Expression, purification, and characterization of the CuA-cytochrome c domain from subunit II of the Bacillus subtilis cytochrome caa3 complex in Escherichia coli

被引:7
作者
Andrews, D [1 ]
Mattatall, NR [1 ]
Arnold, D [1 ]
Hill, BC [1 ]
机构
[1] Queens Univ, Dept Biochem, Kingston, ON K7L 3N6, Canada
基金
加拿大健康研究院;
关键词
cytochrome c; Cu-A; electron transfer; protein domains;
D O I
10.1016/j.pep.2004.11.009
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Cytochrome caa(3) from Bacillus subtilis is a member of the heme-copper oxidase family of integral membrane enzymes that includes mitochondrial cytochrome c oxidase. Subunit 11 of cytochrome caa3 has an extra 100 amino acids at its C-terminus, relative to its mitochondrial counterpart, and this extension encodes a heme C binding domain. Cytochrome caa3 has many of the properties of the complex formed between mitochondrial cytochrome c and mitochondrial cytochrome c oxidase. To examine more closely the interaction between cytochrome c and the oxidase we have cloned and expressed the Cu-A-cytochrome c portion of subunit 11 from the cytochrome caa3 complex of B. subtilis. We are able to express about 2000 nmol, equivalent to 65 mg, of the Cu-A-cytochrome c protein per litre of Escherichia coli culture. About 500 nmol is correctly targeted to the periplasmic space and we purify 50% of that by a combination of affinity chromatography and ammonium sulfate fractionation. The cytochrome c containing sub-domain is well-folded with a stable environment around the heme C center, as its mid-point potential and rates of reduction are indistinguishable from values for the cytochrome c domain of the holo-enzyme. However, the Cu-A site lacks copper leading to an inherent instability in this sub-domain. Expression of B. subtilis cytochrome c, as exemplified by the Cu-A-cytochrome c protein, can be achieved in E. coli, and we conclude that the cytochrome c and Cu-A sub-domains behave independently despite their close physical and functional association. (c) 2004 Elsevier Inc. All rights reserved.
引用
收藏
页码:227 / 235
页数:9
相关论文
共 28 条
[1]  
ADMAN ET, 1991, ADV PROTEIN CHEM, V42, P145
[2]   Overproduction of the Bradyrhizobium japonicum c-type cytochrome subunits of the cbb3 oxidase in Escherichia coli [J].
Arslan, E ;
Schulz, H ;
Zufferey, R ;
Künzler, P ;
Thöny-Meyer, L .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1998, 251 (03) :744-747
[3]   Electron transfer kinetics during the reduction and turnover of the cytochrome caa3 complex from Bacillus subtilis [J].
Assempour, M ;
Lim, D ;
Hill, BC .
BIOCHEMISTRY, 1998, 37 (28) :9991-9998
[4]   Copper A of cytochrome c oxidase, a novel, long-embattled, biological electron-transfer site [J].
Beinert, H .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1997, 245 (03) :521-532
[5]   QUANTITATIVE-ANALYSIS OF PROTEIN FAR UV CIRCULAR-DICHROISM SPECTRA BY NEURAL NETWORKS [J].
BOHM, G ;
MUHR, R ;
JAENICKE, R .
PROTEIN ENGINEERING, 1992, 5 (03) :191-195
[6]  
BREMS DN, 1983, J BIOL CHEM, V258, P3655
[7]   Redox-driven proton pumping by heme-copper oxidases [J].
Brzezinski, P ;
Larsson, G .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2003, 1605 (1-3) :1-13
[8]  
CAMMACK R, 1996, BIOENERGETICS PRACTI, P98
[9]   THE STEADY-STATE KINETICS OF CYTOCHROME-C OXIDATION BY CYTOCHROME-OXIDASE [J].
COOPER, CE .
BIOCHIMICA ET BIOPHYSICA ACTA, 1990, 1017 (03) :187-203
[10]  
Dutton P L, 1978, Methods Enzymol, V54, P411