Computer-assisted engineering of the catalytic activity of a carboxylic acid reductase

被引:18
|
作者
Qu, Ge [1 ]
Liu, Beibei [1 ]
Zhang, Kun [1 ]
Jiang, Yingying [1 ]
Guo, Jinggong [2 ]
Wang, Ran [3 ]
Miao, Yuchen [2 ]
Zhai, Chao [4 ]
Sun, Zhoutong [1 ]
机构
[1] Chinese Acad Sci, Tianjin Inst Ind Biotechnol, Tianjin Airport Econ Area, 32 West 7th Ave, Tianjin 300308, Peoples R China
[2] Henan Univ, Inst Plant Stress Biol, Dept Biol, State Key Lab Cotton Biol, 85 Minglun St, Kaifeng 475001, Peoples R China
[3] CNTC, Zhengzhou Tabacco Res Inst, 2 Fengyang St, Zhengzhou 450001, Henan, Peoples R China
[4] Hubei Univ, Hubei Collaborat Innovat Ctr Green Transformat Bi, Hubei Key Lab Ind Biotechnol, State Key Lab Biocatalysis & Enzyme Engn,Coll Lif, 368 Youyi Rd, Wuhan 430062, Hubei, Peoples R China
基金
中国国家自然科学基金;
关键词
Rational design; Biocatalysis; Enzyme activity; Carboxylic acid reductase; Saturation mutagenesis; DIRECTED EVOLUTION; MOLECULAR-DYNAMICS; BIOSYNTHESIS; BIOCATALYSIS; MUTAGENESIS; ENZYMES; FUELS;
D O I
10.1016/j.jbiotec.2019.09.006
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Carboxylic acid reductases (CARs) play crucial roles in the biosynthesis of optically pure aldehydes with no side products. It has inspired synthetic organic chemists and biotechnologists to exploit them as catalysts in practical applications. However, levels of activity and substrate specificity are not routinely sufficient. Recent developments in protein engineering have produced numerous biocatalysts with new catalytic properties, whereas such efforts in CARs are limited. In this study, we show that the exploitation of information derived from catalytic mechanism analysis and molecular dynamics simulations assisted the semi-rational engineering of a CAR from Segniliparus rugosus (SrCAR) with the aim of increasing activity. Guided by protein-ligand interaction fingerprinting analysis, 17 residues at the substrate binding pockets were first identified. We then performed single site saturation mutagenesis and successfully obtained variants that gave high activities using benzoic acid as the model substrate. As a result, the best mutant K524W enabled 99% conversion and 17.28 s(-1) mM(-1) k(cat)/K-m, with 7- and 2-fold improvement compared to the wild-type, respectively. The engineered catalyst K524W as well as a second variant K524Q proved to be effective in the reduction of other benzoic acid derivatives. Insight into the source of enhanced activity was gained by molecular dynamics simulations.
引用
收藏
页码:97 / 104
页数:8
相关论文
共 50 条
  • [21] Engineering carboxylic acid reductase for selective synthesis of medium-chain fatty alcohols in yeast
    Hu, Yating
    Zhu, Zhiwei
    Gradischnig, David
    Winkler, Margit
    Nielsen, Jens
    Siewers, Verena
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (37) : 22974 - 22983
  • [22] Exploring the synthetic applicability of a new carboxylic acid reductase from Segniliparus rotundus DSM 44985
    Duan, Yitao
    Yao, Peiyuan
    Chen, Xi
    Liu, Xiangtao
    Zhang, Rui
    Feng, Jinhui
    Wu, Qiaqing
    Zhu, Dunming
    JOURNAL OF MOLECULAR CATALYSIS B-ENZYMATIC, 2015, 115 : 1 - 7
  • [23] Adenylation Activity of Carboxylic Acid Reductases Enables the Synthesis of Amides
    Wood, Alexander J. L.
    Weise, Nicholas J.
    Frampton, Joseph D.
    Dunstan, Mark S.
    Hollas, Michael A.
    Derrington, Sasha R.
    Lloyd, Richard C.
    Quaglia, Daniela
    Parmeggiani, Fabio
    Leys, David
    Turner, Nicholas J.
    Flitsch, Sabine L.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (46) : 14498 - 14501
  • [24] Carboxylic Acid Reductase Can Catalyze Ester Synthesis in Aqueous Environments
    Pongpamorn, Pornkanok
    Kiattisewee, Cholpisit
    Kittipanukul, Narongyot
    Jaroensuk, Juthamas
    Trisrivirat, Duangthip
    Maenpuen, Somchart
    Chaiyen, Pimchai
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2021, 60 (11) : 5749 - 5753
  • [25] Structures of carboxylic acid reductase reveal domain dynamics underlying catalysis
    Gahloth, Deepankar
    Dunstan, Mark S.
    Quaglia, Daniela
    Klumbys, Evaldas
    Lockhart-Cairns, Michael P.
    Hill, Andrew M.
    Derrington, Sasha R.
    Scrutton, Nigel S.
    Turner, Nicholas J.
    Leys, David
    NATURE CHEMICAL BIOLOGY, 2017, 13 (09) : 975 - +
  • [26] Structure of the Reductase Domain of a Fungal Carboxylic Acid Reductase and Its Substrate Scope in Thioester and Aldehyde Reduction
    Daniel, Bastian
    Hashem, Chiam
    Leithold, Marlene
    Sagmeister, Theo
    Tripp, Adrian
    Stolterfoht-Stock, Holly
    Messenlehner, Julia
    Keegan, Ronan
    Winkler, Christoph K.
    Ling, Jonathan Guyang
    Younes, Sabry H. H.
    Oberdorfer, Gustav
    Bakar, Farah Diba Abu
    Gruber, Karl
    Pavkov-Keller, Tea
    Winkler, Margit
    ACS CATALYSIS, 2022, 12 (24) : 15668 - 15674
  • [27] Efficient biosynthesis of cinnamyl alcohol by engineered Escherichia coli overexpressing carboxylic acid reductase in a biphasic system
    Zhang, Chen
    Xu, Qian
    Hou, Hongliang
    Wu, Jiawei
    Zheng, Zhaojuan
    Ouyang, Jia
    MICROBIAL CELL FACTORIES, 2020, 19 (01)
  • [28] Enzymatic Synthesis of Aliphatic Primary ω-Amino Alcohols from ω-Amino Fatty Acids by Carboxylic Acid Reductase
    Sarak, Sharad
    Jeon, Hyunwoo
    Patil, Mahesh D.
    Khobragade, Taresh P.
    Pagar, Amol D.
    Sung, Sihyong
    Yoo, Hee-Wang
    Kim, Byung-Gee
    Yoon, Sung Ho
    Yun, Hyungdon
    CATALYSIS LETTERS, 2020, 150 (11) : 3079 - 3085
  • [29] Coupling carboxylic acid reductase to inorganic pyrophosphatase enhances cell-free in vitro aldehyde biosynthesis
    Kunjapur, Aditya M.
    Cervantes, Bernardo
    Prather, Kristala L. J.
    BIOCHEMICAL ENGINEERING JOURNAL, 2016, 109 : 19 - 27
  • [30] Carboxylic acid reductases: Structure, catalytic requirements, and applications in biotechnology
    Basri, Rose Syuhada
    Abd Rahman, Raja Noor Zaliha Raja
    Kamarudin, Nor Hafizah Ahmad
    Ali, Mohd Shukuri Mohamad
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2023, 240