Unique oligomeric intermediates of bovine liver catalase

被引:64
作者
Prakash, K
Prajapati, S
Ahmad, A
Jain, SK
Bhakuni, V [1 ]
机构
[1] Cent Drug Res Inst, Mol & Struct Biol Div, Lucknow 226001, Uttar Pradesh, India
[2] Hamdard Univ, Ctr Biotechnol, New Delhi, India
关键词
bovine liver catalase; multimeric enzyme; association states; denaturants; expanded tetramer; active dimers;
D O I
10.1110/ps.ps.20102
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
Catalases. although synthesized from single genes and built up from only one type of subunit, exist in heterogeneous form with respect to their conformations and association states in biological systems. This heterogeneity is not of genetic origin, but rather reflects the instability of this oligomeric heme enzyme. To understand better the factors that stabilize the various association states of catalase. we performed studies on the multimeric intermediates that are stabilized during guanidine-hydrochloride- and urea-induced unfolding of bovine liver catalase (BLC). For the first time, we have observed an enzymatically active, folded dimer of native BLC. This dimer has slightly higher enzymatic activity and altered structural properties compared to the native tetramer. Comparative studies of the effect of NaCl, GdmCl, and urea on BLC show that cation binding to negatively charged groups present in amino acid side chains of the enzyme leads to stabilization of an enzymatically active, folded dimer of BLC. Besides the folded dimer, an enzymatically active expanded tetramer and a partially unfolded, enzymatically inactive dimer of BLC were also observed. A complete recovery of native enzyme was observed on refolding of expanded tetramers and folded dimers, however, a very low recovery (maximum of similar to5%) of native enzyme was observed on refolding of partially unfolded dimers and fully unfolded monomers.
引用
收藏
页码:46 / 57
页数:12
相关论文
共 46 条
[11]   PROSTHETIC GROUP CONTENT AND LIGAND-BINDING PROPERTIES OF A SPINACH CATALASE [J].
HIRASAWA, M ;
GRAY, KA ;
ONDRIAS, MR ;
LARSEN, RW ;
SHAW, RW ;
MORROW, KJ ;
KNAFF, DB .
BIOCHIMICA ET BIOPHYSICA ACTA, 1989, 994 (03) :229-234
[12]  
HOLMES RS, 1975, ISOZYMES, V1, P191
[13]  
Jaenicke R, 2000, ADV PROTEIN CHEM, V53, P329
[14]   FOLDING AND ASSOCIATION OF PROTEINS [J].
JAENICKE, R .
PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 1987, 49 (2-3) :117-237
[15]   NATURE AND CHARACTERISTICS OF MULTIPLE FORMS OF CATALASE IN MOUSE-LIVER [J].
JONES, GL ;
MASTERS, CJ .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1975, 169 (01) :7-21
[16]   DISSOCIATION OF BOVINE AND BACTERIAL CATALASES BY SODIUM NORMAL-DODECYL SULFATE [J].
JONES, MN ;
MANLEY, P ;
MIDGLEY, PJW ;
WILKINSON, AE .
BIOPOLYMERS, 1982, 21 (07) :1435-1450
[17]   THE EFFECTS OF INTERHELICAL ELECTROSTATIC REPULSIONS BETWEEN GLUTAMIC-ACID RESIDUES IN CONTROLLING THE DIMERIZATION AND STABILITY OF 2-STRANDED ALPHA-HELICAL COILED-COILS [J].
KOHN, WD ;
MONERA, OD ;
KAY, CM ;
HODGES, RS .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (43) :25495-25506
[18]  
KOHN WD, 1995, PROTEIN SCI, V4, P237
[19]   CONFORMER NATURE OF MULTIPLE FORMS OF BEEF-LIVER CATALASE AS OBTAINED BY BIOCHEMICAL AND SMALL-ANGLE X-RAY-SCATTERING EXPERIMENTS - MODEL FOR QUATERNARY STRUCTURE OF BEEF-LIVER CATALASE MOLECULE [J].
KUNTZ, G ;
STOCKEL, P ;
HEIDRICH, HG .
HOPPE-SEYLERS ZEITSCHRIFT FUR PHYSIOLOGISCHE CHEMIE, 1978, 359 (08) :959-973
[20]  
LOWRY OH, 1951, J BIOL CHEM, V193, P265