New family of glutathionyl-biomimetic ligands for affinity chromatography of glutathione-recognising enzymes

被引:19
作者
Melissis, SC
Rigden, DJ
Clonis, YD
机构
[1] Agr Univ Athens, Dept Agr Biotechnol, Lab Enzyme Technol, GR-11855 Athens, Greece
[2] EMBRAPA, Cenargen, SAIN, Natl Ctr Genet Resources & Biotechnol, BR-70770900 Brasilia, DF, Brazil
关键词
affinity chromatography; affinity adsorbents; biomimetic ligands; molecular modelling; dyes; enzymes; formaldehyde dehydrogenase; glutathione reductase; glutathione transferase; triazines;
D O I
10.1016/S0021-9673(01)00655-0
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Three anthraquinone glutathionyl-biomimetic dye ligands, comprising as terminal biomimetic moiety glutathione analogues (glutathionesulfonic acid, S-methyl-glutathione and glutathione) were synthesised and characterised. The biomimetic ligands were immobilised on agarose gel and the affinity adsorbents, together with a nonbiomimetic adsorbent bearing Cibacron Blue 3GA, were studied for their purifying ability for the glutathione-recognising enzymes, NAD(+)-dependent formaldehyde dehydrogenase (FaDH) from Candida boidinii, NAD(P)(+)-dependent glutathione reductase from S. cerevisiae (GSHR) and recombinant maize glutathione S-transferase I(GSTI). All biomimetic adsorbents showed higher purifying ability for the target enzymes compared to the nonbiomimetic adsorbent, thus demonstrating their superior effectiveness as affinity chromatography materials. In particular, the affinity adsorbent comprising as terminal biomimetic moiety glutathionesulfonic acid (BM1), exhibited the highest purifying ability for FaDH and GSTI, whereas, the affinity adsorbent comprising as terminal biomimetic moiety methyl-glutathione (BM2) exhibited the highest purifying ability for GSHR. The BMI adsorbent was integrated in a facile two-step purification procedure for FaDH. The purified enzyme showed a specific activity equal to 79 U/mg and a single band after sodium dodecylsulfate-polyacrylamide gel electrophoresis analysis. Molecular modelling was employed to visualise the binding of BMI with FaDH, indicating favourable positioning of the key structural features of the biomimetic dye. The anthraquinone moiety provides the driving force for the correct positioning of the glutathionyl-biomimetic moiety in the binding site. It is located deep in the active site cleft forming many favourable hydrophobic contacts with hydrophobic residues of the enzyme. The positioning of the glutathione-like biomimetic moiety is primarily achieved by the strong ionic interactions with the Zn2+ ion of FaDH and Arg 114, and by the hydrophobic contacts made with Tyr 92 and Met 140. Molecular models were also produced for the binding of BM1 and BM3 (glutathione-substituted) to GST I. In both cases the biomimetic dye forms multiple hydrophobic interactions with the enzyme through binding to a surface pocket. While the glutathioine moiety of BM3 is predicted to bind in the crystallographically observed way, an alternative, more favourable mode seems to be responsible for the better purification results achieved with BM1. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:29 / 42
页数:14
相关论文
共 36 条
[1]   Growth of Candida boidinii in a methanol-limited continuous culture and the formation of methanol-degrading enzymes [J].
Aggelis, G ;
Fakas, S ;
Melissis, S ;
Clonis, YD .
JOURNAL OF BIOTECHNOLOGY, 1999, 72 (1-2) :127-139
[3]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[4]   DESIGN AND APPLICATIONS OF BIOMIMETIC ANTHRAQUINONE DYES .2. THE INTERACTION OF CI REACTIVE BLUE-2 ANALOGS BEARING TERMINAL RING MODIFICATIONS WITH HORSE LIVER ALCOHOL-DEHYDROGENASE [J].
BURTON, SJ ;
STEAD, CV ;
LOWE, CR .
JOURNAL OF CHROMATOGRAPHY, 1988, 455 :201-216
[5]   Biomimetic dyes as affinity chromatography tools in enzyme purification [J].
Clonis, YD ;
Labrou, NE ;
Kotsira, VP ;
Mazitsos, C ;
Melissis, S ;
Gogolas, G .
JOURNAL OF CHROMATOGRAPHY A, 2000, 891 (01) :33-44
[6]  
FERNANDEZ MR, 1995, FEBS LETT, V370, P23
[7]   CURRENT TRENDS IN MOLECULAR RECOGNITION AND BIOSEPARATION [J].
JONES, C ;
PATEL, A ;
GRIFFIN, S ;
MARTIN, J ;
YOUNG, P ;
ODONNELL, K ;
SILVERMAN, C ;
PORTER, T ;
CHAIKEN, I .
JOURNAL OF CHROMATOGRAPHY A, 1995, 707 (01) :3-22
[8]   IMPROVED METHODS FOR BUILDING PROTEIN MODELS IN ELECTRON-DENSITY MAPS AND THE LOCATION OF ERRORS IN THESE MODELS [J].
JONES, TA ;
ZOU, JY ;
COWAN, SW ;
KJELDGAARD, M .
ACTA CRYSTALLOGRAPHICA SECTION A, 1991, 47 :110-119
[9]   Databases in protein Crystallography [J].
Kleywegt, GJ ;
Jones, TA .
ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 1998, 54 :1119-1131
[10]   MOLSCRIPT - A PROGRAM TO PRODUCE BOTH DETAILED AND SCHEMATIC PLOTS OF PROTEIN STRUCTURES [J].
KRAULIS, PJ .
JOURNAL OF APPLIED CRYSTALLOGRAPHY, 1991, 24 :946-950