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Prebiotic syntheses of vitamin coenzymes: II. Pantoic acid, pantothenic acid, and the composition of coenzyme A.

Pantoic acid can by synthesized in good prebiotic yield from isobutyraldehyde or alpha-ketoisovaleric acid + H2CO + HCN. Isobutyraldehyde is the Strecker precursor to valine and alpha-ketoisovaleric acid is the valine transamination product. Mg2+ and Ca2+ as well as several transition metals are catalysts for the alpha-ketoisovaleric acid reaction. Pantothenic acid is produced from pantoyl lactone (easily formed from pantoic acid) and the relatively high concentrations of beta-alanine that would be formed on drying prebiotic amino acid mixtures. There is no selectivity for this reaction over glycine, alanine, or gamma-amino butyric acid. The components of coenzyme A are discussed in terms of ease of prebiotic formation and stability and are shown to be plausible choices, but many other compounds are possible. The gamma-OH of pantoic acid needs to be capped to prevent decomposition of pantothenic acid. These results suggest that coenzyme A function was important in the earliest metabolic pathways and that the coenzyme A precursor contained most of the components of the present coenzyme.

4-Butyrolactone↗

Analysis of milk-based infant formula. Phase V. Vitamins A and E, folic acid, and pantothenic acid: Food and Drug Administration-Infant Formula Council: collaborative study.

In 1982, the U.S. Food and Drug Administration, the Infant Formula Council and its member companies, contract laboratories, and other government laboratories began a study of analytical methods for the nutrients listed in the Infant Formula Act of 1980 (P.L. 96-359). Four phases of the study have been completed and are discussed in earlier reports. The present report provides data on Phase V, in which 13 laboratories collaboratively studied individual methods for folic acid, pantothenic acid, and vitamin E, in addition to 2 methods for vitamin A. Vitamins A and E are determined by liquid chromatography. Folic acid and pantothenic acid are determined by microbiological methods using acidimetric and/or turbidimetric assays as the determinative step. In most cases, relative standard deviations for repeatability, RSDr, and reproducibility, RSDR, are as good as those that would be predicted from other collaborative studies. RSDr and RSDR values obtained for the 5 methods are 9.35 and 25.44% for folic acid, 4.59 and 10.23% for pantothenic acid, 8.46 and 11.69% for vitamin E, 3.62 and 9.72% for vitamin A (retinol isomers), and 4.9 and 10.5% for vitamin A (retinol). The 5 methods have been adopted first action by AOAC International.

Animals↗

[Pantothenic acid].

Pantothenic acid is the antipellagra vitamin essential to many animals for growth and health. It is widely distributed in nature; appreciable amounts are found in liver and some microorganisms. Bound forms of pantothenic acid, such as coenzyme A and 4'-phosphopantetheine, play important roles in various metabolic processes, especially, in fatty acid synthesis and degradation.

Animals↗

Pantothenase-based assay of pantothenic acid.

Pantothenic acid from various sources can be measured in concentrations from about 10 microM to 20 mM by using a specific enzyme, pantothenase. The method is based on the transfer of [14C]beta-alanine to the pantothenate via an acyl-enzyme intermediate (a beta-alanine-exchange reaction): (formula; see text) Although the reaction is inhibited by some compounds, the method can be used for the assay of pantothenate in many biological samples if an internal pantothenate standard is used.

Amidohydrolases↗

Effects of biotin, folic acid, and pantothenic acid on the growth of Mycoplasma meleagridis, a turkey pathogen.

The biotin, folic acid, and pantothenic acid requirements of Mycoplasma meleagridis were determined in vitro by examining the growth and survival of the organism in the presence of varying concentrations of these factors. Growth and survival were also studied in the presence of aminopterin and methotrexate which prevent utilization of folic acid, and in the presence of avidin, a known biotin antagonist. Whereas pantothenate appeared to have no obvious effect on growth or survival, folate was marginally stimulatory at only the highest concentration tested. Aminopterin exerted a slight, but not significant, inhibitory effect at four of the five concentrations tested. In contrast, the inhibition seen with methotrexate increased, dependent on dose. Biotin exerted a pronounced stimulatory effect at the two highest concentrations tested. Avidin inhibited growth only at one of the concentrations tested; however, this concentration did not correspond to the greatest amount of avidin. The possible significance of the avidin-biotin relationship to the etiology of Turkey Syndrome 1965 is explored on the basis of these in vitro observations and previous in vivo findings.

Aminopterin↗