The intraflavin hydrogen bond in human electron transfer flavoprotein modulates redox potentials and may participate in electron transfer

被引:25
作者
Dwyer, TM
Mortl, S
Kemter, K
Bacher, A
Fauq, A
Frerman, FE [1 ]
机构
[1] Univ Colorado, Sch Med, Dept Pediat, Denver, CO 80262 USA
[2] Univ Colorado, Sch Med, Program Cell & Dev Biol, Denver, CO 80262 USA
[3] Mayo Clin, Jacksonville, FL 32224 USA
[4] Tech Univ Munich, Lehrstuhl Organ Chem & Biochem, D-8000 Munich, Germany
关键词
D O I
10.1021/bi9903906
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
Electron-transfer flavoprotein (ETF) serves as an intermediate electron carrier between primary flavoprotein dehydrogenases and terminal respiratory chains in mitochondria and prokaryotic cells. The three-dimensional structures of human and Paracoccus denitrificans ETFs determined by X-ray crystallography indicate that the 4'-hydroxyl of the ribityl side chain of FAD is hydrogen bonded to N(1) of the flavin ring. We have substituted 4'-deoxy-FAD for the native FAD and investigated the analog-containing ETF to determine the role of this rare intra-cofactor hydrogen bond. The binding constants for 4'-deoxy-FAD and FAD with the apoprotein are very similar, and the energy of binding differs by only 2 kJ/mol. The overall two-electron oxidation-reduction potential of 4'-deoxy-FAD in solution is identical to that of FAD. However, the potential of the oxidized/semiquinone couple of the ETF containing 4'-deoxy-FAD is 0.116 V less than the oxidized/semiquinone couple of the native protein. These data suggest that the 4'-hydoxyl-N(1) hydrogen bond stabilizes the anionic semiquinone in which negative charge is delocalized over the N(1)-C(2)O region. Transfer of the second electron to 4'-deoxy-FAD reconstituted ETF is extremely slow, and it was very difficult to achieve complete reduction of the flavin semiquinone to the hydroquinone. The turnover of medium chain acyl-CoA dehydrogenase with native ETF and ETF containing the 4'-deoxy analogue was essentially identical when the reduced ETF was recycled by reduction of 2,6-dichlorophenolindophenol. However, the steady-state turnover of the dehydrogenase with 4'-deoxy-FAD was only 23% of the turnover with native ETF when ETF semiquinone formation was assayed directly under anaerobic conditions. This is consistent with the decreased potential of the oxidized semiquinone couple of the analog-containing ETF. ETF containing 4'-deoxy-FAD neither donates to nor accepts electrons from electron-transfer flavoprotein ubiquinone oxidoreductase (ETF-QO) at significant rates (less than or equal to 0.5% the wild-type rates). These results indicate that the 4'-hydroxyl-N(1) hydrogen bond plays a major role in the stabilization of the anionic semiquinone and anionic hydroquinone oxidation states of ETF and that this hydrogen bond may provide a pathway for electron transfer between the ETF flavin and the flavin of ETF-QO.
引用
收藏
页码:9735 / 9745
页数:11
相关论文
共 68 条
[1]  
[Anonymous], 1982, FLAVINS FLAVOPROTEIN
[2]  
Barton D.H.R., 1975, J CHEM SOC P1, V1, P1574
[3]   CHARACTERIZATION OF A MUTATION THAT ABOLISHES QUINONE REDUCTION BY ELECTRON-TRANSFER FLAVOPROTEIN-UBIQUINONE OXIDOREDUCTASE [J].
BEARD, SE ;
GOODMAN, SI ;
BEMELEN, K ;
FRERMAN, FE .
HUMAN MOLECULAR GENETICS, 1995, 4 (02) :157-161
[4]  
BECKMANN J, 1985, BIOCHEMISTRY-US, V24, P3912
[5]  
BECKMANN JD, 1983, J BIOL CHEM, V258, P7563
[6]  
BERTAN DN, 1996, PROTEIN ELECT TRANSF, P23
[7]   OPTICAL-ACTIVITY OF HEMOPROTEINS IN THE SORET REGION - CIRCULAR-DICHROISM OF THE HEME UNDECAPEPTIDE OF CYTOCHROME-C IN AQUEOUS-SOLUTION [J].
BLAUER, G ;
SREERAMA, N ;
WOODY, RW .
BIOCHEMISTRY, 1993, 32 (26) :6674-6679
[8]   MODEL SYSTEMS FOR FLAVOENZYME ACTIVITY - STABILIZATION OF THE FLAVIN RADICAL-ANION THROUGH SPECIFIC HYDROGEN-BOND INTERACTIONS [J].
BREINLINGER, E ;
NIEMZ, A ;
ROTELLO, VM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1995, 117 (19) :5379-5380
[9]   UNUSUAL REDOX PROPERTIES OF ELECTRON-TRANSFER FLAVOPROTEIN FROM METHYLOPHILUS-METHYLOTROPHUS [J].
BYRON, CM ;
STANKOVICH, MT ;
HUSAIN, M ;
DAVIDSON, VL .
BIOCHEMISTRY, 1989, 28 (21) :8582-8587
[10]  
Clark W.M., 1960, OXIDATION REDUCTION, P184