Owen R W
J Med Microbiol. 1985 Oct;20(2):233-8. doi: 10.1099/00222615-20-2-233.
The metabolism of bile acids by nuclear dehydrogenating clostridia (NDC) was studied. NDC were able to desaturate the A-ring of 5 beta-cholan-3-oxo-24-oic acid, 12 alpha-hydroxy-5 beta-cholan-3-oxo-24-oic acid, 7 alpha-hydroxy-5 beta-cholan-3-oxo-24-oic acid, 6 alpha-hydroxy-5 beta-cholan-3-oxo-24-oic acid, 7 alpha, 12 alpha-dihydroxy-5 beta-cholan-3-oxo-24-oic acid, 3,12-dioxo-5 beta-cholan-24-oic acid but not 3,6-dioxo-5 beta-cholan-24-oic acid, 3,7-dioxo-5 beta-cholan-24-oic acid and 3,7,12-trioxo-5 beta-cholan-24-oic acid. In each case the sole product possessed a 4-ene-3-one structure. Desaturation of bile acids was more efficient than that of androstanes. NDC are, therefore, capable of introducing double bonds into the nucleus of bile acids as well as that of androstanes. The physiological significance of such reactions in relation to large bowel cancer has yet to be elucidated.
研究了核脱氢梭菌(NDC)对胆汁酸的代谢。NDC能够使5β-胆烷-3-氧代-24-酸、12α-羟基-5β-胆烷-3-氧代-24-酸、7α-羟基-5β-胆烷-3-氧代-24-酸、6α-羟基-5β-胆烷-3-氧代-24-酸、7α,12α-二羟基-5β-胆烷-3-氧代-24-酸、3,12-二氧代-5β-胆烷-24-酸的A环脱氢,但不能使3,6-二氧代-5β-胆烷-24-酸、3,7-二氧代-5β-胆烷-24-酸和3,7,12-三氧代-5β-胆烷-24-酸脱氢。在每种情况下,唯一的产物都具有4-烯-3-酮结构。胆汁酸的脱氢效率高于雄甾烷。因此,NDC能够将双键引入胆汁酸以及雄甾烷的核中。此类反应与大肠癌相关的生理意义尚待阐明。