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Pterins, substituted

The evidence for a pterin-substituted 1,2-enedithiolate was first reported by Raja-gopalan, Johnson, and coworkers, who isolated pterins from the oxidative decomposition of molybdenum-bound MPT, Figure 4 [7,49,55,56], In complementary work, Taylor and coworkers confirmed the structure of several of the pterin decomposition products by direct synthesis (see Section V. A) [30,57-59], Urothi-one, first isolated in 1940 from human urine [60], was shown to be a metabolic degradation product of MPT [37], Other isolated pterin-containing decomposition and/or derivatized products from molybdenum enzymes include Form A, Form B (a urothione-like product), and camMPT (Figure 4) [7], Two other pterins, Form Z and the MPT precursor, can be obtained from molybdenum deprived organisms, N. crassa Nit-1, and oxidase-deficient children, neither of which pro-... [Pg.88]

A major development in the definition of the constitution of Moco was the recognition that an oxidized, inactive, form of this cofactor has the fluorescence properties characteristic of a pterin. Further studies indicated that the fluorescent materia was derived from a novel, sulfur-containing reduced pterin substituted at the C-6 position.Subsequently, a metabolic relationship was established between Moco and urothione, since persons genetically deficient in Moco are unique in having no detectable urothione in their urine. This metabolic relationship, and the chemical reactions of the cofactor, formed the basis from which Johnson and Rajagopalan proposed a structure (Figure 17) for Moco. ... [Pg.3277]

Oxidative substitutions at ring junction positions in various tetrahydro-5-deaza-pterins (79JA6068) and -flavins (77JA6721) have been studied, e.g. to give (13), and the oxidation-reduction reactions of 5-deazaflavins (e.g. 78CL1177, 80CPB3514) across the 1,5-positions, e.g. (19) (20), are involved in their co-enzymic role in enzymic oxidations (see Section... [Pg.205]

Table 5 Physical Data for 8-Substituted Lumazines and Pterins... Table 5 Physical Data for 8-Substituted Lumazines and Pterins...
AT-Oxidation is very sensitive to steric effects, since 1-substituted lumazines and pterins give only 5-oxides and the presence of bulky substituents at position 7 also directs oxidation to N-5. The pteridine 5-oxide (52) and 8-oxide (53) and the 5,8-dioxide (55) contain the AT-oxide groups as such, even when the possibility of AT-hydroxy tautomers exists, as in (53) i(54). [Pg.281]

The high chemical stability of pterins towards aqueous base is due to anion formation suppressing nucleophilic attack at a ring carbon atom by electrostatic repulsion. Substitution... [Pg.308]

A new, versatile and selective synthesis of 6- and 7-substituted pteridines was reported by Rosowsky (73JOC2073). /3-Keto sulfoxides, which can be viewed as latent a keto aldehydes, react with (251) to give 6-substituted pterins, and the use of a-keto aldehyde hemithioacetals leads in a regiospecific synthesis to the isomeric 7-substituted pterins (equation 85). [Pg.312]

Pterin, 4-amino — see Folic acid, 4-amino-4-deoxy-Pterin, 6-amino-structure, 3, 276 Pterin, 7-amino-structure, 3, 276 Pterin, 6-arylthio-reactivity, 3, 299 Pterin, 6-(l-carboxyethoxy)-synthesis, 3, 309 Pterin, 6-carboxy-7-hydroxy-properties, 3, 277 Pterin, 7-carboxy-6-hydroxy-properties, 3, 277 Pterin, 6-chloro-nucleophilic substitution, 3, 292 synthesis, 3, 290... [Pg.755]

A new synthesis of pterins based on the acylation of 4-amino-5-nitrosopyrimidines with dienoic acid chlorides, followed by a high-yielding intramolecular hetero DA cycloaddition and cleavage of the N—O bond has been reported <06HCA1140>. Several new substituted pterins have been obtained in an efficient one-pot procedure using N,N dimethyldichloromethyleniminium chloride (phosgeniminium chloride) and a suitable pyrazine <06H933>. [Pg.427]

Errors of this magnitude make the useful prediction of free energies a difficult task, when differences of only one to three kcal/mol are involved. Nevertheless, within the error limits of the computed free energy differences, the trend is that relative to 8-methyl-N5-deazapterin or 8-methyl-pterin, the compounds methyl substituted in the 5, 6 or 7 positions are thermodynamically more stable when bound to DHFR largely by virtue of a hydrophobic effect, i.e. methyl substitution reduces the affinity of the ligand for the solvent more than it reduces affinity for the DHFR active-site. The stability of ligand binding to DHFR appears to be optimal with a 6-methyl substituent additional 5-methyl and/or 7-methyl substitution has little effect... [Pg.355]

Figure 4. Structures for cations (i.e. N3 protonated forms) of the 8-methyl substituted (a) N5-deazapterins and (b) pterins R5, R6 and R7 are either H or CH3. Figure 4. Structures for cations (i.e. N3 protonated forms) of the 8-methyl substituted (a) N5-deazapterins and (b) pterins R5, R6 and R7 are either H or CH3.
DNA cleavage by, 43 158-159 reactions, copper proteins, 39 25 Oxo-trichloroselenates(IV), 35 270-271 Oxo-type molybdenum enzyme, see Molybdenum enzymes, pterin-containing Oxovandium (IV), solvent exchange and ligand substitution, 42 47-49 Oxyanions, Groups VIB and VIIB, redox reactions, kinetics and mechanism, 40 269-274... [Pg.224]

A major recent growth point in substitution reactions has been the synthesis of pteridine glycosides, especially ribosides for study as probes in DNA chemistry taking advantage of the fluorescent properties of pteridines (see Section 10.18.12.4). Typically these reactions are developments of standard methods of glycosylation used with purines and pyrimidines as nucleophiles. In these and in other cases, the ambident nucleophiles within the pterin... [Pg.921]


See other pages where Pterins, substituted is mentioned: [Pg.1438]    [Pg.81]    [Pg.83]    [Pg.21]    [Pg.57]    [Pg.1438]    [Pg.81]    [Pg.83]    [Pg.21]    [Pg.57]    [Pg.273]    [Pg.277]    [Pg.277]    [Pg.279]    [Pg.285]    [Pg.285]    [Pg.290]    [Pg.295]    [Pg.301]    [Pg.304]    [Pg.305]    [Pg.307]    [Pg.308]    [Pg.309]    [Pg.311]    [Pg.318]    [Pg.318]    [Pg.309]    [Pg.344]    [Pg.344]    [Pg.346]    [Pg.356]    [Pg.358]    [Pg.359]    [Pg.363]    [Pg.917]    [Pg.921]    [Pg.924]    [Pg.927]   


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Pterin

Pterins

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