Structure-based engineering of benzalacetone synthase

被引:9
|
作者
Shimokawa, Yoshihiko [1 ]
Morita, Hiroyuki [1 ]
Abe, Ikuro [1 ]
机构
[1] Univ Tokyo, Grad Sch Pharmaceut Sci, Bunkyo Ku, Tokyo 1130033, Japan
关键词
Polyketide synthase; Benzalacetone synthase; Enzyme; Site-directed mutagenesis; Enzyme engineering; III POLYKETIDE SYNTHASES; CHALCONE SYNTHASE; RHEUM-PALMATUM; CRYSTAL-STRUCTURE; BIOSYNTHESIS; SPECIFICITY; MECHANISM; COENZYME;
D O I
10.1016/j.bmcl.2010.07.022
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Benzalacetone synthase (BAS) and chalcone synthase (CHS) are plant-specific type III polyketide synthases (PKSs), sharing 70% amino acid sequence identity and highly homologous overall protein structures. BAS catalyzes the decarboxylative coupling of 4-coumaroyl-CoA with malonyl-CoA to produce the diketide benzalacetone, whereas CHS produces the tetraketide chalcone by iterative condensations with three molecules of malonyl-CoA, and folding the resulting intermediate into a new aromatic ring system. Recent crystallographic analyses of Rheum palmatum BAS revealed that the characteristic substitution of Thr132 (numbering of Medicago sativa CHS2), a conserved CHS residue lining the active-site cavity, with Leu causes steric contraction of the BAS active-site to produce the diketide, instead of the tetraketide. To test this hypothesis, we constructed a set of R. palmatum BAS site-directed mutants (L132G, L132A, L132S, L132C, L132T, L132F, L132Y, L132W and L132P), and investigated the mechanistic consequences of the point mutations. As a result, the single amino acid substitution L132T restored the chalcone-forming activity in BAS, whereas the Ala, Ser, and Cys substitutions expanded the product chain length to produce 4-coumaroyltriacetic acid lactone (CTAL) after three condensations with malonyl-CoA, but without the formation of the aromatic ring system. Homology modeling suggested that this is probably caused by the restoration of the 'coumaroyl binding pocket' in the active-site cavity. These findings provide further insights into the structural details of the catalytic mechanism of the type III PKS enzymes. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:5099 / 5103
页数:5
相关论文
共 50 条
  • [41] A structure-based model of the reaction catalyzed by lumazine synthase from Aquifex aeolicus
    Zhang, XF
    Meining, W
    Cushman, M
    Haase, I
    Fischer, M
    Bacher, A
    Ladenstein, R
    JOURNAL OF MOLECULAR BIOLOGY, 2003, 328 (01) : 167 - 182
  • [42] Citrate synthase proteins in extremophilic organisms: Studies within a structure-based model
    Rozycki, Bartosz
    Cieplak, Marek
    JOURNAL OF CHEMICAL PHYSICS, 2014, 141 (23):
  • [43] Manipulation of prenylation reactions by structure-based engineering of bacterial indolactam prenyltransferases
    Takahiro Mori
    Lihan Zhang
    Takayoshi Awakawa
    Shotaro Hoshino
    Masahiro Okada
    Hiroyuki Morita
    Ikuro Abe
    Nature Communications, 7
  • [44] Structure-based engineering of streptavidin monomer with a reduced biotin dissociation rate
    DeMonte, Daniel
    Drake, Eric J.
    Lim, Kok Hong
    Gulick, Andrew M.
    Park, Sheldon
    PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2013, 81 (09) : 1621 - 1633
  • [45] Structure-based design and protein engineering of intersubunit disulfide bonds in gonadotropins
    Judith C. Heikoop
    Paul van den Boogaart
    John WM Mulders
    Peter D.J. Grootenhuis
    Nature Biotechnology, 1997, 15 : 658 - 662
  • [46] Structure-based engineering of substrate specificity for pinoresinol-lariciresinol reductases
    Xiao, Ying
    Shao, Kai
    Zhou, Jingwen
    Wang, Lian
    Ma, Xueqi
    Wu, Di
    Yang, Yingbo
    Chen, Junfeng
    Feng, Jingxian
    Qiu, Shi
    Lv, Zongyou
    Zhang, Lei
    Zhang, Peng
    Chen, Wansheng
    NATURE COMMUNICATIONS, 2021, 12 (01)
  • [47] Expanding pyrimidine diphosphosugar libraries via structure-based nucleotidylyltransferase engineering
    Barton, WA
    Biggins, JB
    Jiang, JQ
    Thorson, JS
    Nikolov, DB
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (21) : 13397 - 13402
  • [48] Protein engineering strategies for the structure-based design of advanced materials.
    Kiick, KL
    Farmer, RS
    Polizzotti, BD
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2004, 227 : U511 - U511
  • [49] Structure-based protein engineering for α-amylase inhibitory activity of plant defensin
    Lin, Ku-Feng
    Lee, Tian-Ren
    Tsai, Ping-Hsing
    Hsu, Ming-Pin
    Chen, Ching-San
    Lyu, Ping-Chiang
    PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2007, 68 (02) : 530 - 540
  • [50] Structure-based design and protein engineering of intersubunit disulfide bonds in gonadotropins
    Heikoop, JC
    vandenBoogaart, P
    Mulders, JWM
    Grootenhuis, PDJ
    NATURE BIOTECHNOLOGY, 1997, 15 (07) : 658 - 662