Planta Med 2012; 78(14): 1571-1573
DOI: 10.1055/s-0032-1315148
Biological and Pharmacological Activity
Letters
Georg Thieme Verlag KG Stuttgart · New York

Human Quercetin Conjugated Metabolites Attenuate TNF-α-induced Changes in Vasomodulatory Molecules in an HUASMCs/HUVECs Co-culture Model

Federica Lodi
1   Food and Health Programme, Institute of Food Research, Norwich Research Park, Norwich, UK
,
Mark S. Winterbone
1   Food and Health Programme, Institute of Food Research, Norwich Research Park, Norwich, UK
,
Sandra Tribolo
1   Food and Health Programme, Institute of Food Research, Norwich Research Park, Norwich, UK
,
Paul W. Needs
1   Food and Health Programme, Institute of Food Research, Norwich Research Park, Norwich, UK
,
David A. Hughes
1   Food and Health Programme, Institute of Food Research, Norwich Research Park, Norwich, UK
,
Paul A. Kroon
1   Food and Health Programme, Institute of Food Research, Norwich Research Park, Norwich, UK
› Institutsangaben
Weitere Informationen

Publikationsverlauf

received 02. März 2012
revised 19. Juni 2012

accepted 06. Juli 2012

Publikationsdatum:
03. August 2012 (online)

Abstract

There is accumulating evidence from epidemiological and human intervention studies that quercetin-rich diets can protect against cardiovascular diseases. Quercetin glycosides are modified during metabolism, and the forms reaching the systemic circulation are glucuronidated, sulfated, and methylated. The aim of this study was to analyse the potential beneficial effects of quercetin and its conjugated metabolites on vascular function on a co-culture model of human umbilical artery smooth muscle cells and human umbilical vein endothelial cells. We observed that physiologically relevant metabolites of quercetin were able to reduce ET-1 protein and gene expression and to increase accumulation of cGMP in TNF-α-induced HUASMCs co-cultured with HUVECs. This is the first study to demonstrate an ability of quercetin and its conjugated metabolites, at physiologically achievable concentrations, to modulate vascular function in a co-culture model comprising human vascular endothelial and smooth muscle cells.

Supporting Information

 
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