Isolation, purification, and characterization of amadoriase isoenzymes (fructosyl amine-oxygen oxidoreductase EC 1.5.3) from Aspergillus sp

被引:79
作者
Takahashi, M [1 ]
Pischetsrieder, M [1 ]
Monnier, VM [1 ]
机构
[1] CASE WESTERN RESERVE UNIV,SCH MED,INST PATHOL,CLEVELAND,OH 44106
关键词
D O I
10.1074/jbc.272.6.3437
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
Four ''amadoriase'' enzyme fractions, which oxidatively degrade glycated low molecular weight amines and amino acids under formation of hydrogen peroxide and glucosone, were isolated from an Aspergillus sp. soil strain selected on fructosyl adamantanamine as sole carbon source. The enzymes were purified to homogeneity using a combination of ion exchange, hydroxyapatite, gel filtration, and Mono & column chromatography. Molecular masses of amadoriase enzymes Ia, Ib, and Ic were 51 kDa, and 49 kDa for amadoriase II. Apparent kinetic constants for N-epsilon-fructosyl N-alpha-t-butoxycarbonyl lysine and fructosyl adamantanamine were almost identical for enzymes Ia, Ib, and Ic, but corresponding values for enzyme II were significantly different. FAD was identified in all enzymes based on its typical absorption spectrum. N terminal sequence was identical for enzymes Ia and Ib (Ala-Pro-Ser-Ile-Leu-Ser-Thr-Glu-Ser-Ser-Ile-Ile-Val-Ile-Gly-Ala- Gly-Thr-Trp-Gly-) and Ic except that the first 5 amino acids were truncated. The sequence of enzyme II was different (Ala-Val-Thr-Lys-Ser-Ser-Ser-Leu-Leu-Ile-Val-Gly-Ala-Gly- Thr-Trp-Gly-Thr-Ser-Thr-). All enzymes had the FAD cofactor-binding consensus sequence Gly-X-Gly-X-X-Gly within the N-terminal sequence. In summary, these data show the presence of two distinct amadoriase enzymes in the Aspergillus sp. soil strain selected on fructosyl adamantanamine and induced by fructosyl propylamine. In contrast to previous described enzymes, these novel amadoriase enzymes can deglycate both glycated amines and amino acids.
引用
收藏
页码:3437 / 3443
页数:7
相关论文
共 39 条
[1]  
AHMED MU, 1986, J BIOL CHEM, V261, P4889
[2]  
BAYNE S, 1963, METHODS CARBOHYDR CH, V2, P421
[3]   ROLE OF OXIDATIVE STRESS IN DEVELOPMENT OF COMPLICATIONS IN DIABETES [J].
BAYNES, JW .
DIABETES, 1991, 40 (04) :405-412
[4]   INCREASED COLLAGEN-LINKED PENTOSIDINE LEVELS AND ADVANCED GLYCOSYLATION END-PRODUCTS IN EARLY DIABETIC NEPHROPATHY [J].
BEISSWENGER, PJ ;
MOORE, LL ;
BRINCKJOHNSEN, T ;
CURPHEY, TJ .
JOURNAL OF CLINICAL INVESTIGATION, 1993, 92 (01) :212-217
[5]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[6]   COVALENT ATTACHMENT OF SOLUBLE-PROTEINS BY NONENZYMATICALLY GLYCOSYLATED COLLAGEN - ROLE IN THE INSITU FORMATION OF IMMUNE-COMPLEXES [J].
BROWNLEE, M ;
PONGOR, S ;
CERAMI, A .
JOURNAL OF EXPERIMENTAL MEDICINE, 1983, 158 (05) :1739-1744
[7]   STI35, A STRESS-RESPONSIVE GENE IN FUSARIUM SPP [J].
CHOI, GH ;
MAREK, ET ;
SCHARDL, CL ;
RICHEY, MG ;
CHANG, SY ;
SMITH, DA .
JOURNAL OF BACTERIOLOGY, 1990, 172 (08) :4522-4528
[8]   PREVENTION OF DIABETIC NEPHROPATHY IN DB/DB MICE WITH GLYCATED ALBUMIN ANTAGONISTS - A NOVEL TREATMENT STRATEGY [J].
COHEN, MP ;
SHARMA, K ;
JIN, YL ;
HUD, E ;
WU, VY ;
TOMASZEWSKI, J ;
ZIYADEH, FN .
JOURNAL OF CLINICAL INVESTIGATION, 1995, 95 (05) :2338-2345
[9]  
DYER DG, 1991, J BIOL CHEM, V266, P11654
[10]   Involvement of hydrogen peroxide in collagen cross-linking by high glucose in vitro and in vivo [J].
Elgawish, A ;
Glomb, M ;
Friedlander, M ;
Monnier, VM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (22) :12964-12971