Modulating Glycoside Hydrolase Activity between Hydrolysis and Transfer Reactions Using an Evolutionary Approach

被引:4
|
作者
Arreola-Barroso, Rodrigo A. [1 ]
Llopiz, Alexey [1 ]
Olvera, Leticia [1 ]
Saab-Rincon, Gloria [1 ]
机构
[1] Univ Nacl Autonoma Mexico, Inst Biotecnol, Dept Ingn Celular Biocatalisis, Cuernavaca 62271, Morelos, Mexico
来源
MOLECULES | 2021年 / 26卷 / 21期
关键词
transglycosidation; hydrolysis; contact-residues; amylase; glucanotransferase; coevolution; enrichment-factor; specificity; INTRODUCING TRANSGLYCOSYLATION ACTIVITY; LICHENIFORMIS ALPHA-AMYLASE; CYCLODEXTRIN GLYCOSYLTRANSFERASE; DIRECTED EVOLUTION; SUBSTRATE-BINDING; THERMOACTINOMYCES-VULGARIS; 3-DIMENSIONAL STRUCTURES; HALOTHERMOTHRIX-ORENII; MALTOGENIC AMYLASE; CRYSTAL-STRUCTURE;
D O I
10.3390/molecules26216586
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The proteins within the CAZy glycoside hydrolase family GH13 catalyze the hydrolysis of polysaccharides such as glycogen and starch. Many of these enzymes also perform transglycosylation in various degrees, ranging from secondary to predominant reactions. Identifying structural determinants associated with GH13 family reaction specificity is key to modifying and designing enzymes with increased specificity towards individual reactions for further applications in industrial, chemical, or biomedical fields. This work proposes a computational approach for decoding the determinant structural composition defining the reaction specificity. This method is based on the conservation of coevolving residues in spatial contacts associated with reaction specificity. To evaluate the algorithm, mutants of alpha-amylase (TmAmyA) and glucanotransferase (TmGTase) from Thermotoga maritima were constructed to modify the reaction specificity. The K98P/D99A/H222Q variant from TmAmyA doubled the transglycosydation/hydrolysis (T/H) ratio while the M279N variant from TmGTase increased the hydrolysis/transglycosidation ratio five-fold. Molecular dynamic simulations of the variants indicated changes in flexibility that can account for the modified T/H ratio. An essential contribution of the presented computational approach is its capacity to identify residues outside of the active center that affect the reaction specificity.
引用
收藏
页数:24
相关论文
共 50 条
  • [1] MODULATING ENZYME ACTIVITY BETWEEN SUGAR HYDROLYSIS AND SUGAR TRANSFER USING AN EVOLUTIONARY APPROACH
    Arreola-Barroso, Rodrigo
    Xolalpa-Villanueva, Wendy
    Olvera-Rodriguez, Leticia
    Saab-Rincon, Gloria
    PROTEIN SCIENCE, 2019, 28 : 172 - 173
  • [2] Strategies for Modulating the pH-Dependent Activity of a Family 11 Glycoside Hydrolase
    Ludwiczek, Martin L.
    D'Angelo, Igor
    Yalloway, Gary N.
    Brockerman, Jacob A.
    Okon, Mark
    Nielsen, Jens E.
    Strynadka, Natalie C. J.
    Withers, Stephen G.
    McIntosh, Lawrence P.
    BIOCHEMISTRY, 2013, 52 (18) : 3138 - 3156
  • [3] Hydrolysis of Glycosyl Thioimidates by Glycoside Hydrolase Requires Remote Activation for Efficient Activity
    Guillotin, Laure
    Assaf, Zeinab
    Pistorio, Salvatore G.
    Lafite, Pierre
    Demchenko, Alexei, V
    Daniellou, Richard
    CATALYSTS, 2019, 9 (10)
  • [4] Determination of glycoside hydrolase specificities during hydrolysis of plant cell walls using glycome profiling
    Walker, Johnnie A.
    Pattathil, Sivakumar
    Bergeman, Lai F.
    Beebe, Emily T.
    Deng, Kai
    Mirzai, Maryam
    Northen, Trent R.
    Hahn, Michael G.
    Fox, Brian G.
    BIOTECHNOLOGY FOR BIOFUELS, 2017, 10
  • [5] Determination of glycoside hydrolase specificities during hydrolysis of plant cell walls using glycome profiling
    Johnnie A. Walker
    Sivakumar Pattathil
    Lai F. Bergeman
    Emily T. Beebe
    Kai Deng
    Maryam Mirzai
    Trent R. Northen
    Michael G. Hahn
    Brian G. Fox
    Biotechnology for Biofuels, 10
  • [6] 4,6-α-Glucanotransferase, a Novel Enzyme That Structurally and Functionally Provides an Evolutionary Link between Glycoside Hydrolase Enzyme Families 13 and 70
    Kralj, Slavko
    Grijpstra, Pieter
    van Leeuwen, Sander S.
    Leemhuis, Hans
    Dobruchowska, Justyna M.
    van der Kaaij, Rachel M.
    Malik, Amarila
    Oetari, Ariyanti
    Kamerling, Johannis P.
    Dijkhuizen, Lubbert
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2011, 77 (22) : 8154 - 8163
  • [7] Gaining insight into the inhibition of glycoside hydrolase family 20 exo-β-N-acetylhexosaminidases using a structural approach
    Sumida, Tomomi
    Stubbs, Keith A.
    Ito, Makoto
    Yokoyama, Shigeyuki
    ORGANIC & BIOMOLECULAR CHEMISTRY, 2012, 10 (13) : 2607 - 2612
  • [9] Friend or foe? Evolutionary history of glycoside hydrolase family 32 genes encoding for sucrolytic activity in fungi and its implications for plant-fungal symbioses
    Jeri Lynn Parrent
    Timothy Y James
    Rimvydas Vasaitis
    Andrew FS Taylor
    BMC Evolutionary Biology, 9
  • [10] Friend or foe? Evolutionary history of glycoside hydrolase family 32 genes encoding for sucrolytic activity in fungi and its implications for plant-fungal symbioses
    Parrent, Jeri Lynn
    James, Timothy Y.
    Vasaitis, Rimvydas
    Taylor, Andrew F. S.
    BMC EVOLUTIONARY BIOLOGY, 2009, 9