DETERGENT SOLUBILIZATION OF MEMBRANE-BOUND METHANE MONOOXYGENASE REQUIRES PLASTOQUINOL ANALOGS AS ELECTRON-DONORS

被引:55
作者
SHIEMKE, AK
COOK, SA
MILEY, T
SINGLETON, P
机构
[1] Department of Biochemistry, Robert C. Byrd Health Sciences Center, West Virginia University School of Medicine, Morgantown, WV 26506-9142
关键词
METHANOTROPHS; METHANE OXIDATION; METALLOENZYMES; QUINOLS; DETERGENT SOLUBILIZATION;
D O I
10.1006/abbi.1995.1413
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
Quinols can provide reducing equivalents for the membrane-bound form of methane monooxygenase (pMMO), substituting for NADH in whole cells and membranes. Furthermore, quinols are effective reductants for the detergent-solubilized enzyme, whereas NADH is ineffective. The decyl analog of plastoquinol and duroquinol (2,3,5,6-tetramethylbenzoquinol) provide the greatest methane monooxygenase activity in whole cells and membrane suspensions, as well as detergent-solubilized samples. Lauryl maltoside is by far the best detergent for solubilization of catalytically active methane monooxygenase. Optimal pMMO activity in the detergent-solubilized fraction is obtained with a ratio of similar to 1.7 mg of detergent per milligram of membrane protein, independent of protein concentration. The detergent-solubilized pMMO retains its sensitivity to inhibition by cyanide, acetylene, and EDTA. It is also stimulated by exogenous copper, as in isolated membrane fractions. Reaction of the detergent-solubilized enzyme with [C-14]acetylene results in labeling of a 26-kDa peptide, analogous to the behavior observed for isolated membrane suspensions. The selectivity of pMMO for duroquinol and decyl-plastoquinol, relative to other structurally similar quinols, suggests that the enzyme obtains reducing equivalents directly from a quinol (probably plastoquinol) in vivo. (C) 1995 Academic Press Inc.
引用
收藏
页码:421 / 428
页数:8
相关论文
共 38 条
[1]  
AKENT'EVA N P, 1988, Biokhimiya, V53, P91
[2]   BACTERIAL OXIDATION OF METHANE AND METHANOL [J].
ANTHONY, C .
ADVANCES IN MICROBIAL PHYSIOLOGY, 1986, 27 :113-210
[3]  
Anthony C., 1982, BIOCH METHYLOTROPHS
[4]   DEGRADATION OF TRICHLOROETHYLENE BY THE AMMONIA-OXIDIZING BACTERIUM NITROSOMONAS-EUROPAEA [J].
ARCIERO, D ;
VANNELLI, T ;
LOGAN, M ;
HOOPER, AB .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1989, 159 (02) :640-643
[5]  
BURROWS KJ, 1984, J GEN MICROBIOL, V130, P3327
[6]   SOLUBLE METHANE MONO-OXYGENASE OF METHYLOCOCCUS-CAPSULATUS-(BATH) - ABILITY TO OXYGENATE NORMAL-ALKANES, NORMAL-ALKENES, ETHERS, AND ALICYCLIC, AROMATIC AND HETEROCYCLIC-COMPOUNDS [J].
COLBY, J ;
STIRLING, DI ;
DALTON, H .
BIOCHEMICAL JOURNAL, 1977, 165 (02) :395-402
[7]   ISOLATION AND STRUCTURAL DETERMINATION OF A NOVEL COENZYME FROM A METHANE-OXIDIZING BACTERIUM [J].
COLLINS, MD ;
HOWARTH, OW ;
GREEN, PN .
ARCHIVES OF MICROBIOLOGY, 1986, 146 (03) :263-266
[8]   SUCCINATE AS AN INVITRO ELECTRON-DONOR FOR THE PARTICULATE METHANE MONO-OXYGENASE OF METHYLOSINUS-TRICHOSPORIUM OB3B [J].
CORNISH, A ;
MACDONALD, J ;
BURROWS, KJ ;
KING, TS ;
SCOTT, D ;
HIGGINS, IJ .
BIOTECHNOLOGY LETTERS, 1985, 7 (05) :319-324
[9]  
Dawson R.M.C., 1986, DATA BIOCH RES
[10]  
DISPIRITO AA, 1992, BIODEGRADATION, V2, P151