Donor and acceptor substrate selectivity among plant glycoside hydrolase family 32 enzymes

被引:68
作者
Van den Ende, Wim [1 ]
Lammens, Willem [1 ,2 ]
Van Laere, Andre [1 ]
Schroeven, Lindsey [1 ]
Le Roy, Katrien [1 ]
机构
[1] Katholieke Univ Leuven, Lab Mol Plant Physiol, B-3001 Heverlee, Belgium
[2] Katholieke Univ Leuven, Lab Biocrystallog, B-3001 Louvain, Belgium
关键词
fructan; fructosyl transferase; invertase; structure-function; sucrose; CELL-WALL INVERTASE; SUCROSE-SUCROSE; 1-FRUCTOSYLTRANSFERASE; CHICORY FRUCTAN 1-EXOHYDROLASE; RAY-DIFFRACTION STRUCTURE; PERENNIAL RYEGRASS; FUNCTIONAL-ANALYSIS; ACTIVE-SITE; WHEAT; EXOHYDROLASES; ACCUMULATION;
D O I
10.1111/j.1742-4658.2009.07316.x
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
Plant family 32 glycoside hydrolase enzymes include hydrolases (cell wall invertases, fructan exohydrolases, vacuolar invertases) and fructosyltransferases. These enzymes are very similar at the molecular and structural levels but are functionally different. Understanding the basis of the functional diversity in this family is a challenging task. By combining structural and site-directed mutagenesis data, Asp239 in AtcwINV1 was identified as an amino acid critical for binding and stabilizing sucrose. Plant fructan exohydrolases lack such an Asp239 equivalent. Substitution of Asp239 led to the loss of invertase activity, while its introduction in fructan exohydrolases increased invertase activity. Some fructan exohydrolases are inhibited by sucrose. The difference between the inhibitor (fructan exohydrolase) and the substrate (invertase) binding configurations of sucrose can be explained by the different orientation of Trp82. Furthermore, the evolutionary hydrolase/transferase transition could be mimicked and the difference between S-type fructosyltransferases (sucrose as donor) and F-type fructosyltransferases (fructan as donor) could be unravelled.
引用
收藏
页码:5788 / 5798
页数:11
相关论文
共 39 条
[1]   The three-dimensional structure of invertase (β-fructosidase) from Thermotoga maritima reveals a bimodular arrangement and an evolutionary relationship between retaining and inverting glycosidases [J].
Alberto, F ;
Bignon, C ;
Sulzenbacher, G ;
Henrissat, B ;
Czjzek, M .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2004, 279 (18) :18903-18910
[2]   An acceptor-substrate binding site determining glycosyl transfer emerges from mutant analysis of a plant vacuolar invertase and a fructosyltransferase [J].
Altenbach, Denise ;
Rudino-Pinera, Enrique ;
Olvera, Clarita ;
Boller, Thomas ;
Wiemken, Andres ;
Ritsema, Tita .
PLANT MOLECULAR BIOLOGY, 2009, 69 (1-2) :47-56
[3]  
[Anonymous], PYMOL MOL GRAPHICS S
[4]   Isolation and characterisation of a sucrose:sucrose 1-fructosyltransferase gene from perennial ryegrass (Lolium perenne) [J].
Chalmers, J ;
Johnson, X ;
Lidgett, A ;
Spangenberg, G .
JOURNAL OF PLANT PHYSIOLOGY, 2003, 160 (11) :1385-1391
[5]  
Coninck B. de, 2007, Recent advances in fructooligosaccharides research, P157
[6]   Nomenclature for sugar-binding subsites in glycosyl hydrolases [J].
Davies, GJ ;
Wilson, KS ;
Henrissat, B .
BIOCHEMICAL JOURNAL, 1997, 321 :557-559
[7]   Arabidopsis AtcwINV3 and 6 are not invertases but are fructan exohydrolases (FEHs) with different substrate specificities [J].
De Coninck, B ;
Le Roy, K ;
Francis, I ;
Clerens, S ;
Vergauwen, R ;
Halliday, AM ;
Smith, SM ;
Van Laere, A ;
Van den Ende, W .
PLANT CELL AND ENVIRONMENT, 2005, 28 (04) :432-443
[8]  
HENDRY GAF, 1993, NEW PHYTOL, V123, P3
[9]   A CLASSIFICATION OF GLYCOSYL HYDROLASES BASED ON AMINO-ACID-SEQUENCE SIMILARITIES [J].
HENRISSAT, B .
BIOCHEMICAL JOURNAL, 1991, 280 :309-316
[10]   Fructans from oat and rye: Composition and effects on membrane stability during drying [J].
Hincha, Dirk K. ;
Livingston, David P., III ;
Premakumar, Ramaswamy ;
Zuther, Ellen ;
Obel, Nicolai ;
Cacela, Constanca ;
Heyer, Arnd G. .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2007, 1768 (06) :1611-1619