Minimalist Protein Engineering of an Aldolase Provokes Unprecedented Substrate Promiscuity

被引:47
作者
Gueclue, Deniz [1 ]
Szekrenyi, Anna [2 ]
Garrabou, Xavier [2 ]
Kickstein, Michael [1 ]
Junker, Sebastian [1 ]
Clapes, Pere [2 ]
Fessneer, Wolf-Dieter [1 ]
机构
[1] Tech Univ Darmstadt, Inst Organ Chem & Biochem, Alarich Weiss Str 4, D-64287 Darmstadt, Germany
[2] Inst Quim Avanzada Cataluna IQAC CSIC, Jordi Girona 18-26, Barcelona 08034, Spain
关键词
aldol reactions; biocatalysis; carbohydrates; mutagenesis; protein engineering; D-FRUCTOSE-6-PHOSPHATE ALDOLASE; TRANSALDOLASE FAMILY; ENZYME PROMISCUITY; ORGANIC-SYNTHESIS; F6P ALDOLASE; DIHYDROXYACETONE; ACID; GLYCOLALDEHYDE; CATALYST; MUTATIONS;
D O I
10.1021/acscatal.5b02805
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Application of aldolases for the asymmetric synthesis of multifunctional chiral products is hampered by their reputed strict nucleophile (=aldol donor) specificity owing to a mechanistic requirement for creating a carbanion nucleophile in aqueous medium. Here we report that a minimalist engineering can extensively broaden the substrate scope of native D-fructose-6-phosphate aldolase (FSA) from Escherichia coli, for which hydroxyacetone is the most proficient substrate, to accept an unprecedented wide variety of alternative nucleophiles. By single- or double-space-generating mutations using simple conservative Leu to Ala replacement of active site residues, we found enzyme variants to efficiently convert larger ketols and bioisosteric ether components with up to seven skeletal atoms, including linear and branched-chain structures. All reactions occurred with full retention of the natural D-threo diastereospecificity. These FSA variants open new avenues toward the synthesis of novel product families that hitherto were inaccessible by biological catalysis.
引用
收藏
页码:1848 / 1852
页数:5
相关论文
共 33 条
[1]   Practical synthesis of 4-hydroxy-3-oxobutylphosphonic acid and its evaluation as a bio-isosteric substrate of DHAP aldolase [J].
Arth, HL ;
Fessner, WD .
CARBOHYDRATE RESEARCH, 1997, 305 (3-4) :313-321
[2]   In the light of directed evolution: Pathways of adaptive protein evolution [J].
Bloom, Jesse D. ;
Arnold, Frances H. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 :9995-10000
[3]   C-C Bond-Forming Lyases in Organic Synthesis [J].
Brovetto, Margarita ;
Gamenara, Daniela ;
Saenz Mendez, Patricia ;
Seoane, Gustavo A. .
CHEMICAL REVIEWS, 2011, 111 (07) :4346-4403
[4]   CRYSTAL STRUCTURAL-ANALYSIS OF MUTATIONS IN THE HYDROPHOBIC CORES OF BARNASE [J].
BUCKLE, AM ;
HENRICK, K ;
FERSHT, AR .
JOURNAL OF MOLECULAR BIOLOGY, 1993, 234 (03) :847-860
[5]   A Mutant D-Fructose-6-Phosphate Aldolase (Ala129Ser) with Improved Affinity towards Dihydroxyacetone for the Synthesis of Polyhydroxylated Compounds [J].
Castillo, Jose A. ;
Guerard-Helaine, Christine ;
Gutierrez, Mariana ;
Garrabou, Xavier ;
Sancelme, Martine ;
Schuermann, Melanie ;
Inoue, Tomoyuki ;
Helaine, Virgil ;
Charmantray, Franck ;
Gefflaut, Thierry ;
Hecquet, Laurence ;
Joglar, Jesus ;
Clapes, Pere ;
Sprenger, Georg A. ;
Lemaire, Marielle .
ADVANCED SYNTHESIS & CATALYSIS, 2010, 352 (06) :1039-1046
[6]   DEOXYRIBOSE-5-PHOSPHATE ALDOLASE AS A CATALYST IN ASYMMETRIC ALDOL CONDENSATION [J].
CHEN, LR ;
DUMAS, DP ;
WONG, CH .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1992, 114 (02) :741-748
[7]  
Clapes P, 2015, Science of synthesis biocatalysis in organic synthesis, V2, P31
[8]   Current Trends in Asymmetric Synthesis with Aldolases [J].
Clapes, Pere ;
Garrabou, Xavier .
ADVANCED SYNTHESIS & CATALYSIS, 2011, 353 (13) :2263-2283
[9]   RESPONSE OF A PROTEIN-STRUCTURE TO CAVITY-CREATING MUTATIONS AND ITS RELATION TO THE HYDROPHOBIC EFFECT [J].
ERIKSSON, AE ;
BAASE, WA ;
ZHANG, XJ ;
HEINZ, DW ;
BLABER, M ;
BALDWIN, EP ;
MATTHEWS, BW .
SCIENCE, 1992, 255 (5041) :178-183
[10]  
Fessner W-D, 2011, ENZYME CATALYSIS ORG, V2, P857