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[Molecular, cellular and clinical aspects of myocardial ischemia].

The authors summarize the fundamentals and actualities of the molecular and cellular background of myocardial ischaemia-reperfusion for the clinician. Metabolic changes following acute and chronic ischaemia and the role of free radicals, white blood cells, the endothelium, the heat shock proteins are reviewed. "New ischaemic syndromes" are important intrinsic adaptation mechanisms. Stunning is a transient contractile dysfunction following short periods of coronary occlusion in spite of restored perfusion. Hibernating myocardium is resulted after progressive chronic ischaemia including reversible contractile dysfunction, reduced metabolism and cellular dedifferentiation. Preconditioning means concomitant development of a protected state against lethal ischaemia after mild noxious stimuli. Several strategies are considered for myocardial cytoprotection based on the complex physiopathology of ischaemia-induced injury.

Apoptosis↗

Serum concentrations of somatomedins and growth hormone in relation to bone metabolism in acromegaly and thyroid dysfunction.

Many hormones are involved in the complex process of formation and resorption of bone. However, only somatomedin is found to directly stimulate cell replication and collagen synthesis in bone. This study was undertaken to examine a possible regulatory role of somatomedin in mediating the effects of growth hormone and thyroid hormones on bone metabolism. Bone metabolism and concentrations of somatomedins and growth hormones were studied in 17 acromegalic, 15 thyrotoxic and 14 hypothyroid patients, before and during treatment. During treatment of acromegalic and thyrotoxic patients parameters of bone turnover, both formation and resorption, decreased parallel to the decrease in concentration of somatomedin. During treatment of hypothyroid patients parameters of bone turnover increased. A positive correlation was found in acromegalic patients between changes in somatomedins and parameters of bone resorption (R = 0.82, P less than 0.01) as well as bone formation (R = 0.63, P less than 0.05) and in thyrotoxic patients between changes in somatomedin and bone resorption (R = 0.87, P less than 0.05). These data suggest that somatomedin may indeed play a role in the regulation of bone turnover. In addition, secondary effects on growth hormone concentrations were observed.

Acromegaly↗

Uric Acid-to-HDL Cholesterol Ratio is Associated with Hepatic Steatosis but Not Fibrosis in Nonobese Adults: A NHANES 2017-2020 Study.

BACKGROUND: Although metabolic dysfunction-associated steatotic liver disease (MASLD) has traditionally been regarded as a disease closely related to obesity, its prevalence is gradually rising in nonobese populations. The uric acid-to-high-density lipoprotein cholesterol ratio (UHR) is a novel metabolic biomarker that has been shown to be associated with MASLD. However, its role in nonobese individuals remains unclear. This study aimed to investigate the association between UHR and nonobese MASLD. METHODS: Data from the 2017 to 2020 National Health and Nutrition Examination Survey (NHANES) were analyzed. UHR was calculated as the serum uric acid (UA) divided by the high-density lipoprotein cholesterol (HDL). Liver steatosis (using controlled attenuation parameters, CAP) and fibrosis (using liver stiffness measurement, LSM) were evaluated through vibration-controlled transient elastography (VCTE). Multivariate linear regression was employed to evaluate associations. Nonlinear relationships were examined using smoothed curve fitting. RESULTS: This analysis included 3573 participants (47.41% male; aged 20-80 years). Log2-UHR was positively associated with CAP (&#x3b2; = 9.96, 95% CI: 6.93-12.98, P < 0.001) and MASLD prevalence (OR = 1.64, 95% CI: 1.38-1.95, P < 0.001). Subgroup analyses revealed significant interactions by sex, age, ethnicity, and smoking status (all P for interaction < 0.05), with stronger associations in females, adults aged 40-59 years, individuals of other Hispanic ethnicity, and never-smokers. Moreover, the association between log2-UHR and CAP was linear and positive (P < 0.01). No significant association was found between log2-UHR and LSM (P > 0.05). CONCLUSIONS: UHR is independently associated with hepatic steatosis but not fibrosis in nonobese US adults, suggesting its potential utility as an early risk assessment to tool. Large scale prospective studies are needed in the future to further validate the conclusions of this study.

Humans↗

Dietary restriction normalizes glucose metabolism and BDNF levels, slows disease progression, and increases survival in huntingtin mutant mice.

In addition to neurological deficits, Huntington's disease (HD) patients and transgenic mice expressing mutant human huntingtin exhibit reduced levels of brain-derived neurotrophic factor, hyperglycemia, and tissue wasting. We show that the progression of neuropathological (formation of huntingtin inclusions and apoptotic protease activation), behavioral (motor dysfunction), and metabolic (glucose intolerance and tissue wasting) abnormalities in huntingtin mutant mice, an animal model of HD, are retarded when the mice are maintained on a dietary restriction (DR) feeding regimen resulting in an extension of their life span. DR increases levels of brain-derived neurotrophic factor and the protein chaperone heat-shock protein-70 in the striatum and cortex, which are depleted in HD mice fed a normal diet. The suppression of the pathogenic processes by DR in HD mice suggests that mutant huntingtin promotes neuronal degeneration by impairing cellular stress resistance, and that the body wasting in HD is driven by the neurodegenerative process. Our findings suggest a dietary intervention that may suppress the disease process and increase the life span of humans that carry the mutant huntingtin gene.

Animals↗

Effects of dobutamine stimulation on myocardial blood flow, glucose metabolism, and wall motion in normal and dysfunctional myocardium.

BACKGROUND: This investigation examines the effects of inotropic stimulation on myocardial blood flow (MBF) and glucose metabolism (MRGlc) in dysfunctional myocardium through the use of positron emission tomography (PET). METHODS AND RESULTS: Nineteen patients with chronic coronary artery disease and 12 normal volunteers were studied with 13N-ammonia, 18F-deoxyglucose, and PET and with two-dimensional echocardiography at baseline and during intravenous dobutamine (5 to 10 micrograms/kg per minute). At rest, MBF in mismatch regions (n = 10) averaged 0.53 +/- 0.19 mL/g per minute and increased by 41.4 +/- 46.6% (P = .01) during dobutamine, whereas in match regions (n = 16) MBF was 0.28 +/- 0.09 mL/g per minute at rest without an increase during dobutamine (26.4 +/- 47.3%; NS). Myocardium with normal rest MBF was classified as normal remote (normal wall motion, n = 8) or abnormal remote (abnormal wall motion, n = 11). Dobutamine raised MBF similarly in normal subjects and in normal remote regions (by 82 +/- 85% and 84 +/- 42%, P < .01) but by only 33 +/- 34% in abnormal remote regions. MRGlc declined by 49 +/- 28% (P < .005) with dobutamine in the normal subjects, remained unchanged in normal and abnormal remote regions of the patients, but increased in mismatch and match regions (by 49 +/- 74% and 46 +/- 77%; P < .05). Wall motion improved with dobutamine only in mismatch and abnormal remote regions but not in match regions. CONCLUSIONS: Blood flow-metabolism mismatch patterns are not consistently associated with a fixed downregulation of MBF; the increased contractile work in response to dobutamine stimulation is associated with an increase in MBF and a greater reliance on glucose utilization, possibly reflecting acute ischemia or alterations in substrate selection by chronically dysfunctional myocardium. Importantly, functionally impaired though normally perfused myocardium frequently exists in chronic coronary artery disease patients and may represent repetitively stunned or, more likely, remodeled left ventricular myocardium.

Adult↗

Beneficial effect of magnesium on the isolated perfused rat heart during reperfusion after ischaemia: comparison between pre-ischaemic and post-ischaemic administration of magnesium.

The effect of high concentration of magnesium on both mechanical dysfunction and metabolic damage after ischaemia-reperfusion was studied in isolated rat hearts. The heart was perfused by the Langendorff's technique at a constant flow (10 ml/min) with modified Krebs-Henseleit solution and driven at 300 beats/min. The heart was made ischaemic by reducing the flow to 0 ml/min for 25 min, and then reperfused at the constant flow for 15 min. MgSO4 was added to the perfusate for 5 min before the onset of ischaemia, or after the end of ischaemia (after the onset of reperfusion). Ischaemia-reperfusion produced both mechanical dysfunction (as evidenced by an increase in the left ventricular end diastolic pressure and a decrease in the left ventricular developed pressure) and metabolic damage [as evidenced by a decrease in the myocardial adenosine triphosphate (ATP)]. When 15 mmol/l MgSO4 was given before ischaemia, there was no appreciable recovery of mechanical function, whereas when given after ischaemia (during reperfusion), there was a marked recovery of mechanical function. Lower concentrations (10 or 5 mmol/l) of MgSO4 given after ischaemia recovered the mechanical function concentration-dependently. The beneficial effect of 15 mmol/l MgSO4 was minimized by the coexistence of 4.5 mmol/l CaCl2 in the reperfusion solution. The decrease in the myocardial level of ATP induced by ischaemia-reperfusion was attenuated by 15 mmol/l MgSO4 given in the reperfusion solution. These results suggest that high Mg2+ is effective in attenuating both functional and metabolic damage of the post-ischaemic heart, provided it is given after ischaemia.

Adenosine Triphosphate↗

Linear ubiquitination prevents lipodystrophy and obesity-associated metabolic syndrome.

Adipocyte hypertrophy during obesity triggers chronic inflammation, leading to metabolic disorders. However, the role of adipocyte-specific inflammatory signaling in metabolic syndrome remains unclear. The linear ubiquitin chain assembly complex, LUBAC, is an E3-ligase that generates nondegradative linear ubiquitination (Lin-Ub). LUBAC regulates NF-&#x3ba;B/MAPK-driven inflammation and prevents cell death triggered by immune receptors like TNF receptor-1. Here, we show that mice lacking HOIP, the Lin-E3 ligase catalytic subunit of LUBAC, in adipocytes (HoipA-KO) display lipodystrophy and heightened susceptibility to obesity-induced metabolic syndrome, particularly metabolic dysfunction-associated steatotic liver disease (MASLD). Mechanistically, loss of HOIP attenuates TNF-induced NF-&#x3ba;B activation and promotes cell death in human adipocytes. Inhibiting caspase-8-mediated cell death is sufficient to prevent lipodystrophy and MASLD in HoipA-KO obese mice. HOIP expression in adipose tissue positively correlates with metabolic fitness in obese individuals. Overall, our findings reveal a fundamental developmental role for Lin-Ub in adipocytes by mitigating cell death-driven adipose tissue inflammation and protecting against obesity-related metabolic syndrome.

Animals↗

Homocysteine and cognitive function in elderly people.

Dementia is highly prevalent among elderly people, and projections show that the number of people affected might triple over the next 50 years, mainly because of a large increase in the oldest-old segment of the population. Because of this and the disease's devastating effects, measures for the prevention and early detection of dementia are crucial. Age and years of education are among the most relevant risk factors for dementia, but in recent years the role of homocysteine has also been investigated. Homocysteine is an amino acid produced in the metabolism of methionine, a process dependent on the B vitamins cobalamin, vitamin B6 and folic acid. There is evidence that increased serum homocysteine levels are associated with declining cognitive function and dementia. We review this evidence in addition to the potential mechanisms through which homocysteine acts on the brain to cause cognitive dysfunction, the metabolism of homocysteine and factors associated with alteration of the normal metabolism.

Aged↗

[Protective effect of monoclonal antibody of tumor necrosis factor-alpha for vital organs in a model suffering from intestinal ischemia and reperfusion injury].

Monoclonal antibody to tumor necrosis factor-alpha (TNFa-MAb), z8, was used to explore protective effect on multiple organ dysfunction caused by intestinal ischemia and reperfusion in rats. Systemic plasma TNF level rose rapidly after release of the clamp, on superior mesenteric artery, and reached peak level 2 hours later. Endotoxemia and bacteremia were associated with systemic TNF level, and portal endotoxin concentration increased significantly before elevation of TNF activity. Pretreatment with anti-TNFa antibody markedly attenuated the increase of TNF level and provided protection from the development of hypotension, vital organ dysfunction, and metabolic acidosis. As a result the survival rate in treatment group increased by 35.7%. Our results demonstrated that TNF might play an important role in mediating the pathophysiologic changes in the pathogenesis of multiple organ damage in this intestinal ischemia-reperfusion injury model, and monoclonal antibody to TNF offered significant protection against multiple organ dysfunction or failure after severe trauma.

Animals↗

Skeletal muscle mitochondrial protein metabolism and function in ageing and type 2 diabetes.

PURPOSE OF REVIEW: Mitochondria are the site of oxidative substrate utilization to produce adenosine triphosphate for normal tissue function. Tissue substrate utilization is impaired in ageing and type 2 diabetes. Defects in mitochondrial gene expression, protein synthesis and function occur with ageing in various tissues including skeletal muscle, and are emerging in individuals with type 2 diabetes. The current review will discuss advances in the understanding of skeletal muscle mitochondrial alterations associated with age and type 2 diabetes. RECENT FINDINGS: Insulin acutely stimulates skeletal muscle mitochondrial protein synthesis and adenosine triphosphate production. These insulin effects are impaired in insulin-resistant patients with type 2 diabetes who also exhibit defective basal muscle mitochondrial function. The age-related reduction in mitochondrial adenosine triphosphate production has been confirmed in vivo in skeletal muscle in humans and rodents. SUMMARY: The emerging concept that insulin stimulates mitochondrial protein synthesis and function indicates potential novel molecular mechanisms of metabolic defects in type 2 diabetes, particularly in the post-prandial period characterized by acute increments of plasma insulin concentrations. The potential relationship between insulin resistance and basal post-absorptive muscle mitochondrial defects should be further investigated. As ageing is characterized by insulin resistance, the hypothesis that impaired insulin action could contribute to age-related muscle mitochondrial dysfunction, and metabolic alterations should be addressed.

Adenosine Triphosphate↗

[Interaction between sildenafil and calcineurin inhibitors in renal transplant recipients with erectile dysfunction].

AIM: Hepatic metabolism of sildenafil uses the same metabolic pathway as the calcineurin inhibitors (cyclosporine/tacrolimus), through the CYP3A4 isoenzyme. The aim of this pilot study was to evaluate the potential interaction between sildenafil therapy and circulating levels of cyclosporine and tacrolimus in a group of steady-state renal transplant recipients with erectile dysfunction. MATERIAL AND METHODS: A prospective pilot study of sildenafil interactions was carried out in 9 stable male renal transplant recipients with severe erectile dysfunction (mean age 50 +/- 8 years, range 38-64). All patients were receiving therapy with calcineurin inhibitors (5 with cyclosporine and 4 with tacrolimus). Erectile dysfunction was evaluated by clinical history, physical examination, International Index of Erectile Function (IIEF) questionnaire and the nocturnal penile tumescence test (RigiScan). Each patient received a first dose of 50 mg of sildenafil, one hour before sexual activity and a second dose at 72 hours of 50 or 100 mg according to the clinical response to the first dose. We evaluated the efficacy and safety of sildenafil and the evolution of cyclosporine-tacrolimus levels. Cyclosporine and tacrolimus trough whole blood concentrations were determined in basal conditions (before starting sildenafil) and on days 1, 4 and 7 after sildenafil therapy. RESULTS: Eighty-nine percent of patients (n = 8) required a complete 100 mg dose of sildenafil. There was a positive clinical response in two-thirds of cases (6 patients). In 5 patients (55%) sildenafil administration produced a complete response, in one patient the response was incomplete, and in the remaining 3 cases (33%) no clinical response was observed. Associated side effects included self-limited tachycardia in one patient and mild visual disturbances in another. Cyclosporine and tacrolimus levels remained stable in all patients. There were no significant differences in circulating levels of cyclosporine (basal 120 +/- 47; day 1: 116 +/- 55; day 4: 123 +/- 56 and day 7: 121 +/- 56 ng/ml p = NS) or tacrolimus (basal 11.6 +/- 1.3; day 1: 11.9 +/- 1.3; day 4: 11.1 +/- 1.0 and day 7: 11.8 +/- 0.9 ng/ml p = NS) over the study period. CONCLUSIONS: Sildenafil therapy is safe and effective for the treatment of erectile dysfunction in renal transplant recipients. Recommended therapeutic doses of sildenafil did not modify cyclosporine and tacrolimus trough blood levels.

Adult↗

Flow-cytometric analysis of reactive oxygen species in peripheral blood mononuclear cells of patients with thyroid dysfunction.

BACKGROUND: Thyroid hormones are major regulators of energy metabolism and increased levels of the hormones (hyperthyroidism) results in an increase in the metabolic rate. Thyroid dysfunction causing alteration in hormone secretion leads to perturbations in the metabolic status. The hypermetabolic state may cause increased generation of reactive oxygen species (ROS), leading to oxidative stress in these patients. This study was carried out to verify our proposition by measuring the ROS in the terminally differentiated cells like the peripheral blood mononuclear cells of the patients. METHODS: Flow-cytometric analysis of the ROS was carried out using 2',7' dichlorofluorescein diacetate in the isolated peripheral blood mononuclear cells of the subjects. RESULTS: ROS generation was found to be 3-folds higher in hyperthyroids as compared with euthyroids and hypothyroids and this was not found to be gender specific. CONCLUSIONS: Hyperthyroidism results in ROS generation in patients, which can be detected flow cytometrically in the peripheral blood mononuclear cells. Hence, this could complement the other thyroid function tests facilitating the diagnosis and design of appropriate therapy.

Adult↗

Both systolic and diastolic dysfunction characterize nonischemic inhibition of myocardial energy metabolism: an experimental strain rate echocardiographic study.

BACKGROUND: Ischemia is primarily a metabolic event. However, regional functional changes can be affected by structural alterations. We developed an experimental model of sole myocardial energy metabolism inhibition and characterized the resulting regional dysfunction. METHODS: In 12 pigs, we regionally inhibited creatine kinase (CK) and, consequently, myocyte high-energy phosphate transfer by intracoronary administration of iodoacetamide. Myocardial biopsies for CK activity and structural analyses and strain rate (SR) echocardiography scans were obtained at baseline and 60 minutes after iodoacetamide administration. Plasma levels of the CK isoenzyme MB and troponin I were assessed to determine possible myocardial damage. RESULTS: CK activity in the iodoacetamide-perfused myocardium decreased to 0.5% of the original value and was accompanied by a reduction in peak systolic SR ( P < .0001), end-systolic strain ( P < .0001), and peak SRs of myocardial early and late filling waves ( P < .0001). Microscopy showed contracture without sarcomere disruption. Plasma levels of CK isoenzyme MB and troponin I did not change. CONCLUSIONS: Regional inhibition of myocyte energetics leads to both systolic and diastolic dysfunction by SR echocardiography, but the presence of a residual phosphotransfer protects microstructural integrity.

Animals↗

Metabolic, neuroendocrine and immune functions in basal conditions and during the acute-phase response to endotoxic shock in undernourished rats.

Chronic malnutrition is one of the most important causes of several metabolic, immune and neuroendocrine dysfunctions. The aim of the present study was to determine the influence of chronic food restriction on basal neuroendocrine, immune and adipocyte functions and during the acute-phase response to endotoxic shock in female rats. The effect of refeeding of undernourished rats on the above-mentioned functions was also investigated. For these purposes, plasma total protein, glucose, triglycerides, ACTH, corticosterone, tumor necrosis factor-alpha (TNF) and leptin (LEP) levels were determined in basal condition and 2 h after endotoxin (LPS; 180 microgram/kg body weight, i.p.) administration in 3 different groups: (1) well-nourished (WN) controls; (2) undernourished (UN) rats as a consequence of chronic food restriction, and (3) UN rats re-fed to restoration of their body weights in the WN rat range. The results indicate that UN rats, in comparison with WN controls, developed an arrest in body weight gain as well as in basal hypoglycemia, hypotriglyceridemia, hypoleptinemia, hypercorticosteronemia and enhanced adrenal glucocorticoid content; however, no changes in basal total protein, ACTH and TNF plasma levels and in anterior pituitary ACTH concentrations were found. When endotoxic shock was induced, the LPS-induced hypoglycemia developed in WN rats was abolished in UN animals, and both ACTH and TNF plasma concentrations after endotoxin, albeit significantly (p < 0.05) higher than the respective basal values, were significantly (p < 0.05) lower in UN than in WN control rats. Despite the high basal plasma corticosterone concentration in UN vs. WN rats, the LPS-induced glucocorticoid release was similar in WN and UN rats. Additionally, LPS treatment did not modify basal plasma LEP levels, regardless of the group. Interestingly, UN rats fed ad libitum for 15 days restored their body weight to WN rat range values, and the various metabolic dysfunctions seen in UN rats in both basal and post-LPS conditions were fully normalized. Our results clearly indicate that chronic undernutrition not only affects, as earlier described, reproductive function but also metabolic, neuroendocrine, immune and adipocyte functions, and that the effects induced by undernutrition can be fully reversed after recovery of normal body weight. The present study strongly supports the involvement of the metabolic status in the effectiveness of the defense mechanisms developed in patients in inflammatory stress conditions.

Acute-Phase Reaction↗

Type A behavior and vital exhaustion as related to the metabolic hormonal variables of the hypothalamic-pituitary-adrenal axis.

The authors examined the correlations of Type A behavior and vital exhaustion with the metabolic hormonal variables of the hypothalamic-pituitary-adrenal axis (ACTH and cortisol), as well as with the ensuing parameters (insulin, glucose, and C-peptide). The participants were 64 healthy middle-aged men with stressful work. The authors found that Type A behavior and vital exhaustion were not correlated but made independent contributions to the single metabolic hormonal variables. The central finding was that when the whole HPA axis, Type A behavior, and exhaustion were all analyzed at the same time, Type A behavior per se had different, even opposite, hormonal correlates from Type A behavior associated with vital exhaustion. Type A behavior by itself was not related to a metabolic hormonal dysfunction. However, the Type A by vital exhaustion interaction was statistically significant. This finding suggests that the quality or components of Type A behavior, particularly the presence of vital exhaustion, may be more important than the intensity of Type A behavior considered alone.

Adrenocorticotropic Hormone↗

Paradoxical role of lipid metabolism in heart function and dysfunction.

The heart utilizes fatty acids as a substrate in preference to glucose for the production of energy. The rate of fatty acid uptake and oxidation by heart muscle is controlled by the availability of exogenous fatty acids, the rate of acyl translocation across the mitochondrial membrane and the rate of acetyl-CoA oxidation by the citric acid cycle. Carnitine acyl-CoA transferase appears to have an important function in coupling the fatty acid activation and acyl transfer to the oxidative phosphorylation. Activated fatty acids are also utilized for the synthesis of triglycerides and membrane phospholipids in the myocardium. The inhibition of long chain acyl-carnitine transferase I reduces the oxidation of fatty acids and promotes the synthesis of lipids in the myocardium. Accumulation of fatty acids and their metabolites such as long chain acyl-CoA and long chain acyl-carnitine has been associated with cardiac dysfunction and cell damage in both ischemic and diabetic hearts. Alterations in the composition of membrane phospholipids are also considered to change the activities of various membrane bound enzymes and subsequently heart function under different pathophysiological conditions. Chronic diabetes was found to be associated with increased plasma lipids, subcellular defects and cardiac dysfunction. Lowering the plasma lipids or reducing the oxidation of fatty acids by agents such as etomoxir, an inhibitor of palmitoylcarnitine transferase I was found to promote glucose utilization and remodel the subcellular membranous organelles in the heart.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Triphosphatases↗

[Metabolic aspects of hemodynamic behavior in left ventricular hypertrophy by 13C NMR].

During myocardial hypertrophy, histological modifications induce a partial ischemic state and hemodynamic perturbations are responsible for an increased myocardial oxygen demand. The purpose of this study is to better characterize the alterations of intermediary metabolism linked to hemodynamic perturbations by carbon 13 NMR using enriched substrates. Left ventricular hypertrophy was consecutive to a renal hypertension (Goldblatt 2K-1C, 9 weeks). Myocardial compliance and contractility (left ventricular end diastolic pressure (LVEDP), +dP/dt max, +dP/dt max normalized to developed pressure (+dP/dt max/DEVP)) were estimated on Langendorff isolated perfused hearts at a constant perfusion pressure (normo and hypertensive rats (RHR)). Using (2-13C) acetate enriched (10 nm) substrate, 13C NMR spectra were obtained from tissue perchloric extracts. Mathematical model proposed by Malloy was used to analyze these 13C NMR spectra terms of metabolic fluxes: Fc2 = The fraction of (2-13C) acetyl-CoA entering the tricarboxylic acid cycle; y = The ratio between the activity of anaplerotic reactions to that of citrate synthetase. The results showed after hypoxia: an increase of LVEDP more pronounced in RHR (RHR: 48 +/- 15 mmHg VS SHAM: 22 +/- 6 mmHg, p < 0.01); a significant impairment of coronary blood flow more important in RHR; a significant increase of the ratio y in hypertrophied hearts (RHR: 0.062 +/- 0.09 VS SHAM: 0.15 +/- 0.02, p < 0.05). In conclusion, this study allowed a new approach to correlate diastolic dysfunction with metabolic data consecutive to an increased sensitiveness hypertrophy to hypoxic damages.

Animals↗

Role of fatty acids and eicosanoids in modulating proteoglycan metabolism in endothelial cells.

Endothelial cell dysfunction is considered to be a critical event in the etiology of atherosclerosis. Thus, the preservation of endothelial structure and function are a prerequisite for normal control of vascular permeability properties, mediation of both inflammatory and immunologic responses and the general 'communication' between blood-borne cells and abluminal tissues. Many of these properties can be influenced by proteoglycans present in vascular tissues. There is evidence that selected lipids can be atherogenic by altering endothelial proteoglycan metabolism. Little is known about the role of fatty acids in modulating proteoglycan composition in endothelial cells. Data suggest, however, that linoleic acid in particular can adversely alter proteoglycan metabolism, which may be related to an imbalance in eicosanoid synthesis patterns. These events could be sufficient to disrupt normal endothelial barrier function, initiate smooth muscle migration and proliferation, and result in other metabolic dysfunctions associated with the etiology of vascular diseases such as atherosclerosis. Thus, the focus of this review is on fatty acids and eicosanoids as they may alter proteoglycan metabolism of vascular tissues and in particular of the endothelium.

Animals↗