Resonance Raman spectroscopic studies of cellobiose dehydrogenase from Phanerochaete chrysosporium

被引:15
作者
Cohen, JD [1 ]
Bao, WJ [1 ]
Renganathan, V [1 ]
Subramaniam, SS [1 ]
Loehr, TM [1 ]
机构
[1] OREGON GRAD INST SCI & TECHNOL,DEPT CHEM BIOCHEM & MOL BIOL,PORTLAND,OR 97291
关键词
N-15 SUBSTITUTED DERIVATIVES; FLAVIN ADENINE-DINUCLEOTIDE; ELECTRON-TRANSFER; OXIDASE; SPECTRA; REDUCTASE; PROTEIN; OCTAETHYLPORPHYRINATO-NI(II); FLAVOCYTOCHROME-B2; OXIDOREDUCTASE;
D O I
10.1006/abbi.1997.9987
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
Cellobiose dehydrogenase (CDH), an extracellular hemoflavoenzyme produced by cellulose-degrading cultures of Phanerochaete chrysosporium, oxidizes cellobiose to cellobionolactone, The enzyme contains one 6-coordinate, low-spin b-type heme and one FAD cofactor per monomeric protein. In this work, resonance Raman (RR) spectra are reported for the oxidized, reduced, and deflavo forms of CDH as well as the individual flavin and heme domains of the enzyme obtained by peptide proteolysis. The RR spectra of the flavin and heme groups of CDH were assigned by comparison to the spectra of other hemoflavoenzymes and model compounds. Proteolytic cleavage of the CDH domains had only a minimal spectroscopic effect on the vibrational modes of the heme and FAD cofactors. Excitation of the oxidized CDH holoenzyme at 413 or 442 nm resulted in photoreduction of the heme, However, the same excitation wavelength used on the deflavo form of the enzyme or on the heme domain alone did not cause photoreduction, indicating that photoinitiated electron transfer requires the FAD cofactor. These observations suggest an enzymatic mechanism whereby reducing equivalents obtained from the oxidation of cellobiose are transferred from the FAD to the heme. A similar mechanism has been proposed for flavocytochrome be of Saccharomyces cerevisiae which oxidizes lactate to pyruvate (A. Desbois ct al., 1989, Biochemistry 28, 8011-8022). (C) 1997 Academic Press.
引用
收藏
页码:321 / 328
页数:8
相关论文
共 49 条
[1]   VIBRATIONAL ANALYSIS OF FLAVIN DERIVATIVES - NORMAL COORDINATE TREATMENTS OF LUMIFLAVIN [J].
ABE, M ;
KYOGOKU, Y .
SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 1987, 43 (08) :1027-1037
[2]   RESONANCE RAMAN-SPECTRA OF OCTAETHYLPORPHYRINATO-NI(II) AND MESO-DEUTERATED AND N-15 SUBSTITUTED DERIVATIVES .2. NORMAL COORDINATE ANALYSIS [J].
ABE, M ;
KITAGAWA, T ;
KYOGOKU, Y .
JOURNAL OF CHEMICAL PHYSICS, 1978, 69 (10) :4526-4534
[3]  
ANDERSSON LA, 1992, NEW J CHEM, V16, P569
[4]   CELLOBIOSE OXIDASE, PURIFICATION AND PARTIAL CHARACTERIZATION OF A HEMOPROTEIN FROM SPOROTRICHUM-PULVERULENTUM [J].
AYERS, AR ;
AYERS, SB ;
ERIKSSON, KE .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1978, 90 (01) :171-181
[5]  
BAO W, 1994, APPL MICROBIOL BIOT, V42, P642, DOI 10.1007/BF00173933
[6]  
BAO W, 1994, THESIS OREGON GRADUA
[7]   PURIFICATION AND CHARACTERIZATION OF CELLOBIOSE DEHYDROGENASE, A NOVEL EXTRACELLULAR HEMOFLAVOENZYME FROM THE WHITE-ROT FUNGUS PHANEROCHAETE CHRYSOSPORIUM [J].
BAO, WJ ;
USHA, SN ;
RENGANATHAN, V .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1993, 300 (02) :705-713
[8]   RESONANCE RAMAN STUDY OF FLAVINS AND THE FLAVOPROTEIN FATTY ACYL COENZYME-A DEHYDROGENASE [J].
BENECKY, M ;
LI, TY ;
SCHMIDT, J ;
FRERMAN, F ;
WATTERS, KL ;
MCFARLAND, J .
BIOCHEMISTRY, 1979, 18 (16) :3471-3476
[9]   NORMAL MODE ANALYSIS OF LUMIFLAVIN AND INTERPRETATION OF RESONANCE RAMAN-SPECTRA OF FLAVOPROTEINS [J].
BOWMAN, WD ;
SPIRO, TG .
BIOCHEMISTRY, 1981, 20 (11) :3313-3318
[10]   MNDO-MOCIC EVALUATION OF THE URACIL FORCE-FIELD - APPLICATION TO THE INTERPRETATION OF FLAVIN VIBRATIONAL-SPECTRA [J].
BOWMAN, WD ;
SPIRO, TG .
JOURNAL OF CHEMICAL PHYSICS, 1980, 73 (11) :5482-5492