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Biomedical subjects

G Lembo

Publications and source records attributed to G Lembo.

At least 37 records · Page 2Linked to original sources

Contact sensitization to 6 alpha-methylprednisolone aceponate.

Increasing attention has been focused on contact sensitization to topical corticosteroids in the past several years. In most cases, allergy to topical corticosteroids occurs in patients with long-lasting eczematous diseases. Cross-allergy between topical corticosteroid molecules is very common, and four groups of cross-reacting molecules have been recognized. In this report, we describe a girl with atopic dermatitis and sensitized to hydrocortisone-17-butyrate who became sensitized to 6 alpha-methylprednisolone aceponate. Cross-sensitization between the two molecules is suggested.

Administration, Topical↗

Elevated blood pressure and enhanced myocardial contractility in mice with severe IGF-1 deficiency.

To circumvent the embryonic lethality of a complete deficiency in insulin-like growth factor 1 (IGF-1), we generated mice homozygous for a site-specific insertional event that created a mutant IGF-1 allele (igf1m). These mice have IGF-1 levels 30% of wild type yet survive to adulthood, thereby allowing physiological analysis of the phenotype. Miniaturized catheterization technology revealed elevated conscious blood pressure in IGF-1(m/m) mice, and measurements of left ventricular contractility were increased. Adenylyl cyclase activity was enhanced in IGF-1(m/m) hearts, without an increase in beta-adrenergic receptor density, suggesting that crosstalk between IGF-1 and beta-adrenergic signaling pathways may mediate the increased contractility. The hypertrophic response of the left ventricular myocardium in response to aortic constriction, however, was preserved in IGF-1(m/m) mice. We conclude that chronic alterations in IGF-1 levels can selectively modulate blood pressure and left ventricular function, while not affecting adaptive myocardial hypertrophy in vivo.

Adenylyl Cyclases↗

Insulin modulation of beta-adrenergic vasodilator pathway in human forearm.

BACKGROUND: Insulin modulates sympathetic vasoconstriction, but the mechanisms underlying this effect are not completely elucidated. We have recently investigated the insulin effect on the alpha 1- and alpha 2-adrenergic vasoconstriction pathway, where it is still conflicting with the possible insulin influence on the beta-adrenergic vasodilator pathway. The aim of the present study was to investigate this issue. METHODS AND RESULTS: The study was performed on the forearm of healthy humans, and all test substances were infused into the brachial artery at systemically ineffective rates. In five subjects, we evaluated isoproterenol-induced vasodilation (1, 3, 6, and 9 ng. kg-1. min-1) both under control conditions and during insulin infusion (0.05 mU. kg-1. min-1). In another group of five subjects, we tested whether the vasorelaxant effect of sodium nitroprusside (1, 2, 4, and 8 ng . kg-1 . min-1) was modified by insulin. Moreover, to explore whether the interaction between insulin and forearm beta-adrenergic pathway participates in insulin modulation of sympathetic-evoked vasoconstriction, we measured in six normal subjects the forearm vascular response to lower-body negative pressure under control conditions and during intrabrachial infusion of insulin alone and in combination with a selective beta-adrenergic blocking agent (propranolol 10 micrograms/100 mL per minute). Finally, to verify whether insulin interaction with the beta-adrenergic pathway may also account for insulin modulation of alpha 2-adrenergic vasoconstriction, we assessed the vascular response to a selective alpha 2-adrenergic agonist before and after propranolol administration. Insulin exposure potentiated the vascular responsiveness to isoproterenol but did not affect the vasodilator response to sodium nitroprusside. Furthermore, the insulin-induced attenuation of sympathetic vasoconstriction was partially corrected by propranolol. In contrast, the insulin modulation of alpha 2-adrenergic vasoconstriction was not influenced by beta-adrenergic blockade. CONCLUSIONS: Taken together, our results suggest that insulin modulation of sympathetic-induced vasoconstriction is carried out through an interaction of the hormone with the pathways of both alpha 2-and beta -adrenergic receptors.

Adrenergic beta-Antagonists↗

Statistical evaluation of the persistence of acquired hypersensitivity by standardized patch tests.

Numerous studies have focused attention on the influence of various biological and environmental factors on contact hypersensitivity. In order to evaluate the persistence and/or modification of allergic contact sensitivity to a number of common contact sensitizers, the same standardized patch tests were repeated on 174 subjects with contact sensitivity after a time lapse of 5 years (1987-1992). In 18.4% of the cases, 1 or more sensitivities were lost; 28.7% of the patients had a higher number of positive patch tests after 5 years, while the remaining 52.9% of the patients showed no change in the number of positive patch tests. In 88%, the positive allergens were unchanged, whereas in the remaining 12% of the subjects, they showed 1 or more variations. The association between the allergens most often positive was calculated for both the 1st and the 2nd patch test results. Moreover, to evaluate the frequency of an allergen's positivity, we studied the disappearance of old sensitivities and the appearance of new sensitivities by the McNemar test. Cobalt chloride was the only allergen with a significant frequency of new positivities over the period of observation (p < 0.01). Logistic regression analysis was performed to evaluate the possible influence of positive tests to other allergens, and of some clinical findings associated with contact dermatitis, on the sensitivity to cobalt chloride in 1987 and in 1992.

Adult↗

The crosstalk between insulin and the sympathetic nervous system: possible implications in the pathogenesis of essential hypertension.

Patients with non-insulin dependent diabetes mellitus and obesity show an elevated risk for development of arterial hypertension, while many non-obese, non-diabetic patients with essential hypertension display resistance to insulin-induced glucose disposal, accompanied by hyperinsulinaemia. This close association has lead some investigators to postulate that insulin resistance could be implicated in the pathogenesis of essential hypertension. Among the various factors considered as potential links between insulin resistance and high blood pressure, the sympathetic nervous system can be considered a prime candidate. In particular, our recent data in hypertensive patients have documented that the muscle sympathetic response evoked by insulin is about threefold greater than that observed in normal subjects. Such finding is well in agreement with previous observations in hypertensives obtained with experimental maneuvers and extends them by showing an abnormal sympathetic response to a physiological stimulus like insulin, so important in every day life. Recent data both from our and other laboratories have clearly established that an acute activation of sympathetic nervous system is able to antagonize insulin-mediated glucose uptake in the skeletal muscle, making very real the possibility that a primary defect in insulin sensitivity in hypertension may be further aggravated by the greater sympathetic response evoked by episodic stimuli, such as postprandial hyperinsulinaemia. However, while insulin evokes an increase in sympathetic nervous activity, at same time it is able to blunt the vasoconstrictive effects caused by the reflex sympathetic activation. Such vascular modulating effect of insulin is lost in essential hypertension, indicating that the resistance to insulin effect in this disease is not only present in skeletal muscle metabolism but it is also evident at the vascular level.

Blood Glucose↗

Insulin modulation of vascular reactivity is already impaired in prehypertensive spontaneously hypertensive rats.

Hyperinsulinemia reduces the vasoconstrictive response to norepinephrine in Wistar-Kyoto rats (WKY) but not in spontaneously hypertensive rats (SHR). It has been hypothesized that this difference in the vascular effect of insulin could be a hallmark of the hypertensive state. To test this hypothesis we studied SHR before (5 weeks old, n = 10) and after (15 weeks old, n = 10) the establishment of hypertension as well as two groups of age- and sex-matched WKY (5 weeks old, n = 14; 15 weeks old, n = 13). Blood pressure was significantly higher in SHR compared with WKY (181 +/- 5 versus 118 +/- 6 mm Hg, respectively, P < .001) in the 15-week-old rats but not in the 5-week-old rats (121 +/- 5 versus 117 +/- 3 mm Hg, P < NS). We tested vascular reactivity using increasing amounts of norepinephrine (from 10(-10) to 10(-5) mmol/L) on isolated aortic rings in control conditions and after 30 minutes of exposure to 715 pmol/L insulin. In WKY insulin reduced the vascular response to norepinephrine in both the 5-week-old (repeated-measures ANOVA with grouping factor: F = 2.443, P < .05) and 15-week-old (F = 9.667, P < .01) groups. In SHR at both ages insulin failed to modify the vascular response to norepinephrine (5 weeks: F = 0.107, P < NS; 15 weeks: F = 0.075, P < NS). Sodium nitroprusside was able to attenuate the vascular response to norepinephrine in WKY and SHR at 5 and 15 weeks.(ABSTRACT TRUNCATED AT 250 WORDS)

Age Factors↗

[Arterial hypertension and atherosclerosis: their epidemiology and physiopathology].

Several epidemiologic studies have demonstrated that hypertensive patients have an increased risk for the development of atherosclerosis. Although the appearance of atherosclerosis only in those parts of vascular system subjected to high blood pressure suggests that the mechanical stress is the principal factor involved in the development of atherosclerosis, the mechanisms underlying the linkage between hypertension and atherosclerosis are not yet completely understood. In fact, the evidence that antihypertensive treatments are not able to abolish the increased incidence of ischemic accidents in hypertensive patients suggests that other cellular and molecular mechanisms are involved in the pathogenesis of atherosclerosis. The pathogenesis of hypertension is a multifactorial process that involves the interaction of genetic and environmental factors which determine the abnormalities of volume regulation, the enhanced vasoconstriction and the remodeling of the arterial wall which is characterized by hypertrophy and proliferation of vascular smooth muscle cells. On the other hand, the increased growth response of vascular smooth muscle cells represents one of the principal characteristics of atherosclerosis. Thus, increased vascular smooth muscle cell growth is a common feature in the pathogenesis of both atherosclerosis and hypertension.

Arteriosclerosis↗

Acute noradrenergic activation induces insulin resistance in human skeletal muscle.

We assessed in normal subjects the effects of an acute increase in forearm norepinephrine (NE) release, evoked by -20 mmHg lower body negative pressure (LBNP), on insulin-mediated muscle glucose uptake. Seven normal subjects underwent the following two insulin euglycemic clamps in random sequence: one during application of LBNP and the other without LBNP (control study). In the control study, hyperinsulinemia (approximately 60 microU/ml) produced a significant increment in forearm NE release, measured by using the forearm perfusion technique combined with infusion of tritiated NE (from 4.91 +/- 1 to 7.94 +/- 1.33 ng.l-1.min-1; P < 0.05). Forearm glucose uptake rose from 0.97 +/- 0.13 to 5.2 +/- 0.2 mg.l-1.min-1 in response to insulin infusion. When the insulin clamp was performed during LBNP, forearm NE release rose to significantly higher values than those of the control study (from 4.33 +/- 0.52 to 12.7 +/- 1.46 ng.l-1.min-1; P < 0.01 vs. control). Under these conditions, the stimulatory effect of insulin on forearm glucose uptake was markedly reduced (from 0.78 +/- 0.10 to 3.2 +/- 0.7 mg.l-1.min-1; P < 0.02 vs. control). Forearm blood flow and plasma epinephrine and free fatty acid concentrations were comparable in the two study sessions. These data demonstrate that an acute activation of endogenous NE release antagonizes insulin-mediated glucose uptake in forearm skeletal muscle, probably accounted for by a direct metabolic effect of NE.

Adult↗

Insulin blunts sympathetic vasoconstriction through the alpha 2-adrenergic pathway in humans.

We investigated the mechanisms underlying the insulin-induced attenuation of sympathetic forearm vasoconstriction in healthy humans. In 5 subjects, we applied 20 mm Hg lower body negative pressure for 30 minutes in control conditions and during a 60-minute infusion of insulin (0.05 mU/kg per minute) in the brachial artery and measured forearm norepinephrine kinetics and hemodynamics. In 11 subjects, we applied graded lower body negative pressure at 5, 10, 15, and 20 mm Hg for 5 minutes each in control conditions and during the simultaneous intrabrachial administration of insulin (0.05 mU/kg per minute) (5 subjects) or insulin plus ouabain (3.5 micrograms/min per liter) (6 subjects) to investigate whether insulin acts through a potentiation of the vascular smooth muscle Na+,K(+)-ATPase. To assess a possible effect of insulin on a specific adrenergic receptor pathway, in a further study group we evaluated (1) the forearm vascular response to intrabrachial infusion of the alpha 1-adrenergic receptor agonist phenylephrine (0.5, 1, and 2 micrograms/kg per minute; n = 7) and of the alpha 2-adrenergic receptor agonist BHT-933 (0.5, 1, 2, and 4 micrograms/kg per minute; n = 9), and (2) the effects of intra-arterial infusion of prazosin (0.5 microgram/100 mL per minute) alone or combined with insulin on the forearm vascular response to graded lower body negative pressure (7 subjects). Insulin blunted the peak increase in forearm vascular resistance (from 13 +/- 2 to 6 +/- 2 U, P < .05) but not the rise in forearm norepinephrine spillover induced by 20 mm Hg lower body negative pressure (from 8.3 +/- 1.8 to 11.1 +/- 3.5 pmol/min per liter, P = NS). Ouabain administration did not prevent the insulin-induced attenuation of the forearm vasoconstrictive response to graded lower body negative pressure. Insulin infusion in the brachial artery did not modify the forearm vasoconstriction induced by intra-arterial infusion of phenylephrine but significantly reduced the increase in forearm vascular resistance induced by BHT-933 (F = 6.111, P < .001). Finally, intra-arterial infusion of prazosin significantly attenuated the forearm vasoconstriction induced by graded lower body negative pressure. The residual vasoconstrictive response was abolished by insulin infusion. Taken together, these findings suggest that insulin interacts with the sympathetic nervous system at the vascular level predominantly through the alpha 2-adrenergic vasoconstrictive pathway.

Adrenergic alpha-Agonists↗

Trandolapril in patients with essential hypertension: effects on vascular and cardiac structural changes.

Elevated arterial pressure levels increase the hemodynamic load on heart and vessels, thus leading to functional and structural abnormalities. Because cardiac and vascular changes increase the risk of cardiovascular disease, their reversal is an important target of antihypertensive therapy, even though the prognostic value of this regression has not been fully established. In patients with untreated mild-to-moderate essential hypertension and left ventricular hypertrophy, trandolapril, a new angiotensin-converting enzyme inhibitor, reduces blood pressure by decreasing total peripheral resistance and improves both systolic and diastolic ventricular function. The latter effect is not only functional in nature because, after long-term antihypertensive treatment, the improvement in diastolic ventricular function is detectable also after 1-month withdrawal of trandolapril. The concurrent reversal of left ventricular hypertrophy may contribute to the improved left ventricular diastolic function. However, plethysmographic studies suggest that long-term antihypertensive treatment with trandolapril is also able to reverse structural vascular changes in the forearm vascular bed, because after 1-month washout forearm peripheral resistance also is lower than in control conditions. Finally, in hypertensive patients, trandolapril induces significant increases in brachial artery compliance and diameter that persist after 1 month of withdrawal from treatment. The latter observation suggests that trandolapril also is able to reverse the structural changes of the large artery wall.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin-Converting Enzyme Inhibitors↗

Effects of the single and repeated administration of benazepril on systemic and forearm circulation and cardiac function in hypertensive patients.

The hemodynamic and cardiac effects of the new angiotensin-converting enzyme inhibitor, benazepril, were studied in 28 hypertensives in a double blind, placebo-controlled, between-patient study. Hemodynamic studies were performed noninvasively by means of M-mode echo (central hemodynamics and left ventricular systolic function), 2-D echo-Doppler (left ventricular diastolic function), and pulsed Doppler flowmetry (forearm circulation). Examinations were done at the end of a placebo run-in period and 3 hours after benazepril administration, both on the first day and after 6 weeks of treatment (10 or 20 mg once daily, according to patient response). In comparison with placebo, benazepril reduced systolic (p = 0.04) and diastolic (p = 0.003) blood pressure, because of a significant reduction in systemic vascular resistance (p = 0.03), while cardiac output was unchanged. Forearm vascular resistance was reduced and brachial artery compliance increased, although not to a statistically significant level (both p = 0.07). Both systolic and diastolic left ventricular function were positively influenced by the afterload reduction: End-systolic stress was reduced by 12% (p = 0.07), as was the late diastolic peak flow velocity (p = 0.02). All hemodynamic changes were evident after acute benazepril administration, and no differences was observed between acute and repeated treatment. We conclude that, similar to other ACE-inhibitors, benazepril reduces blood pressure through a reduction in vascular resistance, while cardiac output and heart rate are unaffected. These hemodynamic effects occur as early as after the first administration and exert a favorable influence on left ventricular dynamics.

Adult↗