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S J Rietjens

Publications and source records attributed to S J Rietjens.

2 recordsLinked to original sources

The olive oil antioxidant hydroxytyrosol efficiently protects against the oxidative stress-induced impairment of the NObullet response of isolated rat aorta.

The Mediterranean diet, which is abundant in antioxidants, is associated with a relatively low incidence of coronary heart disease. Olive oil and olives, which contain the antioxidants hydroxytyrosol, oleuropein, and tyrosol, are important components of this diet. In this study, the effects of oxidative stress on the nitric oxide radical (NO(*))-mediated relaxation of rat aorta and the protection by these antioxidants were determined. Cumene hydroperoxide (CHP) was used to mimic oxidative stress induced by lipid hydroperoxides, which is mediated by the formation of hydroxyl radicals (OH(*)). CHP (300 microM) impaired the NO(*)-mediated relaxation of rat aorta by the acetylcholine receptor agonist carbachol (P < 0.05). This was due to a reduction in NO(*) production. A diminished NO(*)-mediated relaxation disturbs the vascular tone and leads to a rise in blood pressure, which is a well-established risk factor for coronary heart disease. Hydroxytyrosol (10 microM) efficiently protected the aorta against the CHP-induced impairment of the NO(*)-mediated relaxation (P < 0.05). Oleuropein, tyrosol, and homovanillic alcohol, a major metabolite of hydroxytyrosol, did not show protection. Moreover, hydroxytyrosol was found to be a potent OH(*) scavenger, which can be attributed to its catechol moiety. Because of its amphiphilic characteristics (octanol-water partitioning coefficient = 1.1), hydroxytyrosol will readily cross membranes and provide protection in the cytosol and membranes, including the water-lipid interface. The present study provides a molecular basis for the contribution of hydroxytyrosol to the benefits of the Mediterranean diet.

Animals↗

[Podocyte dysfunction and proteinuria].

Podocytes play a central role in the pathogenesis of several glomerular diseases. In recent years, this has been revealed by molecular analysis of a number of rare hereditary renal diseases. Podocytes contain three domains: the domain bound to the glomerular basement membrane (GBM), the domain of the slit diaphragms and the apical domain. The slit diaphragms are situated basolaterally between the pedicles and form together with the GBM a mechanism for the selective filtration of blood to primary urine. The apical cell membrane forms a negatively charged layer which prevents adhesion to the adjacent cell membranes, thus keeping the slit diaphragms and urinary space open. Many podocyte diseases are characterised by foot process effacement, which causes the loss of slit diaphragms, and could lead to podocyte loss. Specific abnormalities have been discovered in the three domains of the podocyte to which a number of glomerular diseases can be attributed.

Humans↗