Crystal structure of sucrose phosphorylase from Bifidobacterium adolescentis

被引:85
作者
Sprogoe, D
van den Broek, LAM
Mirza, O
Kastrup, JS
Voragen, AGJ
Gajhede, M
Skov, LK
机构
[1] Danish Univ Pharmaceut Sci, Struct Biol Grp, Dept Med Chem, DK-2100 Copenhagen, Denmark
[2] Wageningen Univ, Food Chem Lab, NL-6700 EV Wageningen, Netherlands
关键词
D O I
10.1021/bi0356395
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
Around 80 enzymes are implicated in the generic starch and sucrose pathways. One of these enzymes is sucrose phosphorylase, which reversibly catalyzes the conversion of sucrose and orthophosphate to D-Fructose and alpha-D-glucose 1-phosphate. Here, we present the crystal structure of sucrose phosphorylase from Bifidobacterium adolescentis (BiSP) refined at 1.77 Angstrom resolution. It represents the first 3D structure of a sucrose phosphorylase and is the first structure of a phosphate-dependent enzyme from the glycoside hydrolase family 13. The structure of BiSP is composed of the four domains A, B, B', and C. Domain A comprises the (beta/alpha)(8)-barrel common to family 13. The catalytic active-site residues (Asp192 and Glu232) are located at the tips of beta-sheets 4 and 5 in the (beta/alpha)(8)-barrel, as required for family 13 members. The topology of the B' domain disfavors oligosaccharide binding and reduces the size of the substrate access channel compared to other family 13 members, underlining the role of this domain in modulating the function of these enzymes. It is remarkable that the fold of the C domain is not observed in any other known hydrolases of family 13. BiSP was found as a homodimer in the crystal, and a dimer contact surface area of 960 Angstrom(2) per monomer was calculated. The majority of the interactions are confined to the two B domains, but interactions between the loop 8 regions of the two barrels are also observed. This results in a large cavity in the dimer, including the entrance to the two active sites.
引用
收藏
页码:1156 / 1162
页数:7
相关论文
共 42 条
[1]   Methods used in the structure determination of bovine mitochondrial F-1 ATPase [J].
Abrahams, JP ;
Leslie, AGW .
ACTA CRYSTALLOGRAPHICA SECTION D-BIOLOGICAL CRYSTALLOGRAPHY, 1996, 52 :30-42
[2]   Crystal structures of the psychrophilic α-amylase from Alteromonas haloplanctis in its native form and complexed with an inhibitor [J].
Aghajari, N ;
Feller, G ;
Gerday, C ;
Haser, R .
PROTEIN SCIENCE, 1998, 7 (03) :564-572
[3]   THE CCP4 SUITE - PROGRAMS FOR PROTEIN CRYSTALLOGRAPHY [J].
BAILEY, S .
ACTA CRYSTALLOGRAPHICA SECTION D-BIOLOGICAL CRYSTALLOGRAPHY, 1994, 50 :760-763
[4]   ALSCRIPT - A TOOL TO FORMAT MULTIPLE SEQUENCE ALIGNMENTS [J].
BARTON, GJ .
PROTEIN ENGINEERING, 1993, 6 (01) :37-40
[5]   Pfam 3.1: 1313 multiple alignments and profile HMMs match the majority of proteins [J].
Bateman, A ;
Birney, E ;
Durbin, R ;
Eddy, SR ;
Finn, RD ;
Sonnhammer, ELL .
NUCLEIC ACIDS RESEARCH, 1999, 27 (01) :260-262
[6]  
Bird A R, 2000, Curr Issues Intest Microbiol, V1, P25
[7]  
Brunger AT, 1998, ACTA CRYSTALLOGR D, V54, P905, DOI 10.1107/s0907444998003254
[8]   STRUCTURES AND MECHANISMS OF GLYCOSYL HYDROLASES [J].
DAVIES, G ;
HENRISSAT, B .
STRUCTURE, 1995, 3 (09) :853-859
[9]   Nomenclature for sugar-binding subsites in glycosyl hydrolases [J].
Davies, GJ ;
Wilson, KS ;
Henrissat, B .
BIOCHEMICAL JOURNAL, 1997, 321 :557-559
[10]  
De Montalk GP, 1999, J BACTERIOL, V181, P375