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Biomedical subjects

Coen van Guldener

Publications and source records attributed to Coen van Guldener.

At least 19 recordsLinked to original sources

Homocysteine and large arteries.

High plasma concentrations of the amino acid homocysteine have been associated with atherothrombotic disease, first in individuals with inborn errors of homocysteine metabolism, who have very high plasma homocysteine concentrations, and later also in the general population. In general, the cardiovascular risk associated with hyperhomocysteinemia is significant, but modest and probably differs between populations. High homocysteine concentrations are thought to impair endothelial function, increase oxidative stress, impair methylation reactions, and alter protein structure. Although some studies have shown improvement of vascular surrogate end points, homocysteine-lowering treatment has not yet been associated with a significant reduction of cardiovascular events. Studies that have examined the relationship between plasma homocysteine and arterial stiffness parameters have shown heterogenous results.

Arteries↗

Endothelial dysfunction contributes to renal function-associated cardiovascular mortality in a population with mild renal insufficiency: the Hoorn study.

Mildly impaired renal function is associated with cardiovascular morbidity and mortality. There are indications that endothelial dysfunction and/or chronic inflammation, which play an important role in atherothrombosis, are present in early stages of renal insufficiency. This study investigated whether and to which extent endothelial dysfunction and inflammation were related to renal function and contributed to renal function-associated cardiovascular mortality in a population-based cohort (n = 613), aged 50 to 75 yr, that was followed with a median duration of 12.5 yr. During follow-up, 192 individuals died (67 of cardiovascular causes). At baseline, renal function was estimated with serum creatinine, the Cockcroft-Gault formula, and the Modification of Diet in Renal Disease equation of GFR (eGFR). Endothelial function was estimated by plasma von Willebrand factor, soluble vascular cell adhesion molecule-1, and the urinary albumin-creatinine ratio. Inflammatory activity was estimated by plasma C-reactive protein and soluble intercellular adhesion molecule-1. Renal function was mildly impaired (mean eGFR 68 +/- 12 ml/min per 1.73 m(2)) and independently associated with von Willebrand factor (standardized beta -0.09; 95% confidence interval [CI] -0.18 to -0.002; P < 0.05), soluble vascular cell adhesion molecule-1 (standardized beta -0.14; 95% CI -0.22 to -0.05; P < 0.01), and albumin-creatinine ratio (standardized beta -0.15; 95% CI -0.23 to -0.08; P < 0.001) but not with markers of inflammatory activity. Renal function was inversely associated with cardiovascular and all-cause mortality. The relative risk for cardiovascular mortality but not all-cause mortality associated with renal function decreased from 1.22 to 1.12 per 5 ml/min per 1.73 m(2) decrease of eGFR after adjustment for markers of endothelial dysfunction. In conclusion, endothelial dysfunction was related to renal function and contributed to the excess in cardiovascular mortality in this population-based cohort with mild renal insufficiency.

Aged↗

Advanced glycation end-product peptides are associated with impaired renal function, but not with biochemical markers of endothelial dysfunction and inflammation, in non-diabetic individuals.

BACKGROUND: Patients with end-stage renal disease as well as mild renal impairment have an increased risk for the development of cardiovascular disease. It has been suggested that advanced glycation end-products (AGEs) are involved in atherogenesis, possibly through induction of endothelial dysfunction and low-grade inflammation. METHODS: In a cross-sectional, single-centre study, we investigated four groups of 20 non-diabetic subjects with a creatinine clearance ranging from normal (> 90 ml/min/1.73 m2) to < 31 ml/min/1.73 m2. We measured AGE-peptides, markers of endothelial dysfunction (von Willebrand factor, soluble E-selectin, plasminogen activator inhibitor-1, tissue-type plasminogen activator, soluble vascular cell adhesion molecule-1) and markers of inflammatory activity (soluble intercellular adhesion molecule-1, C-reactive protein, secretory phospholipase A2). We constructed composite endothelial dysfunction and inflammatory activity Z-scores using these markers. RESULTS: AGE-peptides were independently related to creatinine clearance (standardized beta -0.55, 95% confidence interval (CI) -0.77 to -0.34, P < 0.001). AGE-peptides were not independently related to the individual markers of endothelial dysfunction and inflammation, nor to the composite endothelial dysfunction Z-score (standardized beta 0.08, 95% CI -0.14 to -0.30, P = 0.48) or the inflammatory activity Z-score (standardized beta -0.05, 95% CI -0.25 to -0.16, P = 0.66). CONCLUSIONS: Plasma concentrations of AGE-peptides are associated with creatinine clearance but not with biochemical markers of endothelial dysfunction and inflammatory activity in non-diabetic patients over a wide range of renal function. This suggests that the atherogenic effects of AGE-peptides in individuals with renal functional impairment are not mediated by endothelial dysfunction or inflammatory activity as estimated by the markers used.

Adult↗

Folic acid treatment increases homocysteine remethylation and methionine transmethylation in healthy subjects.

Folic acid treatment decreases plasma total homocysteine concentrations in healthy subjects, but the effects on homocysteine metabolism are unknown. In the present study, we investigated the effect of 3 weeks of oral treatment with 5 mg of folic acid on one-carbon flux rates in 12 healthy subjects, using in vivo stable isotope methods. In addition, we determined the effect of folic acid on blood concentrations of amino acids which may have regulatory roles in homocysteine metabolism, i.e. homocysteine, AdoMet (S-adenosylmethionine), AdoHcy (S-adenosylhomocysteine), serine and glycine. Primed, continuous infusions with [2H3-methyl-1-13C]methionine were used to determine flux rates of methionine transmethylation, homocysteine remethylation and homocysteine trans-sulphuration. Metabolic homocysteine clearance was defined as the ratio of trans-sulphuration and plasma homocysteine level. Folic acid treatment increased the homocysteine remethylation rate by 59% [95% CI (confidence interval), 13-97%; P = 0.02] and methionine transmethylation rate by 20% (95% CI, 3-41%; P=0.03). Plasma total homocysteine concentration (-18%; 95% CI, -28 to -9%; P<0.01) and the serine/glycine ratio (-20%; 95% CI, -63 to -6%; P<0.01) decreased significantly, and the AdoMet/AdoHcy ratio (11%; 95% CI, 1-20%; P = 0.02) increased significantly. Changes in one-carbon flux rates did not correlate significantly with changes in plasma concentration of these amino acids. In conclusion, folic acid treatment lowered plasma homocysteine concentration and increased whole-body remethylation and transmethylation flux in healthy subjects.

Adult↗

Homocysteine and methionine metabolism in renal failure.

Renal insufficiency is invariably accompanied by elevated plasma concentrations of the sulfur-containing and potentially vasculotoxic amino acid homocysteine. There is a strong relationship between glomerular filtration rate and plasma homocysteine concentration. Unlike creatinine, however, homocysteine is avidly reabsorbed in the renal tubules, and its urinary excretion is minimal. There is no evidence that homocysteine is actively removed by the human kidney. In renal insufficiency, plasma concentrations of S-adenosylmethionine, S-adenosylhomocysteine, cystathionine, cysteine, and sulfate are elevated, pointing to a remethylation or distal transsulfuration/oxidation block as the cause of hyperhomocysteinemia in renal failure. Stable isotope techniques have shown that both whole-body homocysteine remethylation and methionine transmethylation are decreased in renal failure, whereas homocysteine transsulfuration seems intact. Metabolic homocysteine clearance (i.e., transsulfuration relative to plasma homocysteine) is decreased to a major extent. These metabolic disturbances in renal failure can only be partially restored with current treatments. Folic acid treatment lowers plasma homocysteine concentration and increases remethylation and transmethylation rates. Plasma homocysteine, however, is not normalized, and metabolic homocysteine clearance by transsulfuration remains impaired. According to the currently available data, effective normalization of plasma homocysteine can only be obtained when its metabolic clearance through transsulfuration is restored.

Biomarkers↗

Effect of folic acid on methionine and homocysteine metabolism in end-stage renal disease.

BACKGROUND: The pathogenesis of hyperhomocysteinemia in end-stage renal disease (ESRD) is unclear. Folic acid lowers, but does not normalize, the plasma homocysteine level in patients with ESRD, but its effect on whole body metabolism of homocysteine is unknown. METHODS: We studied the effect of 3 weeks of oral treatment with 5 mg folic acid per day on homocysteine metabolism in six chronic hemodialysis patients and six healthy controls. Primed, continuous infusions with [(2)H(3)-methyl-1-(13)C] methionine were used to determine flux rates of methionine transmethylation, homocysteine remethylation, and homocysteine transsulfuration. Metabolic homocysteine clearance was defined as the ratio of transsulfuration and plasma homocysteine level. RESULTS: Folic acid treatment lowered plasma homocysteine significantly by 39% (95% CI 5 to 73) in the ESRD group, but plasma homocysteine remained higher than baseline values in the control group. In ESRD patients, homocysteine remethylation and methionine transmethylation rate increased by 34% (95% CI 5 to 62) and 22% (95% CI 5 to 39), respectively (i.e., levels that were similar to the baseline values of the control group). Transsulfuration rate and metabolic homocysteine clearance were not significantly altered by folic acid treatment in both the ESRD and the control group. CONCLUSION: In ESRD patients, folic acid treatment lowers, but does not normalize plasma homocysteine, whereas homocysteine remethylation and methionine transmethylation increase to levels found in untreated healthy controls. These findings indicate a persistent, folate-independent, defect in metabolic homocysteine clearance in ESRD.

Administration, Oral↗

Plasma asymmetric dimethylarginine (ADMA) concentration is independently associated with carotid intima-media thickness and plasma soluble vascular cell adhesion molecule-1 (sVCAM-1) concentration in patients with mild-to-moderate renal failure.

BACKGROUND: Patients with renal insufficiency have an increased risk of cardiovascular disease that is not fully explained by the presence of known cardiovascular risk factors. In patients with end-stage renal disease, increased serum concentration of asymmetric dimethylarginine (ADMA), an endogenous inhibitor of nitric oxide synthase (NOS), has been linked to excess cardiovascular morbidity. We investigated, in patients with mild-to-moderate renal failure, the relationship between plasma ADMA and three surrogate markers of atherosclerosis that have been shown to have prognostic value, namely carotid intima-media thickness (IMT), plasma soluble vascular cell adhesion molecule-1 (sVCAM-1), and plasma C-reactive protein (CRP). METHODS: We used baseline data of an ongoing randomized trial in which the effects of oxidative stress-lowering treatment on vascular function and structure are studied in patients with chronic nondiabetic renal failure without clinical evidence of atherosclerosis (GFR 15 to 70 mL/min/per 1.73 m(2) according to the Cockcroft-Gault equation; ATIC study). RESULTS: Data from 93 patients were used. Creatinine clearance was inversely related to plasma ADMA concentration (standardized beta after adjustment = -0.342, P = 0.023). Plasma ADMA was strongly related to carotid IMT in univariate (beta = 0.459, P < 0.0001) and multivariate analysis (beta= 0.444, P < 0.0001). Plasma ADMA was also significantly related with plasma soluble vascular cell adhesion molecule-1 (sVCAM-1) in univariate (beta = 0.260, P = 0.010) and multivariate (beta = 0.242, P = 0.022) analysis. Plasma ADMA was not significantly related to C-reactive protein (beta = -0.134, P = 0.204). CONCLUSION: In patients with mild-to-moderate renal failure, renal function is inversely associated with plasma ADMA, which, in turn, is positively associated with carotid IMT and plasma sVCAM-1 concentration. Increased plasma ADMA may be a link between renal function and cardiovascular disease in patients with mild-to-moderate renal failure.

Adult↗

Hyperhomocysteinaemia in chronic kidney disease: focus on transmethylation.

Hyperhomocysteinaemia almost invariably occurs in patients with end-stage renal disease (ESRD), but there is debate whether, within the group of ESRD patients, higher or lower plasma homocysteine concentrations are related to an increased risk of vascular disease. Homocysteine is thought to be vasculotoxic in high concentrations, but it may also lead to elevated levels of its precursor, S-adenosylhomocysteine (AdoHcy), which is a potent inhibitor of the transmethylation pathway, in which S-adenosylmethionine (AdoMet) donates its methyl group to a variety of acceptors. Impairment of this transmethylation pathway in ESRD patients has been suggested by high AdoHcy levels, decreased AdoMet/AdoHcy ratios, decreased protein repair requiring methyltransferases, and by DNA hypomethylation. Stable isotope techniques using labelled methionine have indeed demonstrated a decreased whole body transmethylation flux in ESRD patients. These studies have also shown that folic acid treatment is capable of restoring transmethylation rates to normal values. The remaining hyperhomocysteinaemia after folic acid treatment in ESRD is probably due to a persistent impairment of homocysteine clearance through transsulphuration. DNA hypomethylation with its concurrent alterations in gene expression is largely improved by folate treatment. The adverse effects of hyperhomocysteinaemia in ESRD may thus be related to impaired transmethylation. Normalisation of plasma homocysteine does not seem to be required to restore transmethylation to normal levels in ESRD patients.

Animals↗

Homocysteine and the kidney.

Plasma homocysteine concentration exhibits a strong relationship with (indices of) renal function. Hyperhomocysteinemia has been implicated in the high vascular event rate in patients with chronic renal failure. The precise pathophysiological explanation for the occurrence of hyperhomocysteinemia in renal failure is not yet elucidated. A defective intrinsic renal metabolism of homocysteine seems unlikely. There are several indications that whole body homocysteine metabolism is altered in renal insufficiency. Stable isotope studies in dialysis patients have shown a decreased homocysteine clearance by transsulfuration and decreased homocysteine remethylation and methionine transmethylation. Several, but not all, prospective studies have linked hyperhomocysteinemia to adverse cardiovascular outcomes in renal failure patients. Treatment of hyperhomocysteinemia in renal insufficiency is based on folic acid-containing regimens, but so far, none of the regimens has been shown to successfully normalize plasma homocysteine concentration. Intervention studies have not yet demonstrated beneficial vascular effects of homocysteine-lowering treatment in dialysis patients.

Animals↗

Homocysteine clearance and methylation flux rates in health and end-stage renal disease: association with S-adenosylhomocysteine.

Hyperhomocysteinemia is a risk factor for cardiovascular disease and occurs frequently in end-stage renal disease (ESRD), but its pathogenesis is poorly understood. We aimed to evaluate one-carbon flux rates of methionine and homocysteine (Hcy) in ESRD patients and healthy controls. Transmethylation (TM), remethylation (RM), and transsulfuration (TS), as well as Hcy clearance by TS (i.e., TS/plasma total Hcy concentration) and by RM (i.e., RM/plasma total Hcy concentration) were evaluated in relation to body composition, vitamins, and S-adenosylhomocysteine (AdoHcy) and S-adenosylmethionine (AdoMet) levels. After a fixed protein diet for 3 days, primed-continuous infusion of [(2)H(3)-methyl-1-(13)C]methionine was performed in the postabsorptive state in 12 hemodialysis patients and 16 healthy volunteers. Hcy clearance by TS (-80%, P < 0.001) and by RM (-77%, P < 0.001) in ESRD patients was decreased compared with healthy controls. The absolute flux rates of TM (-27%, P < 0.01) and RM (-28%, P = 0.02) were lower in the ESRD patients. After adjustment for age, TS was not significantly reduced. Whole blood AdoHcy was significantly elevated in ESRD and was a significant determinant of TM (standardized beta = -1.24, P = 0.01) and RM (standardized beta = -1.43, P = 0.03). In conclusion, patients with ESRD have impaired Hcy clearance by TS and RM. Elevated whole blood AdoHcy levels are associated with impaired RM and TM flux rates in these patients, and AdoHcy may be a key regulatory compound in one-carbon flux.

Adult↗

Homocysteine and blood pressure.

Several studies, some population-based, have linked plasma homocysteine levels to blood pressure, especially systolic pressure. The strength of this association is weak, but may be underestimated due to inaccurate blood pressure measurements. In addition, the association may be confounded by renal function. Observations that homocysteine-lowering therapies with folic acid-based treatments have been followed by decreases in blood pressure, however, raise the possibility that the link between homocysteine and blood pressure is real, which is important as homocysteine levels can easily be lowered by folic acid-based regimens. Mechanisms that could explain the relationship between homocysteine and blood pressure include increased arterial stiffness, endothelial dysfunction with decreased availability of nitric oxide, low folate status, and insulin resistance. So far, however, no evidence has been provided that these mechanisms are operative in humans. Ongoing large intervention studies with homocysteine-lowering vitamins may indicate whether blood pressure is indeed lowered by these vitamins, whether the blood pressure decrease, if any, is explained by the decrease in homocysteine levels, and whether a vitamin treatment-associated decrease in cardiovascular morbidity (if any) is explained by the decrease in blood pressure.

Animals↗

Impaired renal function is associated with markers of endothelial dysfunction and increased inflammatory activity.

BACKGROUND: Patients with end-stage renal disease (ESRD) as well as those with mild renal insufficiency are at increased risk for the development of cardiovascular disease, which cannot be attributed entirely to traditional risk factors. Endothelial dysfunction and chronic inflammatory activity, two important phenomena in atherogenesis, can be found in ESRD. At present, it is unclear whether endothelial dysfunction and chronic inflammatory activity are related to renal function in the pre-dialysis stage. METHODS: In a cross-sectional, single-centre study, four groups of 20 subjects with renal function ranging from a normal, calculated creatinine clearance (>90 ml/min) to a pre-dialysis situation (<31 ml/min) were investigated. We measured markers of endothelial function [von Willebrand factor (vWf), soluble intercellular adhesion molecule-1 (sICAM-1), soluble vascular cell adhesion molecule-1 (sVCAM-1), tissue-type plasminogen activator (tPA), plasminogen activator inhibitor-1 (PAI-1) and E-selectin (ES)], and markers of inflammatory activity [secretory phospholipase A(2) (sPLA(2)) and C-reactive protein (CRP)]. Using these markers, composite endothelial function and inflammatory activity scores were constructed. RESULTS: Creatinine clearance correlated with the endothelial function score (r=-0.43, P<0.001), the inflammatory activity score (r=-0.53, P<0.05), vWf (r=-0.54, P<0.001), sVCAM-1 (r=-0.50, P<0.001), sPLA(2) (r=-0.28, P<0.05), homocysteine (r=-0.61, P<0.001), age (r=-0.54, P<0.001) and blood pressure (r=-0.44, P<0.001). In multivariate analyses, creatinine clearance was an independent determinant of the endothelial function score (beta=-0.34, P=0.006), plasma vWf (beta=-0.37, P=0.022) and sICAM-1 (beta=-0.33, P=0.012). The relationship of creatinine clearance with sVCAM-1 and endothelial function score was not significant when plasma homocysteine was added to the model. Creatinine clearance was also a determinant of the inflammatory activity score (beta=-0.31, P=0.025) and sPLA(2) (beta=-0.32, P=0.024), although this was no longer significant after correction for systolic blood pressure. CONCLUSIONS: Renal dysfunction is associated with markers of endothelial dysfunction and inflammatory activity. Plasma homocysteine may be an intermediate factor in the relationship between endothelial dysfunction and renal function, while blood pressure may modulate the association between inflammatory activity and renal function.

Biomarkers↗

Handling of asymmetrical dimethylarginine and symmetrical dimethylarginine by the rat kidney under basal conditions and during endotoxaemia.

BACKGROUND: Asymmetrical dimethylarginine (ADMA) is capable of inhibiting nitric oxide synthase enzymes, whereas symmetrical dimethylarginine (SDMA) competes with arginine transport. The potential role of inflammation in the metabolism of ADMA has been elucidated in an in vitro model using tumour necrosis factor-alpha, resulting in a decreased activity of the ADMA-degrading enzyme dimethylarginine dimethylaminohydrolase (DDAH). The kidney probably plays a crucial role in the metabolism of ADMA by both urinary excretion and degradation by DDAH. We aimed to further elucidate the role of the kidney in a rat model under basal conditions and during endotoxaemia. METHODS: Twenty-five male Wistar rats weighing 275-300 g were used for this study. The combination of arteriovenous concentration differences and kidney blood flow allowed calculation of net organ fluxes. Blood flow was measured using radiolabelled microspheres according to the reference sample method. Concentrations of ADMA, SDMA and arginine were measured by high-performance liquid chromatography. RESULTS: The kidney showed net uptake of both ADMA and SDMA and fractional extraction rates were 35% and 31%, respectively. Endotoxaemia resulted in a lower systemic ADMA concentration (P = 0.01), which was not explained by an increased net renal uptake. Systemic SDMA concentrations increased during endotoxaemia (P = 0.007), which was accompanied by increased creatinine concentrations. CONCLUSIONS: The rat kidney plays a crucial role in the regulation of concentrations of dimethylarginines, as both ADMA and SDMA were eliminated from the systemic circulation in substantial amounts. Furthermore, evidence for the role of endotoxaemia in the metabolism of dimethylarginines was obtained as plasma levels of ADMA were significantly lower in endotoxaemic rats.

Animals↗

Does homocysteine cause hypertension?

Several studies, some population-based, have plasma homocysteine levels linked to blood pressure, especially systolic pressure. In one large and carefully conducted epidemiological study, each 5 micromol/l increase in plasma homocysteine was associated with an increase in systolic and diastolic blood pressure of 0.7/0.5 mmHg in men and 1.2/0.7 mmHg in women, which was independent of renal function and B vitamin status. In addition, observations that homocysteine-lowering therapies with folic acid-based treatments have been followed by decreases in blood pressure raise the possibility that the link between homocysteine and blood pressure is causal, which is important since homocysteine levels can easily be lowered by folic acid-based regimens. Mechanisms that could explain the relationship between homocysteine and blood pressure include homocysteine-induced arteriolar constriction, renal dysfunction and increased sodium reabsorption, and increased arterial stiffness. However, there is only circumstantial evidence that these mechanisms are operative in humans. In addition, confounding by subtle renal dysfunction or by unmeasured dietary and lifestyle factors cannot be excluded as an explanation for the association between homocysteine and blood pressure. At present, therefore, the hypothesis that homocysteine increases blood pressure must be considered unproven. Ongoing large intervention studies with homocysteine-lowering vitamins may show whether blood pressure is indeed lowered by these vitamins, whether the blood pressure decrease, if any, is explained by the decrease in homocysteine levels, and whether a vitamin treatment-associated decrease in cardiovascular morbidity, if any, is explained by the decrease in blood pressure.

Folic Acid↗

Homocysteine metabolism in renal disease.

Hyperhomocysteinemia, a new cardiovascular risk factor, occurs in 85-100% of patients with end-stage renal disease. The exact mechanism by which renal function is linked to plasma homocysteine has not been definitively established. There is reasonably good clinical evidence that hyperhomocysteinemia in itself does not cause renal insufficiency. Two, not mutually exclusive, hypotheses are that in renal failure: i) homocysteine disposal is impaired in the kidneys themselves and ii) extra-renal homocysteine metabolism is defective, possibly due to uremic toxins. Several methods have been applied to investigate kidney and whole-body sulfur amino acid metabolism in healthy subjects and in patients with different degrees of renal failure. Arteriovenous extraction studies have not found a significant homocysteine disposal in the human kidney. Methods to study whole-body homocysteine metabolism have included measurement of plasma metabolites, calculation of plasma homocysteine elimination after oral loading and the use of stable isotope techniques with methionine tracers. The results implicate a decreased homocysteine clearance instead of an increased production as the cause of hyperhomocysteinemia in renal failure, but the exact site of the impaired clearance remains controversial.

Glomerular Filtration Rate↗