Bioavailability and tissue distribution of anthocyanins in bilberry (Vaccinium myrtillus L.) extract in rats

被引:119
作者
Ichiyanagi, Takashi
Shida, Yasuo
Rahman, M. Mamunur
Hatano, Yoshihiko
Konishi, Tetsuya
机构
[1] Niigata Univ Pharm & Appl Life Sci, Fac Appl Life Sci, Niigata 9568603, Japan
[2] Tokyo Univ Pharm & Life Sci, Dept Engn, MS Lab, Hachioji, Tokyo 19203, Japan
关键词
anthocyanin; bilberry; bioavailability; absorption; tissue distribution; excretion; metabolism; delphinidin; cyanidin; petunidin; peonidin; malvidin; aglycone; sugar moiety;
D O I
10.1021/jf0602370
中图分类号
S [农业科学];
学科分类号
09 [农学];
摘要
To clarify how structural diversity of anthocyanins relates to their in vivo function, bioavailability was precisely studied in rats using bilberry ( Vaccinium myrtillus L.) extract (Bilberon 25) as an anthocyanin source that contains 15 different anthocyanins. The bilberry extract was orally or intravenously administered to rats, and the plasma levels of each anthocyanin were determined by high-performance liquid chromatography. As the result, all anthocyanins except peonidin 3-O-R-L-arabinoside were detectable in the blood plasma. The plasma concentration of anthocyanins as a whole reached the maximum level of 1.2 mu M at 15 min after oral administration of 400 mg/kg bilberry extract (153.2 mg/kg as anthocyanins) and then decreased with time. Uptake and decay profiles of each anthocyanin in the plasma were almost the same for all anthocyanins except a few with their maximum after 30 min. Among the anthocyanins carrying the same aglycone, the plasma level after 15 min of oral administration was as follows: galactoside > glucoside > arabinoside. Plasma clearance of anthocyanins after intravenous administration clearly showed that arabinoside disappeared more rapidly than glucoside and galactoside. On the other hand, when anthocyanins carrying the same sugar moiety were compared, the half disappearance time of plasma anthocyanins was in the following order: delphinidin > cyanidin > petunidin = peonidin > malvidin. The bioavailability of anthocyanins was in the range of 0.61-1.82% and was 0.93% as the anthocyanin mixture. The bioavailability of anthocyanins carrying the same aglycone was in the following order: Galactoside showed the highest followed by glucoside and arabinoside for cyanidin and delphinidin, but arabinoside and galactoside showed a higher bioavailability than glucoside for petunidin and malvidin. Anthocyanins recovered in urine and bile during the first 4 h after intravenous administration were only 30.8 and 13.4%, respectively. Anthocyanin profiles in tissues were quite different from those in blood plasma. The major anthocyanins distributed in liver and kidney were the O-methyl anthocyanins such as peonidin, malvidin, and other O-methyl anthocyanins derived from delphinidin, cyanidin, and petunidin-glycosides.
引用
收藏
页码:6578 / 6587
页数:10
相关论文
共 53 条
[1]
Anthocyanin- and hydrolyzable tannin-rich pomegranate fruit extract modulates MAPK and NF-κB pathways and inhibits skin tumorigenesis in CD-1 mice [J].
Afaq, F ;
Saleem, M ;
Krueger, CG ;
Reed, JD ;
Mukhtar, H .
INTERNATIONAL JOURNAL OF CANCER, 2005, 113 (03) :423-433
[2]
Uptake of quercetin and quercetin 3-glucoside from whole onion and apple peel extracts by Caco-2 cell monolayers [J].
Boyer, J ;
Brown, D ;
Liu, RH .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2004, 52 (23) :7172-7179
[3]
Brouillard R., 1982, Chemical structure of anthocyanins, V1, DOI DOI 10.1016/B978-0-12-472550-8.50005-6
[4]
Malvidin-3-glucoside bioavailability in humans after ingestion of red wine, dealcoholized red wine and red grape juice [J].
Bub, A ;
Watzl, B ;
Heeb, D ;
Rechkemmer, G ;
Briviba, K .
EUROPEAN JOURNAL OF NUTRITION, 2001, 40 (03) :113-120
[5]
Cao GH, 2001, AM J CLIN NUTR, V73, P920
[6]
The bioavailability of quercetin in pigs depends on the glycoside moiety and on dietary factors [J].
Cermak, R ;
Landgraf, S ;
Wolffram, S .
JOURNAL OF NUTRITION, 2003, 133 (09) :2802-2807
[7]
Felgines C, 2003, J NUTR, V133, P1296
[8]
Blackberry anthocyanins are slightly bioavailable in rats [J].
Felgines, C ;
Texier, O ;
Besson, C ;
Fraisse, D ;
Lamaison, JL ;
Rémésy, C .
JOURNAL OF NUTRITION, 2002, 132 (06) :1249-1253
[9]
Garcia-Viguera C, 1998, PHYTOCHEM ANALYSIS, V9, P274, DOI 10.1002/(SICI)1099-1565(199811/12)9:6&lt
[10]
274::AID-PCA416&gt