of Chemical Information and Modeling
IS - 2
ER -