We will continue our studies of the biosynthesis, 3-dimensional structure, and chemical and election transfer mechanisms for p-cresol methylhydroxylase (PCMH) from Pseudomonas putida. The 2.5 A structure of this alpha2beta2 flavocytochrome is known, as is the 3.o A structure of the PCMH/p-cresol complex, and the structural genes for the flavoprotein and cytochrome subunits have been cloned and sequenced. The normal cytochrome subunit is expressed in E. coli, however, when the flavoprotein is expressed in this organism, in the absence of the cytochrome, FAD is noncovalently- bound, although the flavoprotein is active. When the cytochrome subunit is added to the flavoprotein, the FAD becomes covalently-bound, as in PCMH made by P. putida. We plan to study the covalent flavination in more detail, and take advantage of this phenomenon to reconstitute the flavoprotein with FAD analogues. This should provide important information concerning the function of this enzyme. Based on the crystal structure, we will create site-specifically-mutated forms of the flavoprotein and cytochrome subunits to further study the covalent flavination, the chemical mechanism, subunit interaction and electron transfer from FAD to heme. Experiments are planned to investigate the interaction of this enzyme with horse heart cytochrome c, and protein electron acceptor(s) from P. putida. X-ray crystallographic analysis of P. putida- and E. coli-expressed PCMH will continue. We will continue studies of the 3-dimensional structures of the enzyme various oxidation states, and int he presence of substrate analogues. Additionally, we will attempt to obtain the x-ray structures of the unassociated subunits. The NMR study of the solution structure of the cytochrome subunit will be continued.

Agency
National Institute of Health (NIH)
Institute
National Heart, Lung, and Blood Institute (NHLBI)
Type
Research Program Projects (P01)
Project #
5P01HL016251-25
Application #
6109399
Study Section
Project Start
1999-07-01
Project End
2002-06-30
Budget Start
1998-10-01
Budget End
1999-09-30
Support Year
25
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of California San Francisco
Department
Type
DUNS #
073133571
City
San Francisco
State
CA
Country
United States
Zip Code
94143
Cecchini, Gary; Schroder, Imke; Gunsalus, Robert P et al. (2002) Succinate dehydrogenase and fumarate reductase from Escherichia coli. Biochim Biophys Acta 1553:140-57
Tornroth, Susanna; Yankovskaya, Victoria; Cecchini, Gary et al. (2002) Purification, crystallisation and preliminary crystallographic studies of succinate:ubiquinone oxidoreductase from Escherichia coli. Biochim Biophys Acta 1553:171-6
Ackrell, Brian A C (2002) Cytopathies involving mitochondrial complex II. Mol Aspects Med 23:369-84
Leger, C; Heffron, K; Pershad, H R et al. (2001) Enzyme electrokinetics: energetics of succinate oxidation by fumarate reductase and succinate dehydrogenase. Biochemistry 40:11234-45
Sablin, S O; Ramsay, R R (2001) Substrates but not inhibitors alter the redox potentials of monoamine oxidases. Antioxid Redox Signal 3:723-9
Maklashina, E; Rothery, R A; Weiner, J H et al. (2001) Retention of heme in axial ligand mutants of succinate-ubiquinone xxidoreductase (complex II) from Escherichia coli. J Biol Chem 276:18968-76
Chiu, H J; Johnson, E; Schroder, I et al. (2001) Crystal structures of a novel ferric reductase from the hyperthermophilic archaeon Archaeoglobus fulgidus and its complex with NADP+. Structure 9:311-9
Efimov, I; Cronin, C N; McIntire, W S (2001) Effects of noncovalent and covalent FAD binding on the redox and catalytic properties of p-cresol methylhydroxylase. Biochemistry 40:2155-66
Luna-Chavez, C; Iverson, T M; Rees, D C et al. (2000) Overexpression, purification, and crystallization of the membrane-bound fumarate reductase from Escherichia coli. Protein Expr Purif 19:188-96
Cunane, L M; Chen, Z W; Shamala, N et al. (2000) Structures of the flavocytochrome p-cresol methylhydroxylase and its enzyme-substrate complex: gated substrate entry and proton relays support the proposed catalytic mechanism. J Mol Biol 295:357-74

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