TY - JOUR
T1 - Computational design of thermostable mutants for cephalosporin C acylase from Pseudomonas strain SE83
AU - Xu, Zhaobin
AU - Tian, Ye
AU - Zhu, Yushan
N1 - Publisher Copyright:
© 2018 Elsevier Ltd
PY - 2018/8/4
Y1 - 2018/8/4
N2 - Computational protein design strategies can be used to increase enzyme stability without the need for high-throughput screening. In this report, computational methods were used to redesign cephalosporin C acylase from Pseudomonas strain SE83 to enhance its stability by repacking the hydrophobic core regions and reconstructing the protein-protein interactions in the segment interface regions. A nine-fold mutant with enhanced catalytic activity in the hydrolysis of cephalosporin C to 7-aminocephalosporanic acid, but with low stability, was used as a starting point. A computational enzyme design strategy was used to identify target regions to increase the protein melting temperature (Tm). Single point mutations Asn2βThr, Asn2βVal, Cys470βSer, Leu154βPhe, and Leu180βPhe in hydrophobic core regions, and Ala100αSer and Ala37βSer in segment-segment interface regions, increased the Tm by 4.7–19.7° C, while combining these confirmed single mutations increased the Tm by up to 20.5° C.
AB - Computational protein design strategies can be used to increase enzyme stability without the need for high-throughput screening. In this report, computational methods were used to redesign cephalosporin C acylase from Pseudomonas strain SE83 to enhance its stability by repacking the hydrophobic core regions and reconstructing the protein-protein interactions in the segment interface regions. A nine-fold mutant with enhanced catalytic activity in the hydrolysis of cephalosporin C to 7-aminocephalosporanic acid, but with low stability, was used as a starting point. A computational enzyme design strategy was used to identify target regions to increase the protein melting temperature (Tm). Single point mutations Asn2βThr, Asn2βVal, Cys470βSer, Leu154βPhe, and Leu180βPhe in hydrophobic core regions, and Ala100αSer and Ala37βSer in segment-segment interface regions, increased the Tm by 4.7–19.7° C, while combining these confirmed single mutations increased the Tm by up to 20.5° C.
KW - Cephalosporin C acylase
KW - Computational enzyme design
KW - Computational protein design
KW - Enzyme engineering
KW - Protein-protein interaction
UR - http://www.scopus.com/inward/record.url?scp=85047257159&partnerID=8YFLogxK
U2 - 10.1016/j.compchemeng.2018.05.014
DO - 10.1016/j.compchemeng.2018.05.014
M3 - Article
AN - SCOPUS:85047257159
SN - 0098-1354
VL - 116
SP - 112
EP - 121
JO - Computers and Chemical Engineering
JF - Computers and Chemical Engineering
ER -