BACKGROUNDAsymmetric dimethylarginine (ADMA) is an endogenous inhibitor of nitric oxide synthase (NOS). Increased levels of ADMA cause impaired vasodilation, leading to endothelial dysfunction and a higher risk for cardiovascular events. In patients with a chronic kidney disease, increased ADMA levels are reported to play a role in the pathogenesis of accelerated atherosclerosis and are an independent risk marker leading to end-stage renal disease and mortality. Circulating ADMA is metabolized by the action of dimethylarginine dimethylamino hydrolase (DDAH) and DDAH2 isoform is the most prevalent in tissues expressing endothelial NOS. DDAH and NOS are co-expressed in the same kidney regional sites supporting the hypothesis that a strict and specific regulation of intracellular ADMA levels is crucial for NO generation in the kidney. Starting from these findings, the study aims to investigate the role of DDAH2 gene promoter polymorphism at position -1151 A/C in determining the levels of ADMA in type 2 diabetic patients (T2DM) with chronic renal impairment.METHODSThree groups of carefully selected subjects of both sexes were enrolled and compared. The first group (control subjects) comprised 286 non-diabetic subjects (mean age 55.8 ± 11.4 years), the second group (T2DM uncomplicated subjects) was made up of 322 T2DM subjects without complications (mean age 64.9 ± 9.6 years) whereas the third group (T2DM CRF subjects) included 110 T2DM patients with chronic renal impairment. The rs805304 DDAH2-1151 A/C promoter polymorphism was determined by a polymerase chain reaction-restriction fragment length polymorphism approach. Results T2DM CRF subjects showed significant increased plasma levels of ADMA with respect to those of T2DM uncomplicated subjects and control subjects (0.51 versus 0.39 versus 0.37 μmol/L, P = 0.002, respectively). Analysis of variance showed an interaction between DDAH2-1151 C carrier and groups on ADMA plasma levels (F = 4.36; P < 0.05). ADMA plasma levels were also dependent on groups (F = 4.96; P < 0.01).CONCLUSIONSOur work demonstrates that rs805304 DDAH2-1151 polymorphism plays a central role in determining ADMA in diabetic renal impairment, where patients with DDAH2-1151 C carriers showed the highest ADMA levels. This unfavourable genetic profile is highlighted by pathological kidney conditions such as diabetic CRF. These findings could open new insights on the pathways involving ADMA/DDAH/NOS in the development and progression of chronic renal impairment and therefore of the other micro- macrovascular diabetic complications.
Objective The key goal of diabetes management is to prevent complications. While the patho-physiological mechanisms responsible for diabetes complications have been extensively studied, at present it is impossible to predict which patient with diabetes could develop complications. In recent years, the role of leukocyte telomere length in the pathogenesis of cardiovascular disease and Type 2 diabetes has been investigated. However, studies aiming to investigate the role of telomeres in the development and progression of Type 2 diabetes, as well as diabetic complications, are still lacking. As a consequence, this study aimed to verify whether leukocyte telomere length is associated with the presence and the number of diabetic complications in a sample of patients with Type 2 diabetes.Methods This is a cross-sectional study. Nine hundred and one subjects were enrolled, including 501 patients with Type 2 diabetes, of whom 284 had at least one complication and 217 were without complications, and 400 control subjects. Leukocyte telomere length was measured by quantitative real-time PCR.Results Patients with diabetes complications had significantly shorter leukocyte telomere length than both patients without diabetes complications and healthy control subjects. Moreover, among patients with diabetes complications, leukocyte telomere length became significantly and gradually shorter with the increasing number of diabetes complications. The magnitude of the effect of the decrease of the abundance of telomeric template vs. a single-copy gene length (T/S ratio) on complications is described by the estimated odds ratio OR = 5.44 (95% CI 3.52-8.42).Conclusions The results of the study support the hypothesis that telomere attrition may be a marker associated with the presence and the number of diabetic complications.
Mitochondrial dysfunction has been implicated in rare and common forms of type 2 diabetes (T2DM). Additionally, rare mitochondrial DNA (mtDNA) mutations have been shown to be causal for T2DM pathogenesis. So far, many studies have investigated the possibility that mtDNA variation might affect the risk of T2DM, however, when found, haplogroup association has been rarely replicated, even in related populations, possibly due to an inadequate level of haplogroup resolution. Effects of mtDNA variation on diabetes complications have also been proposed. However, additional studies evaluating the mitochondrial role on both T2DM and related complications are badly needed. To test the hypothesis of a mitochondrial genome effect on diabetes and its complications, we genotyped the mtDNAs of 466 T2DM patients and 438 controls from a regional population of central Italy (Marche). Based on the most updated mtDNA phylogeny, all 904 samples were classified into 57 different mitochondrial sub-haplogroups, thus reaching an unprecedented level of resolution. We then evaluated whether the susceptibility of developing T2DM or its complications differed among the identified haplogroups, considering also the potential effects of phenotypical and clinical variables. MtDNA backgrounds, even when based on a refined haplogroup classification, do not appear to play a role in developing T2DM despite a possible protective effect for the common European haplogroup H1, which harbors the G3010A transition in the MTRNR2 gene. In contrast, our data indicate that different mitochondrial haplogroups are significantly associated with an increased risk of specific diabetes complications: H (the most frequent European haplogroup) with retinopathy, H3 with neuropathy, U3 with nephropathy, and V with renal failure.
Dysglycemia has been coined to define the prediabetic state. It defines high glucose levels below the diabetes "cut-offs." The negative effects of dysglycemia, leading to cardiovascular complications, are amplified during aging. Despite this knowledge, treatment of dysglycemia in old subjects is usually overlooked by clinical practice. This article deals with a new theory regarding an intensive therapeutic approach targeting aged people. This hypothesis arises from the recent theory of metabolic memory, which defines early imprinting due to hyperglycemia in cells of the vasculature and of target organs, favoring the development of vascular complications. In addition, metabolic memory determines a durable effect of hypoglycemic treatment that is much longer than the period of therapy. This new evidence could allow us to hypothesize that a treatment of dysglycemia in aged people could remodel their glucose "trajectory" during aging toward a more optimal one, leading to successful aging.
Plasminogen activator inhibitor 1 (PAI-1) is over-expressed during ageing and it has been linked to cellular senescence. Recently, PAI-1 has been also identified in vitro as a critical downstream target of p53. TP53, the p53 gene, has a common functional polymorphism at codon 72 which influences the capability to modulate both apoptosis and cell senescence. In the attempt to demonstrate an in vivo role of p53 in the relationship between PAI-1 and age, we studied PAI-1 on 570 healthy subjects (aged from 18 to 92yrs.). PAI-1 showed significant relationship with age (r=0.12, p=0.02). Stratifying by genotype, it became evident that the association between PAI-1 and age was mainly due to Pro/Pro subjects (partial r=0.75, p<0.01). These results have been confirmed by a validation study on an independent sample population of 496 subjects (aged from 18 to 94yrs.). This is the first demonstration of an in vivo role of TP53 polymorphism in PAI-1 regulation, supporting the hypothesis that the effects of this polymorphism are age-dependent. In particular, our results indicate that Pro/Pro genotype plays a pivotal role in determining PAI-1 levels in aged subjects, while in Arg carriers PAI-1 levels are associated to the known insulin related determinants.
Background. Chronic infections have been demonstrated to be early factors of atherosclerosis and cardiovascular diseases, and their relevance increases when they are caused by agents with extremely broad spectrum of disease outcome such as Helicobacter pylori. The consequent endothelial impairment leads to a reduced bioavailability of nitric oxide. Increasing evidences have pointed out that the endogenous inhibitor of nitric oxide synthase, asymmetric dimethylarginine, defined as a risk factor for cardiovascular disease, may increase in infections and plays an important role impairing the vascular functions of the endothelium. Starting from these findings, we aim to investigate whether H. pylori may affect asymmetric dimethylarginine levels.
Plasminogen activator inhibitor type 1 (PAI-1) is an independent cardiovascular risk factor and increases in patients with Type 2 diabetes mellitus. The 4G/5G polymorphism of PAI-1 has been reported to be involved in the incidence of cardiovascular disease by regulation of PAI-1 levels, but this relation is still under debate. The aim of the study was to test the effect of 4G/5G polymorphism on the lowering of PAI-1 levels in Type 2 diabetic patients during vitamin E supplementation. Ninety-three Type 2 diabetic subjects (age +/- SD, 62.1 +/- 6.1 yr) were enrolled and treated with vitamin E (500 IU/die) for 10 weeks. We determined the 4G/5G polymorphism and PAI-1 activity at baseline, during (5th and 10th week) and after (30th week) vitamin E supplementation. No significant differences were found in PAI-1 and its determinants among the three genotypic groups at baseline. Decrements were detected in the whole group in PAI-1 at the 5th and the 10th week from baseline followed by an increase at the 30th week (p<0.001). Patients with 4G/4G and 4G/5G genotypes showed a different trend with respect to those with 5G/5G in PAI-1. In particular, there was a decrease in 4G/4G and 4G/5G PAI-1 levels from the 10th week, while a decrease in 5G/5G PAI-1 was observed from the 5th week (p<0.01). The delayed decrease, found in patients with at least one 4G allele with respect to those with 5G/5G genotype, demonstrates that 4G/5G polymorphism mainly influences the rate of decrease of PAI-1 after supplementation with vitamin E in Type 2 diabetic subjects.
Plasminogen activator inhibitor-1 plasma level increases with age in subjects with the 4G allele at position -675 in the promoter region -
Asymmetric dimethylarginine (ADMA) is an emerging cardiovascular risk factor. Its increased levels have been hypothesized to be a cause of endothelial dysfunction in pathological conditions such as hypertension, dyslipidemia, renal failure, hyperglycemia, and hyperhomocysteinemia. It acts as a potent competitive inhibitor of nitric oxide synthase. Methods using ortho-phthaldialdehyde (OPA) as derivatization reagent are widely performed in HPLC determination of ADMA, but they produce derivatives whose fluorescence rapidly decreases during time. Moreover, these methods do not allow a clear separation of ADMA from its stereoisomer symmetric dimethylarginine (SDMA). Our work describes a new method to determine ADMA, SDMA, and arginine that uses, as derivatizing reagent, naphthalene-2,3-dicarboxaldehyde (NDA). Chromatograms with low background, showing a complete separation of ADMA and SDMA, are obtained. NDA derivatives are considerably more stable than the OPA derivatives. The calibration curves of ADMA and SDMA are linear within the range of 0.01–16.0 μM. Coefficients of variation are less than 1.7% for within day and less then 2.3% for day to day. Absolute mean recoveries from supplemented samples are between 100 and 104%. These characteristics make this method reliable and easily manageable for large routine analyses.
Background Data in the literature have not clarified whether type 2 diabetes mellitus affects homocysteine plasma levels. Different variables able to influence homocysteine could be the cause of these controversial findings. An important but neglected confounding factor is Helicobacter pylori, which has been demonstrated to be a cause of elevated levels of homocysteine and which is prevalent in the Caucasian population, ranging from 30 to 40% incidence. Starting from these findings we wanted to verify whether differences in homocysteine levels exist between a type 2 diabetic population and a control group, taking into account the presence/absence of Helicobacter pylori.Design The study was carried out on a group of uncomplicated and normotensive type 2 diabetic patients (n = 30, 55.7 +/- 9.7 years) and on a control group (n = 43, 51.2 +/- 11.3 years). On these subjects we evaluated: main parameters of glyco- and lipometabolic balance, presence of Helicobacter pylori by C-13 Urea Breath Test, plasma homocysteine, vitamin B-12, folate and genetic polymorphism of methylenetetrahydrofolate reductase.Results Evaluating the two groups as a whole, significant differences in homocysteine were found when considering Helicobacter pylori presence/absence (14.0 +/- 6.5 vs. 10.6 +/- 4.7 mumol L-1, respectively, P < 0.01) without differences of vitamins and the genetic polymorphism. of methylenetetrahydrofolate reductase. The positive interaction found among Helicobacrer pylori, diabetes and homocysteine (P = 0.03) taking into account all the other evaluated confounding factors, demonstrates that a significant difference in homocysteine plasma levels exists between diabetics and controls (Helicobacter pylori-negative: diabetics 12.5 +/- 5.6 mu mol L-1, controls 9.4 +/- 38 mu mol L-1; Helicobacter pylori-positive: diabetics 13.6 +/- 5.8 mu mol L-1 controls 14.3 +/- 7.0 mu mol L-1).Conclusions Type 2 diabetes seems to induce per se higher levels of homocysteine, which appears to be one of the factors responsible for the increased risk of vascular damage.
Background: Thiopental is an anaesthetic drug that is largely used in both short-term and long-term infusion. After long-term infusion of thiopental, non-linear and inter-individual-dependent pharmacokinetics occur because of the saturation and/or induction of the metabolism. Clinical monitoring is important so that therapeutic adjustments can be made in many of the different pharmacological treatments, especially when long-term infusion is required. We describe a new, rapid HPLC method for the determination of plasma thiopental. Methods: Sample preparation involved precipitation of plasma proteins using a mixture of methanoI, zinc sulfate and ethylene glycol, and containing the internal standard 5-ethyl-5-p-tolylbarbituric acid. After adding trichloroacetic acid, the sample was centrifuged and the supernatant was injected into a C,, reversed-phase column. The mobile phase used was water-methanol-acetonitriIe (50:40:10, v/v). The eluent was monitored at 290 nm. Results: The calibration curve was linear from 0.2 to 100 mug/mL. Precision, calculated as the coefficient of variation (%): was in the range of 3.62-0.70% for the within-day assay and 5.77-1.51% for the between-day assay. The absolute recoveries obtained from supplemented samples were never less than 100%. Conclusions: This technique shows good reliability and seems to be suitable for a very fast and simple therapeutic monitoring of plasma thiopental. (C) 2001 Elsevier Science B.V. All rights reserved.
Maturity Onset Diabetes of the Young (MODY) is an autosomal dominant monogenic form of type 2 diabetes mellitus (DM) representing 5% of youth-onset DM in the Caucasian population. In young adults the disease can be present as either non-insulin dependent or insulin-dependent DM. The diagnosis of this genetic disorder in children and adolescents is rare because of the mild glucose metabolism disorder at this time. We performed a metabolic, autoimmune and genetic study in 40 offspring of young parents affected by insulin-dependent DM (Group A) and in 35 offspring of young parents affected by early-onset non-insulin-dependent DM (Group B). Two children of Group A (5%) were found to be affected by fasting hyperglycemia and carry a GCK gene mutation that in one case was present also in the diabetic father. Eighteen offspring of Group B (51%) were positive for GCK or HNF-1alpha gene mutations present in the affected parents. All but two of these young patients had impaired fasting glucose (IFG) or impaired glucose tolerance (IGT). Eleven of them were younger than 16 years. We conclude that screening for DM in youth should be extended to MODY in young families with both non-insulin-dependent and insulin-dependent DM. The sensitivity of the metabolic tests will precede the genetic diagnosis.
HPLC analysis combined with fluorescence detection is one of the most effective and widely used techniques for the specific determination of total homocysteine in plasma (tHCY) (1)(2)(3)(4). These methods often use benzofurazanes as derivatization reagents that are considered to be specific for the thiol group of HCY (5)(6)(7)(8)(9)(10)(11)(12)(13)(14). The specificity of benzofurazanes for thiols should be questioned because benzofurazanes have been used as NH2 derivatization reagents (15)(16). Because HCY possesses both −SH and −NH2 groups, we asked whether the widely reported pH of sample derivatization (from 8 to 9.5) (8)(13)(14) ensures thiol-selective derivatization. We performed sample derivatizations at pHs of 7.5–10.5 and an HPLC method (8) for tHCY determination with some modifications. HCY, cysteamine, cysteine, cysteinylglycine, 7-fluoro-2,1,3-benzoxadiazole-4-sulfonamide (ABD-F), tris-carboxyethyl-phosphine, and other common reagents for the HPLC assay of tHCY were purchased from Sigma. Acetonitrile, isopropyl alcohol, and water, all HPLC grade, were obtained from Merck. The blood …
Previous studies hypothesised that vitamin E could protect against coronary heart disease and vascular complications in diabetes, but no studies have been performed regarding its eventual effects on fibrinolysis. Nevertheless, in Type 2 diabetes mellitus (T2DM) a profound reduction in the fibrinolytic activity has been demonstrated to be involved in vascular complications, probably due to plasminogen activator inhibitor type 1 (PAI-1) overproduction. On this basis we aimed to verify whether an antioxidant treatment with vitamin E is able to lower PAI-1 plasma levels in T2DM. Thirteen T2DM patients (9 males and 4 females; mean age+/-SD, 64.4+/-3.3 yr) were selected through strict admission criteria. These patients were treated with vitamin E (500 IU/die) for 10 weeks. Glyco-lipometabolic, oxidative and haemocoagulative parameters were evaluated at baseline and after 5, 10, 30 and 60 weeks. Vitamin E levels at different times were [median (interquartile range)] 6.1 (5.3-7.7), 8.5 (7.3-9.9), 9.7 (8.9-12.9), 5.6 (4.4-6.8), 5.7 (4.5-7.1) microg/ml, respectively. Significant differences were found for PAI-1 antigen (p=0.006), PAI-1 activity (p=0.028), apolipoprotein B (p=0.015) and antioxidant defence, evaluated as ferric reducing ability of plasma (FRAP) values (p=0.005). Particularly, decrements were detected for PAI-1 antigen between baseline and the 10th week (p<0.05), followed by an increase back to basal at the 30th week. Similar behaviour was found for PAI-1 activity. Regarding the antioxidant defence, FRAP values increased until the 30th week (p<0.05) with a decrease at the 60th week. These results demonstrate that vitamin E is able to lower PAI-1 levels in diabetic patients but this effect does not seem related to improvements of glycometabolic data or to the increase in FRAP values, suggesting that PAI-1 overproduction can be decreased by other effects of vitamin E on endothelial cells.
Background: Contradictory results have been reported in the literature concerning the correlation between glycosylated haemoglobin (HbA1c) and peroxidation level in serum of diabetic patients. Objective: To evaluate this correlation in type 2 diabetic patients by comparing the level of HbA1c with the oxygen radical absorbance capacity (ORACOH) of serum. Methods: One hundred and five type 2 diabetic patients were enroled for the study. After having obtained informed consent, venous blood samples were drawn after overnight fast at the time of routine diabetic check-ups. The blood was collected in plain and EDTA (1 mg/ml) tubes. Glycosylated haemoglobin (HbA1c) was determined by cation-exchange chromatography (HPLC), and spectrophotometric detection (Diamat Analyzer, BioRad). Serum was used for biochemical determinations performed by standard laboratory procedures and for ORACOH analysis. This last parameter was determined measuring the loss of β-phycoerytrin fluorescence due to oxidation by hydroxyl radicals generated by Cu2+ and H2O2, in the presence and absence of serum. Seventy-eight control age-matched subjects were obtained from the personnel staff of our Research Department and old healthy subjects, selected on the basis of Senieur Protocol, were relatives of the above mentioned personnel. Results: When the population of diabetic patients was taken as a whole, a decrease of ORACOH has been observed compared to the controls. Moreover, negative correlations were found comparing ORACOH either with HbA1c (r = –0.213; p = 0.029) and with the age of patients (r = –0.27; p = 0.005). To better understand the effect of age, the data were re-examined dividing the diabetics into two populations, i.e. under and over 65 years of age. An age-dependent decrease of ORACOH and an increase in HbA1c levels has been observed comparing these two populations; however, the correlation between the two parameters remained statistically significant only in the oldest group (r = –0.31; p = 0.026). Conclusions: Present data point to an involvement of oxidative stress in the glycation of haemoglobin especially in old diabetic patients, and provide support for the potential use of an antioxidant therapy in these patients, irrespective of their glycaemic control.