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Citations to this article

Formation and Excretion of Pyrrole-2-Carboxylate in Man
Anne M. Heacock, Elijah Adams
Anne M. Heacock, Elijah Adams
Published October 1, 1974
Citation Information: J Clin Invest. 1974;54(4):810-818. https://doi.org/10.1172/JCI107821.
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Research Article

Formation and Excretion of Pyrrole-2-Carboxylate in Man

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Abstract

A detailed investigation of the purification of pyrrole-2-carboxylate (PCA) from human and rat urine indicates that previously reported mean values overestimate the correct quantity of free PCA by a factor of approximately three for rat urine and approximately five for human urine. Although several criteria of purity were satisfied by a previous method, pyrrole-reactive impurities were still present in the final fractions. These impurities are separated from PCA by chromatography through an amino acid analyzer ion-exchange resin. With the corrected method, normal human values for endogenous urinary PCA in 16 individuals averaged 0.51 μmol/day, with a range of 0.20-1.3 μmol and a SD of 0.31 μmol. The probable source of human PCA is free hydroxy-L-proline, as inferred from the high value for PCA in the urine of a subject with hereditary hydroxyprolinemia, and from the threeto eightfold elevation in PCA excretion by two normal subjects after a large oral load of hydroxyl-L-proline. Subcutaneous administration of [2-14C]PCA to a single human subject indicated almost complete conversion of the exogenous compound to derivatives, which are largely excreted in the urine. Data are discussed suggesting that much or all of the PCA in human urine may be formed in urine from a labile precursor, presumably Δ1-pyrroline-4-hydroxy-2-carboxylate.

Authors

Anne M. Heacock, Elijah Adams

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Total citations by year

Year: 2015 2011 2009 2004 1986 1979 1977 1975 Total
Citations: 1 1 1 1 1 1 1 1 8
Citation information
This citation data is accumulated from CrossRef, which receives citation information from participating publishers, including this journal. Not all publishers participate in CrossRef, so this information is not comprehensive. Additionally, data may not reflect the most current citations to this article, and the data may differ from citation information available from other sources (for example, Google Scholar, Web of Science, and Scopus).

Citations to this article (8)

Title and authors Publication Year
The experimental and theoretical study on the influence of alkali metals on the electronic charge distribution in five-membered aromatic acids (2-thiophenecarboxylic, 2-furanecarboxylic and 2-pyrrolecarboxylic acids)
G Świderski, M Kalinowska, S Wojtulewski, W Lewandowski
Polyhedron 2015
LC–MS metabolomics top-down approach reveals new exposure and effect biomarkers of apple and apple-pectin intake
M Kristensen, SB Engelsen, LO Dragsted
Metabolomics 2011
N-(pyrrole-2-carboxyl) glycine a diagnostic marker of hyperprolinaemia type II: Mass spectra of trimethylsilyl derivatives
V Walker, GA Mills
Clinica Chimica Acta 2009
Oxidation of 3,4-dehydro-d-proline and other d-amino acid analogues by d-alanine dehydrogenase fromEscherichia coli
CE Deutch
FEMS Microbiology Letters 2004
Rapid method for the analysis of urinary pyrrole-2-carboxylic acid using reversed-phase high-performance liquid chromatography
JH Dreisbach, A Veca
Journal of Chromatography B: Biomedical Sciences and Applications 1986
Hydroxyproline Metabolism in Type II Hyperprolinaemia
S Similä
Annals of Clinical Biochemistry 1979
Hyperprolinemia type II: identification of the glycine conjugate of pyrrole-2-carboxylic acid in urine
D Applegarth, S Goodman, D Irvine, E Jellum
Clinical Biochemistry 1977
Formation and excretion of pyrrole-2-carboxylic acid. Whole animal and enzyme studies in the rat
AM Heacock, E Adams
The Journal of biological chemistry 1975

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