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Hyperhomocysteinemia as a risk factor for cardiovascular diseases. The association of hyperhomocysteinemia with diabetes mellitus and renal transplant recipients.

Hyperhomocysteinemia has been recognised as an independent risk factor for cardiovascular, cerebrovascular and peripheral artery disease. There is strong evidence suggesting that hyperhomocysteinemia accelerates the process of atherogenesis. Possible explanations for this will be shortly reviewed. Recently a growing interest has been focused on the association of hyperhomocysteinemia with diabetes mellitus and with chronic renal disease, including renal transplant recipients. Some clinical aspects of this occurrence, such as interactions with insulin, metformin, and cyclosporine and also with some vitamins, will be described. The issue of hyperhomocysteinemia in heart transplant patients will also be mentioned. Last of all, the interaction of homocysteine concentration with some beverages will be considered.

Cardiovascular Diseases↗

Hyperhomocysteinemia and protein damage in chronic renal failure and kidney transplant pediatric patients--Italian initiative on uremic hyperhomocysteinemia (IIUH).

BACKGROUND: Plasma homocysteine, a new cardiovascular risk factor in both children and adults, is higher in chronic renal failure or kidney transplant patients. This alteration has been linked, in chronic renal failure, to plasma protein damage, represented by increased L-isoaspartyl residues. We measured plasma homocysteine levels and plasma protein damage in pediatric patients from four different Italian regions with conservatively treated renal failure; hemodialysis, continuous ambulatory peritoneal dialysis (CAPD), or transplants, to establish the presence of protein damage and the relative role of hyperhomocysteinemia. METHODS: High performance liquid chromatography (HPLC) separation measured total plasma homocysteine levels, using precolumn derivatization with ammonium 7-fluorobenzo-2-oxa-1, 3-diazole-4-sulphonate (SBD-F). Plasma protein L-isoaspartyl residues were quantitated using human recombinant protein carboxyl methyl transferase (PCMT). RESULTS: In all patient groups, homocysteine levels were significantly higher with respect to the control (Control: 6.87 +/- 0.73 microM) conservatively treated, 14.19 +/- 1.73 microM; hemodialysis, 27.03 +/- 4.32 microM; CAPD, 22.38 +/- 3.73 microM; transplanted, 20.22 +/- 2.27 microM, p < 0.001 vs. control]. Plasma protein damage was significantly higher in conservatively treated, hemodialysis (HD) and CAPD patients, while in transplant patients it was no different from the control. CONCLUSIONS: We concluded that in pediatric patients of different Italian geographical origin, plasma homocysteine levels were significantly higher in all groups with respect to healthy children; therefore contributing to the elevated cardiovascular risk present in these patients. Plasma protein L-isoaspartyl content was higher in renal failure patients, but kidney transplant patients had normal levels, indicating that this kind of protein damage relates more to the toxic action of uremic retention solutes, than to plasma homocysteine levels.

Age Distribution↗

High prevalence of hyperhomocysteinemia and asymptomatic vascular disease in siblings of young patients with vascular disease and hyperhomocysteinemia.

Hyperhomocysteinemia (HHC) is associated with an increased risk of atherosclerotic vascular disease and may be inherited. Fasting and postmethionine HHC are independent risk factors that overlap to a limited extent. To study the familial occurrence of HHC, we investigated the prevalence of HHC (both fasting and after methionine) among 450 siblings of 167 consecutive young patients with vascular disease and postmethionine HHC. Furthermore, all subjects with postmethionine HHC (n = 125) were invited for noninvasive vascular testing; 101 (80.8%) agreed. Of those with a normal postmethionine plasma level (n = 325), we randomly selected 73 subjects for further studies; 53 agreed (72.6%). Thus, a total of 154 siblings underwent ultrasonography of the carotid arteries, measurement of ankle-brachial pressure indices at rest and after a treadmill exercise test, and exercise electrocardiographic stress testing. We observed HHC after methionine, fasting, or both, in 27.8% (95% CI, 23.7 to 31.9), 11.1% (CI, 8.2 to 14.0) and 8.7% (CI, 6.1 to 11.3) of the siblings. Abnormal peripheral, coronary, or carotid artery tests were observed in 35.7% (CI, 28.1 to 43.3), 7.1% (CI, 3.0 to 11.2), and 7.1% (CI, 3.0 to 11.2). Univariate and multivariate analyses revealed weak evidence of a relationship with homocysteine levels. In conclusion, we found a high prevalence of HHC and asymptomatic vascular disease in siblings of young patients with vascular (mainly peripheral arterial) disease and HHC. Our data raise the possibility that homocysteine does not play a major role in the early, asymptomatic phases of vascular disease, at least among siblings of young patients with vascular disease.

Adult↗

Hyperhomocysteinemia and venous thrombosis.

In recent years hyperhomocysteinemia has been established as a new risk factor for neural tube defects, arterial cardiovascular disease, and venous thrombosis. Concerning vascular problems, it first became clear that hyperhomocysteinemia might be (though not proven) a risk factor for arterial disease as observed in case-control studies, as well as in prospective analysis. More recently, the subject of hyperhomocysteinemia and venous thrombosis has received much attention. In this article, we discuss the issue of hyperhomocysteinemia, in general, the known causes of hyperhomocysteinemia and the association with venous thrombosis. Special attention is given to the value of the methionine loading test to diagnose hyperhomocysteinemia. An association of venous thrombosis and hyperhomocysteinemia has now been documented in several case control studies, but only in one prospective analysis. Thus far, there is limited evidence for a causal relationship for mild hyperhomocysteinemia in venous thrombosis. Briefly, the possible mechanisms of how hyperhomocysteinemia can lead to venous thrombosis are discussed. The article ends with therapeutic options to treat hyperhomocysteinemia (hyperhomocysteinemia can easily be treated with vitamins) and the description of a study that is presently being undertaken in an international multicenter design. This placebo-controlled study might resolve the question of whether lowering of homocysteine levels is of any clinical relevance in preventing recurrent venous thrombosis.

Case-Control Studies↗

Hyperhomocysteinemia and thrombosis.

Homocysteine (Hcy) is a sulfhydryl amino acid derived from the metabolic conversion of methionine, which is dependent on vitamins (folic acid, B12, and B6) as cofactors or cosubstrates. In 1969, McCully first reported the presence of severe atherosclerotic lesions in patients with severe hyperhomocysteinemia and hypothesized the existence of a pathogenic link between hyperhomocysteinemia and atherogenesis. Several case-control and cross-sectional studies were consistent with the initial hypothesis of McCully, showing that moderate hyperhomocysteinemia is also associated with heightened risk of occlusive arterial disease. Less consistent results have been reported by prospective cohort studies of subjects who were healthy at the time of their enrollment, whereas prospective cohort studies of patients with overt coronary artery disease or other conditions at risk consistently confirmed the association between moderate hyperhomocysteinemia and cardiovascular morbidity and mortality. More recently, an association between moderate hyperhomocysteinemia and heightened risk of venous thromboembolism has been documented, suggesting that hyperhomocysteinemia might be involved not only in atherogenesis, but also in thrombogenesis. The mechanisms by which hyperhomocysteinemia might contribute to atherogenesis and thrombogenesis are incompletely understood. The mainstay of treatment of hyperhomocysteinemia is folic acid, alone or in combination with vitamin B12 and vitamin B6. Although it is quite clear that vitamins effectively reduce the plasma levels of total homocysteine (tHcy), we do not yet know whether they will decrease the risk of vascular disease. The results of ongoing randomized, placebo-controlled, double-blind trials of the effects of vitamins on the thrombotic risk will help in defining whether the relationship between hyperhomocysteinemia and thrombosis is causal, and will potentially have a dramatic effect in the prevention of thromboembolic events.

Animals↗

[Factors associated with hyperhomocysteinemia in inflammatory bowel disease: prospective study in 81 patients].

BACKGROUND: A high prevalence (52%) of hyperhomocysteinemia is observed in Crohn disease (CD), however it is not well documented in ulcerative colitis (UC). Furthermore, in the different works studying hyperhomocysteinemia the associated factors are different. AIM: Prospective evaluation of hyperhomocysteinemia in inflammatory bowel disease (IBD) patients, of the risk factors and the determination of a potential risk of colorectal carcinoma in case of hyperhomocysteinemia. PATIENTS AND METHODS: IBD patients followed in our department were prospectively recruited between November 2003-September 2004. To be included patients should have passed a coloscopy in the two years. Patients with kidney failure or drugs supposed, to interfere with homocystéine metabolism (folates, vitamin B12, methotrexate) were excluded from the study. The following parameters were analysed: age, sex, clinical activity indexes (CDAI for Crohn disease and CAI for ulcerative colitis), length-extent and type of the disease (CD or UC), smoking, plasma homocystein concentration, folates and vitamin B12. RESULTS: Eighty-one patients (60 CD, 21 UC, mean age 43.8 +/- 17.3) were included, 30 had an active disease at inclusion and 16 were smokers. The prevalence of high homocystein concentration was 55.6%. In univariate analysis a low rate of folates was the only risk factor for a high homocystein concentration (74 vs. 52.8%; P = 0.018). Smoking was almost an associated factor. In multivariate analysis, a low rate of folate was the only risk factor of hyperhomocysteinemia, OR = 3.59 [1.27-10.17]. Five endoscopic lesions considered as precancerous were described; these patients had all a hyperhomocysteinemia. CONCLUSION: The prevalence of hyperhomocysteinemia is high in UC and in CD. A low folate rate is the only risk factor observed in our study. There is a possible link between colorectal cancer and hyperhomocysteinemia. A high Plasma homocystein concentration must be search in inflammatory bowel disease patients and a substitutive treatment of folates and vitamin B12 is necessary in case of hyperhomocysteinemia.

Adult↗

[Hyperhomocysteinemia and advancement of atherosclerosis in patients with chronic renal failure on maintenance hemodialysis].

Cardiovascular diseases connected with atherosclerosis are the main factor of morbidity and mortality in patients with end-stage renal failure. Hyperhomocysteinemia is a known and independent risk factor of atherosclerosis, occurring in 85-95% patients treated with hemodialysis. The aim of this study was to analyse relation between plasma level of homocysteine and chosen indicators of atherosclerosis development and also examined retrospectively cardiovascular complications in these patients. The study was carried out in 100 patients on hemodialysis who were divided into two groups: 72 patients with mild (20.74 mumol/l +/- 3.75) and 28 patients with moderate hyperhomocysteinemia (38.81 mumol/l +/- 9.81). Ultrasonographic examinations of Carotid Communis Artery Intima-Media Thickness (IMT), Ankle-Arm Blood Pressure Index (AABPI), echocardiographic parameters and biochemical examinations such as: PTH, folic acid and Vitamin B12, total protein, albumin, fibrinogen, glucose, total, LDL and HDL cholesterol, transferring, apolipoprotein B, lipoprotein (a), sodium potassium, calcium, phosphate, magnesium, iron, ferritin, urea, creatinine, uric acid and value of Hb, Ht, total iron binding capacity and transferring saturation, were performed. Patients with hypertension were divided into groups according to the number of taken anti-hypertensive drugs. Hyperhomocysteinemia was confirmed in 96% of patients. Frequency and type of acute cardiovascular complications were not related with the level of hyperhomocysteinemia. Statistically significant difference between IMT and level of hyperhomocysteinemia was observed. In patients with mild hyperhomocysteinemia IMT was 0.68 mm +/- 0.24 whereas in patients with moderate hyperhomocysteinemia 0.80 mm +/- 0.25, p < 0.036). Positive correlation between level of homocysteine and IMT (r = 0.22, p < 0.03) was noted. Based on this study, we concluded, that measurement of intima-media thickness is a good indicator of atherosclerosis development and correlates with hyperhomocysteinemia in patients on maintenance hemodialysis. It clearly confirms the role of hyperhomocysteinemia as significant risk factor of atherosclerosis in those patients.

Adult↗

Hyperhomocysteinemia is a risk factor of recurrent venous thromboembolism.

Hyperhomocysteinemia is a risk factor of venous thromboembolism. The risk of recurrence in patients with hyperhomocysteinemia is unknown, and the optimal therapy for these patients after acute venous thromboembolism is uncertain. In a multicenter study, 264 patients with an objectively documented single episode of idiopathic venous thromboembolism were prospectively followed after discontinuation of oral anticoagulants. Patients were classified as hyperhomocysteinemic if their homocysteine levels exceeded the 95th percentile of the controls. The outcome events studied were objectively confirmed deep-vein thrombosis and/or pulmonary embolism. Homocysteine levels were elevated in 66 patients (25%) and normal in 198 patients (75%). Recurrent venous thromboembolism occurred in 12 of 66 patients with hyperhomocysteinemia (18.2%) and in 16 of 198 patients without hyperhomocysteinemia (8.1%). The cumulative probability of recurrence 24 months after discontinuation of oral anticoagulants was 19.2 percent (95 percent confidence interval 8.7-27) in patients with hyperhomocysteinemia and was 6.3 percent (95 percent confidence interval 2.4-10.1; p = 0.001) in those without hyperhomocysteinemia. The relative risk of recurrent thrombosis was higher in patients with hyperhomocysteinemia [RR 2.7 (1.3-5.8), p = 0.009]. Patients with hyperhomocysteinemia are at high risk of recurrent venous thromboembolism. The high prevalence of hyperhomocysteinemia in thrombosis patients together with the increased risk of recurrence warrants extended patient screening. The impact on the risk of recurrence of prolonged anticoagulation, supplementation of folate and vitamin B12, or both have to be investigated.

Adolescent↗

Features, symptoms, and neurophysiological findings in stroke associated with hyperhomocysteinemia.

BACKGROUND: Hyperhomocysteinemia has been shown to be a mild independent risk factor for premature atherosclerosis, and there is evidence of an increased rate of peripheral vascular occlusive disease, myocardial infarction, and stroke. OBJECTIVE: To evaluate clinical, biochemical, and neurophysiological findings in patients with ischemic stroke with and without hyperhomocysteinemia. SUBJECTS: One hundred twenty-five consecutive patients with a history of stroke and 60 healthy control subjects. METHODS: Patients were divided into those with and those without hyperhomocysteinemia, which was defined as blood levels beyond the mean total plasma homocysteine level plus 2 SDs of the healthy control group. History, symptoms, cause, patterns of infarction, biochemical data, continuous and transcranial Doppler sonography, and event-related potentials were recorded in all patients. RESULTS: Twenty-seven patients had hyperhomocysteinemia. Compared with the 98 patients without hyperhomocysteinemia, they had an increased rate of hypertension (odds ratio, 3.5; 95% confidence interval, 1.0-12.6), an increased level of uric acid (P < .007), an increased hematocrit (P < .02), a higher rate of microangiopathy (odds ratio, 2.8; 95% confidence interval, 1.1-7.2), and a trend to a higher rate of multiple infarction. Furthermore, the P3 latency of the event-related potential was significantly increased in hyperhomocysteinemia (P < .004). CONCLUSIONS: Hyperhomocysteinemia is probably an independent risk factor for stroke, with a prevalence of about 20% in all patients with a history of stroke; however, additional factors (eg, hypertension, hyperuricemia) may have an enhancing effect. There are significant differences in stroke patterns between patients with and without hyperhomocysteinemia, with a higher rate of lesions typical of cerebral microangiopathy and a trend to multiple infarctions in the former. Impairment of cognitive processing as measured by visual event-related potential is more pronounced in hyperhomocysteinemia.

Adult↗

Endothelial marker proteins in hyperhomocysteinemia.

Hyperhomocysteinemia is associated with severe, premature atherosclerosis and thromboembolism. The mechanisms involved in the atherogenic and thrombotic complications of hyperhomocysteinemia are not understood. It has been suggested that hyperhomocysteinemia predisposes to atherosclerosis by injuring the vascular endothelium. Whether hyperhomocysteinemia is independently associated with changed endothelial function, either in the absence or the presence of clinically manifest atherosclerotic disease, is, however, not known. Therefore we investigated, both in patients with peripheral arterial occlusive disease and in healthy individuals, whether plasma protein markers of endothelial function differed between subjects with, and subjects without hyperhomocysteinemia. We studied 80 individuals under the age of 56 years: healthy individuals with (n = 20) and without (n = 20) hyperhomocysteinemia and patients with peripheral arterial occlusive disease with (n = 20) and without (n = 20) hyperhomocysteinemia. The following endothelium-derived proteins were measured as markers of endothelial cell function: von Willebrand factor (vWf) and von Willebrand factor propeptide (vWf: AgII), tissue-type plasminogen activator (tPA), plasminogen activator inhibitor-1 (PAI-1), cellular fibronectin (cFN) and thrombomodulin (TM). In addition we assessed C-reactive protein (CRP). vWf, vWf: AgII, tPA and CRP were significantly higher in the patients with peripheral arterial occlusive disease than in the healthy individuals. No differences in marker protein plasma levels were found between individuals with, and those without hyperhomocysteinemia, apart from vWf, which was significantly raised in hyperhomocysteinemic as compared to normohomocysteinemic patients. We did not find any evidence for an independent association between hyperhomocysteinemia and protein markers of endothelial cell function in healthy subjects.

Adult↗

Association between plasma homocysteine levels and P-wave dispersion in pediatric patients with hyperhomocysteinemia.

UNLABELLED: Hyperhomocysteinemia has been recognized as a cardiovascular risk factor associated with endothelial dysfunction, oxidative stress, and vascular inflammation. Experimental and clinical studies suggest that elevated homocysteine levels may also influence myocardial electrophysiology and contribute to arrhythmogenesis. However, data regarding the relationship between homocysteine levels and electrocardiographic markers of atrial conduction in pediatric populations remain limited. This study aimed to evaluate the association between plasma homocysteine levels and electrocardiographic parameters, particularly P-wave dispersion, in children. This multicenter retrospective case-control study included pediatric patients evaluated in four tertiary pediatric metabolism centers between January 2023 and December 2025. A total of 47 patients with hyperhomocysteinemia (plasma total homocysteine&#x2009;&#x2265;&#x2009;15&#xa0;&#xb5;mol/L) and 43 age- and sex-matched controls with normal homocysteine levels were included. Controls were selected from the screened population among children with available homocysteine measurements, electrocardiographic and echocardiographic evaluations, and no confirmed inherited metabolic disease or cardiac disorder. Clinical, biochemical, and electrocardiographic parameters, including maximum P-wave duration and P-wave dispersion, were retrospectively analyzed. A total of 90 participants were included, comprising 47 children with hyperhomocysteinemia and 43 healthy controls. P-wave dispersion and maximum P-wave duration were significantly higher in the hyperhomocysteinemia group compared with controls (48.96 [19.48-100.0] vs. 38.57 [10.57-71.19] ms, p&#x2009;<&#x2009;0.001). Plasma homocysteine levels showed a moderate positive correlation with P-wave dispersion (&#x3c1;&#x2009;=&#x2009;0.441, p&#x2009;<&#x2009;0.001). These differences were more pronounced in children with higher homocysteine levels and in younger age groups (<&#x2009;2&#xa0;years and 2-14&#xa0;years). In contrast, PR interval (p&#x2009;=&#x2009;0.790) and QTc interval (p&#x2009;=&#x2009;0.183) did not differ significantly between groups. Vitamin B12 levels were significantly lower in the hyperhomocysteinemia group (p&#x2009;=&#x2009;0.013), while folate levels were comparable (p&#x2009;=&#x2009;0.974). Although sodium, potassium, and magnesium levels differed significantly between groups, all values remained within normal physiological ranges. CONCLUSIONS: Children with hyperhomocysteinemia showed increased P-wave dispersion compared with controls. These findings suggest an association between elevated homocysteine levels and altered atrial conduction parameters in children. Further prospective studies are needed to determine the clinical significance of these findings. WHAT IS KNOWN: &#x2022; Hyperhomocysteinemia is associated with cardiovascular risk and endothelial dysfunction. &#x2022; Elevated homocysteine levels have been linked to cardiac electrophysiological alterations in adult populations. WHAT IS NEW: &#x2022; Elevated homocysteine levels are associated with increased P-wave dispersion in children, with more pronounced effects observed in younger age groups. &#x2022; These findings support an association between hyperhomocysteinemia and altered atrial conduction parameters in children.

Adolescent↗

Hyperhomocysteinemia induces liver injury in rat: Protective effect of folic acid supplementation.

Hyperhomocysteinemia, a condition of elevated blood homocysteine level, is an independent risk factor for cardiovascular diseases. Hyperhomocysteinemia is also found in patients with liver diseases. However, the direct effect of homocysteine on liver injury is not well known. Folic acid supplementation is a promising approach for improving endothelial function in patients with hyperhomocysteinemia. The aim of this study was to investigate the direct effect of hyperhomocysteinemia on liver injury and whether folic acid could offer any protective effect to the liver. Hyperhomocysteinemia was induced in rats fed a high-methionine diet for 4 weeks. There was a significant increase in the serum aspartate aminotransferase and alanine aminotransferase activities reflecting liver injury in hyperhomocysteinemic rats. Hepatic NAD(P)H oxidase was activated during hyperhomocysteinemia leading to increased superoxide anion production and peroxynitrite formation in the liver. As a consequence, the level of lipid peroxides was significantly elevated in livers of hyperhomocysteinemic rats. Folic acid supplementation effectively inhibited NAD(P)H oxidase-mediated superoxide anion production leading to reduced lipid peroxidation in the liver. Folic acid supplementation also alleviated hyperhomocysteinemia-induced liver injury. These results suggest that hyperhomocysteinemia can cause liver injury and supplementation of folic acid offers a hepatoprotective effect.

Animals↗

A 2-step strategy to reduce the need for methionine-loading tests to diagnose hyperhomocysteinemia.

An increased plasma homocysteine level may increase the risk of cardiovascular disease. The methionine-loading test is commonly used to detect additional subjects with hyperhomocysteinemia who have normal fasting levels of homocysteine but increased post-methionine-load levels. We developed a 2-step strategy to restrict the methionine-loading test to those subjects with intermediate fasting homocysteine levels to confirm the presence of hyperhomocysteinemia. Hyperhomocysteinemia was defined as a fasting plasma homocysteine level of 16.3 micro mol/L or greater in women and 18.8 micro mol/L or greater in men or an increase in plasma homocysteine level after methionine loading of more than 42.3 micro mol/L for both sexes. From the results in 201 patients, 50 years and younger, with manifest atherosclerosis who underwent a methionine-loading test, we derived cutoff points to define an intermediate group of patients who required a methionine-loading test for hyperhomocysteinemia to be ruled out. These cutoff points were validated in a different population of 275 cardiovascular patients of similar age. The prevalence of hyperhomocysteinemia was 30% in the derivation population and 24% in the validation population. To achieve a sensitivity of 90% in diagnosing hyperhomocysteinemia, we set cutoff points of 11.3 and 9.4 micro mol/L for men and women, respectively. When these cutoff points are applied, it is possible to avoid performing the methionine-loading test in 50% to 75% of subjects tested. With a 2-step strategy to diagnose hyperhomocysteinemia, a sensitivity of 90% for the diagnosis of hyperhomocysteinemia can be achieved, and the need for the methionine-loading test is reduced substantially, with 50% to 75% of subjects no longer needing it.

Adult↗

Hyperhomocysteinemia and risk for peripheral arterial occlusive disease in young women.

OBJECTIVE: Few studies to date have examined the relationship between hyperhomocysteinemia and peripheral arterial occlusive disease (PAOD) in young women. In this study we assessed hyperhomocysteinemia as a risk factor for PAOD in young women. In addition, we evaluated the effect of joint exposure to hyperhomocysteinemia and traditional risk factors. METHODS: Two hundred twenty women, ages 18 to 49 years, with PAOD and 629 healthy women (control group) from a population-based case-control study filled out the same structured questionnaire and donated venous blood samples for determination of plasma homocysteine levels. Hyperhomocysteinemia was defined as nonfasting total plasma homocysteine level above the 90th percentile of the control range. RESULTS: Young women with hyperhomocysteinemia had a 2.5-fold (95% confidence interval [CI], 1.7-3.9) increased risk for PAOD. When presence of hyperhomocysteinemia was combined with presence of a traditional risk factor, relative risk strongly increased in smokers (odds ratio [OR], 18.9; 95% CI, 8.3-42.9) and in women with hypertension (OR, 10.3; 95% CI, 5.4-19.8), hypercholesterolemia (OR, 8.5; 95% CI, 4.2-17.1), and diabetes (OR, 8.9; 95% CI, 1.7-46.9). CONCLUSIONS: Hyperhomocysteinemia is a risk factor for PAOD in young women. There is a strong synergistic effect between hyperhomocysteinemia and all traditional vascular risk factors. Our findings may have implications for risk management in these young women.

Adolescent↗

Endothelium-derived hyperpolarizing factor-mediated renal vasodilatory response is impaired during acute and chronic hyperhomocysteinemia.

BACKGROUND: Endothelial dysfunction is an early event in the development of vascular complications in hyperhomocysteinemia. Endothelial cells release a number of vasodilators, including NO and prostacyclin. Several lines of evidence have indicated the existence of a third vasodilator pathway, mediated by endothelium-derived hyperpolarizing factor (EDHF). EDHF is a major determinant of vascular tone in small resistance vessels. The influence of hyperhomocysteinemia on EDHF is unknown. The present in vivo study evaluates the integrity of the EDHF pathway in the renal microcirculation of rats with acute and chronic hyperhomocysteinemia. METHODS AND RESULTS: EDHF-mediated vasodilation was evaluated as the renal blood flow (RBF) response to intrarenal acetylcholine during systemic NO synthase and cyclooxygenase inhibition. Acute hyperhomocysteinemia induced by intravenous homocysteine did not affect EDHF-mediated vasodilation. In contrast, intravenous methionine with subsequent hyperhomocysteinemia impaired the EDHF-mediated RBF response. When the methionine infusion was preceded by adenosine periodate oxidized to prevent the cleavage of S-adenosylhomocysteine to homocysteine and adenosine, a similar impairment of EDHF was observed, but with normal homocysteine levels. Animals with chronic hyperhomocysteinemia induced by a high-methionine, low-B vitamin diet during 8 weeks had a severely depressed EDHF-mediated vasodilation compared with those on a standard diet. Endothelium-independent vasodilation to deta-NONOate and pinacidil was not affected in acute and chronic hyperhomocysteinemia, demonstrating intact vascular smooth muscle reactivity. CONCLUSIONS: EDHF-dependent responses are impaired in the kidney of hyperhomocysteinemic rats. Because EDHF is a major regulator of vascular function in small vessels, these findings have important implications for the development of microangiopathy in hyperhomocysteinemia.

Acetylcholine↗

[Hyperhomocysteinemia--a risk factor for development of occlusive vascular diseases].

INTRODUCTION: Occlusive vascular diseases take the first places on lists of diseases in general population today. In spite of this, all risk factors which contribute to development of these diseases are not yet known. Recent studies have shown that homocysteine plays a critical role in it and is established as a new risk factor. WHAT IS HOMOCYSTEINE?: Homocysteine is a sulfur containing amino acid formed in the metabolism of methionine. Reference values of homocysteine in circulation and different forms in plasma are described. HYPERHOMOCYSTEINEMIA--A RISK FACTOR: Homocysteine was associated with atherosclerosis and occlusive vascular disease in 1960s for the first time. Since then, many studies--prospective and retrospective, have confirmed the role of hyperhomocysteinemia as a risk factor in 42% of patients with cerebrovascular disease, 28% with peripheral vascular and 30% with coronary artery disease. The Physician's Health Study, a prospective study in which 15,000 male physicians took part, revealed that increase in homocysteine concentration of 1.7 mumol/l above normal values was associated by threefold higher risk for myocardial infarction. The risk for carotid artery stenosis also increases with elevation of homocysteine concentration. Hyperhomocysteinemia is associated with poor prognosis in patients with angiographically established coronary disease. Stroke, venous thromboembolism, and atherosclerosis in chronic renal failure are some of the complications of hyperhomocysteinemia. CAUSES OF HYPERHOMOCYSTEINEMIA: Hyperhomocysteinemia has numerous genetic and nongenetic etiologic factors. Cystathionine synthase deficiency, methylenetetrahydrofolate reductase deficiency and defects in the synthesis of cobalamin cofactors are genetically determined. Nutritional factors such as B12, folate or B6 vitamin deficiency, cofactors in homocysteine metabolism, lead to hyperhomocysteinemia. MECHANISMS OF HOMOCYSTEINE ACTION: Atherogenic propensity of homocysteine is related to endothelial dysfunction, blood thrombocyte aggregation changes in factors of coagulation. Oxidative stress is involved, but the exact mechanism is still unknown. CONCLUSION: Hyperhomocysteinemia is established as an important risk factor for occlusive vascular diseases. Reduction in homocysteine concentration can be achieved by supplementation of B-group vitamins, cofactors in homocysteione metabolism. Is it going to be effective in reducing cardiovascular risks remains to be seen.

Arteriosclerosis↗

[Factors associated with hyperhomocysteinemia in Crohn's disease].

AIMS: The incidence of thromboembolic disease is increased in patients with inflammatory bowel disease. Hyperhomocysteinemia is one of the risk factors for thrombosis. The aims were: 1) to assess the prevalence of hyperhomocysteinemia in a large series of patients with Crohn's disease; 2) to search for clinical and biological factors associated with hyperhomocysteinemia. PATIENTS AND METHODS: One hundred seventy-one patients with Crohn's disease (64 males, 107 females), median age 31 years (range: 16-82), were studied. The median duration of the disease was 7 years. The concentrations of homocysteine, folate, cobalamin and C-reactive protein were measured in serum from blood sample of each patient. RESULTS: The mean concentration of seric homocysteine was 14.8 micromol/L (N: 4.4 - 12.4 micromol/L). Hyperhomocysteinemia was observed in 89 patients (52%). It was significantly associated with age, sex, smoking habit, serum cobalamin level and history of ileal surgical resection (P<0.05). In the group of operated patients, there was a statistically significant association between hyperhomocysteinemia and the length of small bowel resected. In multivariate analysis, sex and smoking were associated with hyperhomocysteinemia. CONCLUSION: More than half of the patients with Crohn's disease have hyperhomocysteinemia. This result stresses the need for preventing reversible factors associated with hyperhomocysteinemia, such as smoking and cobalamin deficiency, in order to lower the thrombotic risk of patients with Crohn's disease.

Adolescent↗

Prevalence of moderate hyperhomocysteinemia in patients with early-onset venous and arterial occlusive disease.

OBJECTIVE: To evaluate the prevalence of moderate hyperhomocysteinemia and inherited thrombophilia disorders (congenital defects of the natural anticoagulant or fibrinolytic mechanisms) in patients with early-onset venous or arterial thromboembolic disease. DESIGN: Cross-sectional 2-year evaluation of consecutive unrelated patients with a history of venous or arterial occlusive disease occurring before the age of 45 years or at unusual sites, in the absence of local predisposing factors. SETTING: Thrombosis research unit of a community hospital. PATIENTS: 107 patients with venous thromboembolism (mean age at event, 32.9 +/- 11.9 years) and 50 patients with arterial occlusive disease (mean age at event, 31.1 +/- 10 years) who did not have acquired coagulation defects, overt cancer, or acquired conditions affecting methionine metabolism. MEASUREMENTS: Total plasma homocysteine (fasting levels), antithrombin III, protein C, protein S, activated protein C resistance, plasminogen, and heparin cofactor II were measured at least 3 months after the event. In 87 patients, total plasma homocysteine levels were also measured 8 hours after an oral methionine load was administered (L-methionine, 0.1 g/kg body weight). Ninety-fifth percentiles of the distribution of these variables were established in 60 apparently healthy persons; sex-specific ranges were used for protein S and total plasma homocysteine. Relatives of patients with laboratory abnormalities were studied to confirm inheritance of the defects. RESULTS: Moderate hyperhomocysteinemia was detected in 13.1% (95% CI, 7.6% to 21.3%) and in 19.2% (CI, 9.0% to 31.9%) of patients with venous or arterial occlusive disease. The prevalence of hyperhomocysteinemia was almost twice as high when based on homocysteine measurements done after oral methionine load as when based on fasting levels. The remaining defects were detected only in patients with venous occlusive disease (activated protein C resistance in 11.2% of patients, protein S or C deficiency in 6.6%, and plasminogen deficiency in 0.9%), with an overall prevalence of 18.7% (CI, 12.1% to 27.6%). Inheritance of hyperhomocysteinemia and of the other defects was confirmed in 26 of the 30 families studied. Event-free survival analysis showed that the relative risk for occlusive disease in patients with moderate hyperhomocysteinemia and other defects was 1.70 times (CI, 1.19 to 2.42; P < 0.01) greater than in patients without defects. After adjustment for the presence of predisposing factors (for example, use of contraceptive drugs, pregnancy, surgery, prolonged bedrest, smoking, mild hypertension or dyslipidemia) and a family history of thrombosis, the age at first event of patients with moderate hyperhomocysteinemia was similar to that of patients with the other defects (26.4 +/- 11.2 years compared with 25.2 +/- 10.6 years), and the 43 patients with defects were significantly younger at first event than the 114 patients without defects (25.5 +/- 11.1 years compared with 31.0 +/- 12.3; P < 0.005). Patients with mild hyperhomocysteinemia had a higher rate of recurrence than those without defects (52% compared with 25%; P = 0.01); among the 56 patients who had their first event more than 1 year before observation, the recurrence rate was higher (80% [CI, 51% to 95%]) in patients with defects than in patients without defects (41% [CI, 26% to 57%] P = 0.01). CONCLUSIONS: Moderate hyperhomocysteinemia may have pathogenic significance in premature venous and arterial occlusive disease and should be included among the (inherited) disorders of venous and arterial thrombophilia.

Adult↗