Flavonoid transport across RBE4 cells: A blood-brain barrier model

被引:0
作者
Ana Faria
Diogo Pestana
Diana Teixeira
Joana Azevedo
Victor De Freitas
Nuno Mateus
Conceição Calhau
机构
[1] Faculty of Medicine of the University of Porto,Department of Biochemistry (U38
[2] University of Porto,FCT)
来源
Cellular & Molecular Biology Letters | 2010年 / 15卷
关键词
Anthocyanin; Blood-brain barrier; Flavonol; 3-flavanol; RBE4; Transport;
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学科分类号
摘要
There is a growing interest in dietary therapeutic strategies to combat oxidative stress-induced damage to the Central Nervous System (CNS), which is associated with a number of pathophysiological processes, including Alzheimer’s and Parkinson’s diseases and cerebrovascular diseases. Identifying the mechanisms associated with phenolic neuroprotection has been delayed by the lack of information concerning the ability of these compounds to enter the CNS. The aim of this study was to evaluate the transmembrane transport of flavonoids across RBE-4 cells (an immortalized cell line of rat cerebral capillary endothelial cells) and the effect of ethanol on this transport. The detection and quantification of all of the phenolic compounds in the studied samples (basolateral media) was performed using a HPLC-DAD (Diode Array Detector). All of the tested flavonoids (catechin, quercetin and cyanidin-3-glucoside) passed across the RBE-4 cells in a time-dependent manner. This transport was not influenced by the presence of 0.1% ethanol. In conclusion, the tested flavonoids were capable of crossing this blood-brain barrier model.
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页码:234 / 241
页数:7
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  • [1] Hollman P.C.(1999)Dietary flavonoids: intake, health effects and bioavailability Food Chem. Toxicol. 37 937-942
  • [2] Katan M.B.(2000)Overview of the health benefits of fruit and vegetable consumption for the dietetics professional: selected literature J. Am. Diet. Assoc. 100 1511-1521
  • [3] Van Duyn M.A.(1995)Structure-activity relationship of flavonoids with superoxide scavenging activity Biol. Trace Elem. Res. 47 327-331
  • [4] Pivonka E.(1996)Structure-antioxidant activity relationships of flavonoids and phenolic acids Free Radic. Biol. Med. 20 933-956
  • [5] Hu J.P.(2008)Role of nitric oxide synthases in Parkinson’s disease: a review on the antioxidant and anti-inflammatory activity of polyphenols Neurochem. Res. 33 2416-2426
  • [6] Calomme M.(2008)Challenges for research on polyphenols from foods in Alzheimer’s disease: bioavailability, metabolism, and cellular and molecular mechanisms J. Agric. Food Chem. 56 4855-4873
  • [7] Lasure A.(1993)Intake of potentially anticarcinogenic flavonoids and their determinants in adults in The Netherlands Nutr. Cancer 20 21-29
  • [8] De Bruyne T.(1992)Content of potentially anticarcinogenic flavonoids of 28 vegetables and 9 fruits commonly consumed in The Netherlands J. Agric. Food Chem. 40 2379-2383
  • [9] Pieters L.(1995)Analysis of plasma and urinary tea polyphenols in human subjects Cancer Epidemiol. Biomarkers Prev. 4 393-399
  • [10] Vlietinck A.(1997)Black tea constituents, theaflavins, inhibit 4-(methylnitrosamino)-1-(3-pyridyl)-1-butanone (NNK)-induced lung tumorigenesis in A/J mice Carcinogenesis 18 2361-2365