Crystal structures of Flavobacterium glycosylasparaginase -: An N-terminal nucleophile hydrolase activated by intramolecular proteolysis

被引:52
作者
Guo, HC
Xu, Q
Buckley, D
Guan, C
机构
[1] Boston Univ, Sch Med, Dept Biophys, Boston, MA 02118 USA
[2] New England Biolabs Inc, Beverly, MA 01915 USA
关键词
D O I
10.1074/jbc.273.32.20205
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
Glycosylasparaginase (GA) is a member of a novel family of N-terminal nucleophile hydrolases that catalytically use an N-terminal residue as both a polarizing base and a nucleophile. These enzymes are activated from a single chain precursor by intramolecular autoproteolysis to yield the N-terminal nucleophile. A deficiency of GA results in the human genetic disorder known as aspartylglycosaminuria. In this study, we report the crystal structure of recombinant GA from Flavobacterium meningosepticum, Similar to the human structure, the bacterial GA forms an alpha beta alpha sandwich. However, some significant differences are observed between the Flavobacterium and human structures. The active site of Flavobacterium glycosylasparaginase is in an open conformation when compared with the human structure. We also describe the structure of a mutant wherein the N-terminal nucleophile Thr(152) is, substituted by a cysteine. In the bacterial GA crystals, we observe a heterotetrameric structure similar to that found in the human structure, as well as that observed in solution for eukaryotic glycosylasparaginases. The results confirm the suitability of the bacterial enzyme as a model to study the consequences of mutations in aspartylglycosaminuria patients. They also suggest that further studies are necessary to understand the detail mechanism of this enzyme. The presence of the heterotetrameric structure in the crystals is significant because dimerization of precursors has been suggested in the human enzyme to be a prerequisite to trigger autoproteolysis.
引用
收藏
页码:20205 / 20212
页数:8
相关论文
共 39 条
[21]   Purification, biochemistry and molecular cloning of an insect glycosylasparaginase from Spodoptera frugiperda [J].
Liu, Y ;
Dunn, GS ;
Aronson, NN .
GLYCOBIOLOGY, 1996, 6 (05) :527-536
[22]   Site-directed mutagenesis of essential residues involved in the mechanism of bacterial glycosylasparaginase [J].
Liu, Y ;
Guan, C ;
Aronson, NN .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1998, 273 (16) :9688-9694
[23]   CRYSTAL-STRUCTURE OF THE 20S PROTEASOME FROM THE ARCHAEON T-ACIDOPHILUM AT 3.4-ANGSTROM RESOLUTION [J].
LOWE, J ;
STOCK, D ;
JAP, R ;
ZWICKL, P ;
BAUMEISTER, W ;
HUBER, R .
SCIENCE, 1995, 268 (5210) :533-539
[24]  
McRee D.E., 1992, J. Mol. Graph, V10, P44
[25]   Orbital steering in the catalytic power of enzymes: Small structural changes with large catalytic consequences [J].
Mesecar, AD ;
Stoddard, BL ;
Koshland, DE .
SCIENCE, 1997, 277 (5323) :202-206
[26]   ASPARTYLGLYCOSAMINURIA - PROTEIN CHEMISTRY AND MOLECULAR-BIOLOGY OF THE MOST COMMON LYSOSOMAL STORAGE DISORDER OF GLYCOPROTEIN DEGRADATION [J].
MONONEN, I ;
FISHER, KJ ;
KAARTINEN, V ;
ARONSON, NN .
FASEB JOURNAL, 1993, 7 (13) :1247-1256
[27]   RECOMBINANT GLYCOSYLASPARAGINASE AND IN-VITRO CORRECTION OF ASPARTYLGLYCOSAMINURIA [J].
MONONEN, I ;
HEISTERKAMP, N ;
DUNDER, U ;
ROMPPANEN, EL ;
NORONKOSKI, T ;
KURONEN, I ;
GROFFEN, J .
FASEB JOURNAL, 1995, 9 (05) :428-433
[28]   PROTEIN FOLDING AND ASSOCIATION - INSIGHTS FROM THE INTERFACIAL AND THERMODYNAMIC PROPERTIES OF HYDROCARBONS [J].
NICHOLLS, A ;
SHARP, KA ;
HONIG, B .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 1991, 11 (04) :281-296
[29]   3-DIMENSIONAL STRUCTURE OF HUMAN LYSOSOMAL ASPARTYLGLUCOSAMINIDASE [J].
OINONEN, C ;
TIKKANEN, R ;
ROUVINEN, J ;
PELTONEN, L .
NATURE STRUCTURAL BIOLOGY, 1995, 2 (12) :1102-1108
[30]  
OTWINOWSKI Z, 1993, P CCP4 STUD WEEK DAT, P56