Abstract
We examined the effect of the type of cholic acid conjugation (taurine-conjugated, glycine-conjugated, or unconjugated cholic acid) on cholic acid 7 alpha-dehydroxylation by intestinal flora. Cholic acid 7 alpha-dehydroxylation in fecal cultures, in cultures of a defined limited flora consisting of a mixture of seven bacterial species isolated from the intestinal tract, and in a binary culture of a 7 alpha-dehydroxylating Clostridium species plus a cholic acid-deconjugating Bacteroides species was studied. We found that tauroconjugation of cholic acid significantly (P < 0.05) increased bacterial 7 alpha-dehydroxylation of cholic acid into deoxycholic acid from 34 to 55% in fecal cultures, from 45 to 60% in defined limited fecal cultures, and from 75 to 100% in binary cultures. Equimolar concentrations of free taurine did not stimulate 7 alpha-dehydroxylation in fecal cultures or in the defined limited flora, but free taurine did stimulate 7 alpha-dehydroxylation in the binary culture. In the binary culture of Clostridium species strain 9/1 plus Bacteroides species strain R1, the minimal flora capable of increased 7 alpha-dehydroxylation of taurocholic acid, strain R1 deconjugated taurine and rapidly reduced it to H2S. Bacteroides species strain R1 did not grow unless taurine or another appropriate reducible sulfur source was present. Clostridium species strain 9/1 did not grow or 7 alpha-dehydroxylate unless H2S or another source of reduced sulfur was present. We conclude that the increased 7 alpha-dehydroxylation of tauroconjugated cholic acid depends on the reduction of taurine to H2S, which is a necessary growth factor for the 7 alpha-dehydroxylating bacteria.
MeSH Terms
Bacteria/isolation & purification,metabolism
Bacteroides/drug effects,growth & development,metabolism
Bile Acids and Salts/chemistry,metabolism
Cholic Acid
Cholic Acids/chemistry,metabolism
Clostridium/drug effects,growth & development,metabolism
Feces/microbiology
Glycine/metabolism
Humans
Hydroxylation
In Vitro Techniques
Pantothenic Acid/pharmacology
Riboflavin/pharmacology
Taurine/metabolism,pharmacology
Chemicals
Bile Acids and Salts
Cholic Acids
Pantothenic Acid
Taurine
Cholic Acid
Glycine
Riboflavin
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Van Eldere J
Rega Institute for Medical Research and Biostatistical Centre, Department of Epidemiology, Catholic University of Leuven, Belgium. Johan.Vaneldere@rega.kuleuven.ac.be
Celis P
De Pauw G
Lesaffre E
Eyssen H
References (17)
17 references, click to expand
-
Biochemistry and physiology of taurine and taurine derivatives.
Physiol Rev. 1968 Apr;48(2):424-511
PMID: 4297098
-
Dietary glycine and taurine on bile acid conjugation in man; bile acids and steroids 75.
Proc Soc Exp Biol Med. 1959 Apr;100(4):676-8
PMID: 13645682
-
Physiological basis of alterations in the relative conjugation of bile acids with glycine and taurine.
Am J Clin Nutr. 1971 Feb;24(2):218-28
PMID: 5545849
-
The excretion of steroid hormone metabolites in bile and feces.
Vitam Horm. 1971;29:201-85
PMID: 5002593
-
Estimation of bile acid excretion in man: comparison of isotopic turnover and fecal excretion methods.
J Lipid Res. 1976 Jan;17(1):78-84
PMID: 768394
-
Effect of pH on bile salt degradation by mixed fecal cultures.
Steroids. 1978 Sep;32(2):245-56
PMID: 31016
-
Effect of diet and Lactobacillus acidophilus supplements on human fecal bacterial enzymes.
J Natl Cancer Inst. 1980 Feb;64(2):255-61
PMID: 6766508
-
In vitro transformation of chenodeoxycholic acid and ursodeoxycholic acid by human intestinal flora, with particular reference to the mutual conversion between the two bile acids.
J Lipid Res. 1981 Jul;22(5):735-43
PMID: 7288282
-
Epimerization versus dehydroxylation of the 7 alpha-hydroxyl- group of primary bile acids: competitive studies with Clostridium absonum and 7 alpha-dehydroxylating bacteria (Eubacterium sp.).
J Steroid Biochem. 1982 Sep;17(3):295-303
PMID: 6957693
-
Epimerization of the four 3,7-dihydroxy bile acid epimers by human fecal microorganisms in anaerobic mixed cultures and in feces.
J Lipid Res. 1984 Nov;25(11):1246-56
PMID: 6520544
-
Biosynthesis of a novel bile acid nucleotide and mechanism of 7 alpha-dehydroxylation by an intestinal Eubacterium species.
J Biol Chem. 1987 Apr 5;262(10):4701-7
PMID: 3558364
-
Steroid sulfatase activity in a Peptococcus niger strain from the human intestinal microflora.
Appl Environ Microbiol. 1987 Jul;53(7):1655-60
PMID: 3477998
-
Isolation and identification of intestinal steroid-desulfating bacteria from rats and humans.
Appl Environ Microbiol. 1988 Aug;54(8):2112-7
PMID: 3178214
-
Hepatic taurine concentration and dietary taurine as regulators of bile acid conjugation with taurine.
Gastroenterology. 1978 Jul;75(1):71-5
PMID: 401099
-
The bile acid-inducible baiB gene from Eubacterium sp. strain VPI 12708 encodes a bile acid-coenzyme A ligase.
J Bacteriol. 1992 Apr;174(7):2065-71
PMID: 1551828
-
Characterization of the baiH gene encoding a bile acid-inducible NADH:flavin oxidoreductase from Eubacterium sp. strain VPI 12708.
J Bacteriol. 1993 May;175(10):3002-12
PMID: 8491719
-
Bile acids. 28. Gas chromatography of new bile acids and their derivatives.
J Chromatogr. 1969 Nov 11;44(3):452-64
PMID: 5356710