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Flavin isoalloxazine ring

Oxidation of P-nicotinamide adenine dinucleotide (NADH) to NAD+ has attracted much interest from the viewpoint of its role in biosensors reactions. It has been reported that several quinone derivatives and polymerized redox dyes, such as phenoxazine and phenothiazine derivatives, possess catalytic activities for the oxidation of NADH and have been used for dehydrogenase biosensors development [1, 2]. Flavins (contain in chemical structure isoalloxazine ring) are the prosthetic groups responsible for NAD+/NADH conversion in the active sites of some dehydrogenase enzymes. Upon the electropolymerization of flavin derivatives, the effective catalysts of NAD+/NADH regeneration, which mimic the NADH-dehydrogenase activity, would be synthesized [3]. [Pg.363]

Flavin redox states in a dual flavin enzyme. (Left) Single-electron reduction of the isoalloxazine ring generates the semiquinone radical, while reduction by two electrons generates the fully reduced species. (Right) Five possible oxidation levels of a dual flavin enzyme, where the FMN reduction potential is held at a more positive value relative U) FAD. The flavins can theoretically accept a maximum of four electrons obtained from two NADPH. However, in NADPH-cytochrome P450, reductase, full reduction of the flavins is not normally reached when NADPH serves as the reductant. [Pg.159]

Riboflavin (vitamin B2 6.18) consists of an isoalloxazine ring linked to an alcohol derived from ribose. The ribose side chain of riboflavin can be modified by the formation of a phosphoester (forming flavin mononucleotide, FMN, 6.19). FMN can be joined to adenine monophosphate to form flavin adenine dinucleotide (FAD, 6.20). FMN and FAD act as co-enzymes by accepting or donating two hydrogen atoms and thus are involved in redox reactions. Flavoprotein enzymes are involved in many metabolic pathways. Riboflavin is a yellow-green fluorescent compound and, in addition to its role as a vitamin, it is responsible for the colour of milk serum (Chapter 11). [Pg.196]

Since flavin semiquinones are tricyclic heteronuclear aromatic systems, the spin density due to the unpaired electron can be distributed at a number of sites on the isoalloxazine ring. Knowledge of the location and the extent of spin density at these locations on the ring system is important for the determination of sites that may participate... [Pg.113]

The results of these studies show that little or no spin density occurs in the pyrimidine ring, but rather the unpaired spin distribution is concentrated in the pyrazine and benzenoid portions of the isoalloxazine ring (Table 2). The site of highest spin density is the N(5) position with substantial densities also occuring at C(8) and at N(10). From ESR studies of 4a enriched flavins. Walker et al. [Pg.115]

No major differences in rate were observed with the ionic form (anion or neutral) of the flavin semiquinone. Comparison of the rates of reduction by a number of flavin analogs suggests that cytochrome interaction occurs through the N(5)-dimethylbenzene region of the isoalloxazine ring. [Pg.132]

Finally, the precise sites on the isoalloxazine ring which participate in semiquinone oxidation reactions in flavoenzymes will depend on whether the protein-bound semiquinone exhibits the same distribution of spin density as in the free system or in fact differs. Current ENDOR data suggests that the spin density in the 8-position of protein-bound flavin semiquinones is similar to that of the free systems. Further work is required to monitor spin distribution in the N(5) and... [Pg.133]

The molecule consists of a d-ribitol unit attached to an isoalloxazine ring (Figure 9-15). Anything more than a minor change in the molecule results in a loss of vitamin activity. Aqueous solutions of riboflavin are yellow with a yellowish-green fluorescence. The vitamin is a constituent of two coenzymes, flavin mononucleotide (FMN) and flavin adenine dinucleotide (FAD). FMN is... [Pg.267]

Figure 16-8. Structure and labeling of the isoalloxazine ring and related flavins. Isoalloxazine (benzo[g]pteridine-2,4(3H,10H)-dione) R = R = H. FMN (Flavin mononucleotide) R = CH3 R = CH2- (CH0H)3-CH20-P0f-... Figure 16-8. Structure and labeling of the isoalloxazine ring and related flavins. Isoalloxazine (benzo[g]pteridine-2,4(3H,10H)-dione) R = R = H. FMN (Flavin mononucleotide) R = CH3 R = CH2- (CH0H)3-CH20-P0f-...
The isoalloxazine ring system in its various oxidation states and the reaction of FADH2 with GSSG are shown in equation 20 (the semiquin one structure of flavins is... [Pg.1291]

As shown in Figure 7.1, riboflavin consists of a tricyclic dimethyl-isoalloxazine ring conjugated to the sugar alcohol ribitol. The metabolically active coenzymes are riboflavin 5 -phosphate and flavin adenine dinucleotide (FAD). In some enzymes the prosthetic group is riboflavin, bound covalently at the catalytic site. [Pg.172]

The ribityl moiety is not linked to the isoalloxazine ring by a glycosidic linkage, and it is not strictly correct to caU FAD a dinucleotide. Nevertheless, this trivial name is accepted, as indeed is the even less correct term flavin mononucleotide for riboflavin phosphate. [Pg.174]


See other pages where Flavin isoalloxazine ring is mentioned: [Pg.123]    [Pg.52]    [Pg.52]    [Pg.149]    [Pg.153]    [Pg.166]    [Pg.301]    [Pg.916]    [Pg.1356]    [Pg.42]    [Pg.42]    [Pg.1378]    [Pg.2661]    [Pg.2662]    [Pg.123]    [Pg.52]    [Pg.52]    [Pg.149]    [Pg.153]    [Pg.166]    [Pg.301]    [Pg.916]    [Pg.1356]    [Pg.42]    [Pg.42]    [Pg.1378]    [Pg.2661]    [Pg.2662]    [Pg.591]    [Pg.47]    [Pg.64]    [Pg.77]    [Pg.278]    [Pg.24]    [Pg.24]    [Pg.27]    [Pg.259]    [Pg.104]    [Pg.266]    [Pg.75]    [Pg.119]    [Pg.124]    [Pg.515]    [Pg.252]    [Pg.790]    [Pg.31]    [Pg.82]    [Pg.82]    [Pg.124]    [Pg.451]    [Pg.454]    [Pg.282]    [Pg.284]   
See also in sourсe #XX -- [ Pg.790 ]

See also in sourсe #XX -- [ Pg.790 ]

See also in sourсe #XX -- [ Pg.790 ]

See also in sourсe #XX -- [ Pg.790 ]




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Flavins

Isoalloxazine ring

Isoalloxazines

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