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Biomedical subjects

L Ferder

Publications and source records attributed to L Ferder.

At least 19 recordsLinked to original sources

Angiotensin II blockade improves mitochondrial function in spontaneously hypertensive rats.

Angiotensin II can induce oxidant stress by stimulating vascular superoxide production. Hypertension promotes mitochondrial function decline in brain, liver and heart. The aim of this study was to investigate whether a) hypertension is associated to kidney mitochondrial dysfunction, and b) angiotensin II blockade can reverse potential mitochondrial changes in hypertension. Four-month-old male spontaneously hypertensive rats (SHR) received drinking water containing candesartan (7.5 mg/kg/day, SHR+Cand), or no additions (SHR) for 4-months. Eight-month-old Wistar-Kyoto rats (WKY), that received water with no additions, were used as control. Systolic blood pressure, proteinuria, cortical glomerular area, and glomerular and tubulointerstitial alpha-smooth muscle actin labeling, were significantly higher, and creatinine clearance was significantly lower, in SHR relative to WKY and SHR+Cand. In SHR, kidney mitochondria membrane potential, and nitric oxide synthase and cytochrome oxidase activities were significantly lower than in WKY and SHR+Cand. In SHR, mitochondrial hydrogen peroxide production was significantly higher than in WKY and SHR+Cand. The results suggest that, in hypertension, increased mitochondrial oxidant production may mediate kidney mitochondria dysfunction. Candesartan preserved mitochondrial function, probably favoring the maintenance of adequate cellular and tissue function in the kidney. The known renal protective effects of candesartan in hypertension may be related to the improvement of mitochondrial function. This may be an additional or alternative explanation for some of the beneficial effects of AT1 receptor antagonists.

Actins↗

Candesartan cilexetil protects cavernous tissue in spontaneously hypertensive rats.

In previous experiments, our group demonstrated morphological changes in erectile tissue from male spontaneously hypertensive rats (SHR). The present study was performed to determine whether an angiotensin II receptor blocker could protect cavernous tissue (CT) from these structural alterations in SHR. Male SHR and Wistar-Kyoto (WKY) rats were studied during 4 months. Rats were divided into three groups: SHR (n=10), SHR with candesartan cilexetil (n=10) and WKY rats (n=10). Candesartan cilexetil 7.5 mg/kg/day was administered orally throughout the study. CT was processed for pathology studies. The amount of (1) cavernous smooth muscle (CSM), (2) vascular smooth muscle (VSM), (3) collagen type III, and the rat endothelial cell antibody (RECA-1)/tunica media ratio in cavernous arteries were evaluated. SHR with candesartan cilexetil showed a lower blood pressure, a lower percentage of CSM, smaller VSM area, with a higher RECA-1/media ratio, and a lower percentage of collagen type III, when compared to untreated SHR. In addition, SHR showed a positive correlation between systolic blood pressure (SBP) and CSM amount (r=0.91; P<0.01), and SBP and the percentage of collagen type III (r=0.88; P<0.01); these correlations were not observed either in SHR treated with candesartan cilexetil or in WKY rats. We conclude that candesartan cilexetil provides a significant protective role against morphologic changes in vessels as well as in cavernous spaces of the erectile tissue, caused by high blood pressure, in SHR.

Angiotensin-Converting Enzyme Inhibitors↗

Enalapril attenuates oxidative stress in diabetic rats.

Oxidative stress is involved in both the pathogenesis and complications of diabetes. ACE inhibitors can slow the progression of cardiac and renal impairments related to diabetes. The effect of enalapril treatment on oxidative stress and tissue injury was studied in hearts, kidneys, and livers from streptozotocin-induced diabetic rats. Twenty-four rats were divided into the following groups: streptozotocin (65 mg/kg, single intraperitoneal dose), streptozotocin+enalapril (20 mg enalapril/L drinking water), and control (intraperitoneal saline). Seven months after streptozotocin injection, organs were studied by light microscopy and collagen III immunolabeling. Tissue lesions and collagen labeling were graded by a semiquantitative score (0 to 4). Total glutathione content, glutathione redox status (reduced/oxidized glutathione), antioxidant enzyme activities, protein-associated sulfhydryls, thiobarbituric acid-reactive substances, and fluorescent chromolipids were determined in tissue homogenates. Glycemia was higher in both the streptozotocin and streptozotocin+enalapril groups relative to the control group. In the streptozotocin group, creatinine clearance and body weight were lower, and systolic blood pressure and urinary albumin excretion were higher than in the streptozotocin+enalapril and control groups. Heart, kidney, and liver lesion/labeling scores were significantly higher in the streptozotocin group compared with the streptozotocin+enalapril and control groups. Kidney and liver total glutathione was lower in the streptozotocin group relative to the control group (P<0.05). Enalapril treatment significantly attenuated the reduction of total glutathione. In the heart, kidney, and liver, both glutathione and proteins were relatively more oxidized in the streptozotocin group relative to the control group (P<0.05). Protein and glutathione oxidation were attenuated in the streptozotocin+enalapril group in the 3 tissues studied (P<0.05). Enalapril treatment attenuated the oxidation of lipids in the heart and kidney (P<0.05). Tissue fibrosis scores were inversely correlated with (1) both total glutathione and reduced/oxidized glutathione in heart, kidney, and liver and (2) glutathione reductase activity in the kidney. These results suggest that in streptozotocin-induced diabetic rats, the protective action of enalapril might be mediated, at least in part, by its effect on tissue oxidant/antioxidant status.

Angiotensin-Converting Enzyme Inhibitors↗

Protective role of enalapril for chronic tubulointerstitial lesions of hyperoxaluria.

PURPOSE: Hyperoxaluria is a recognized cause of tubulointerstitial lesions and it may contribute to chronic renal failure. In previous studies we demonstrated that enalapril was effective against the progression of tubulointerstitial lesions in a 4-week hyperoxaluria rat model. We evaluated whether the action of enalapril on the tubulointerstitial lesions produced by hyperoxaluria persisted for a long period. MATERIALS AND METHODS: Two-month-old male Sprague-Dawley rats were divided into 4 groups of 12 each, including 1--control animals given tap water, 2--animals with hyperoxaluria, 3--animals with hyperoxaluria plus enalapril, 4--animals with enalapril. Hyperoxaluria in groups 2 and 3 rats was induced by administering 1% ethylene glycol, a precursor for oxalates, in the tap water continuously throughout the whole study. Meanwhile, groups 3 and 4 received 20 mg./l. enalapril in the drinking water. At the end of the study renal tubulointerstitial lesions were evaluated by immunostaining using monoclonal antibodies against macrophage infiltrates (ED1), tubulointerstitial alpha-smooth muscle actin and transforming growth factor-beta1. The lesions were quantified by semiquantitative scores. Creatinine clearance and urinary albumin excretion were also determined. RESULTS: There was no difference in urine oxalate excretion in groups 2 and 3. Group 3 rats treated with enalapril showed fewer tubulointerstitial lesions than nontreated group 2 rats, as indicated by the mean scores plus or minus standard error of mean for inflammatory infiltrate (2.16 +/- 0.2 versus 0.83 +/- 0.16), tubular atrophy (2 +/- 0.27 versus 0.66 +/- 0.14), interstitial fibrosis (2.5 +/- 0.15 versus 0.5 +/- 0.1), glomerular ED1 (1.75 +/- 0.25 versus 0.16 +/- 0.11), interstitial ED1 (2.33 +/- 0.18 versus 0.58 +/- 0.10) tubular transforming growth factor-beta1 (2.09 +/- 0.08 versus 0.91 +/- 0.14), interstitial transforming growth factor-beta 1 (2.33 +/- 0.22 versus 0.66 +/- 0.12), tubulointerstitial alpha-smooth muscle actin (2.91 +/- 0.22 versus 0.83 +/- 0.16), lower urinary albumin excretion (35.5 +/- 2.7 mg. daily versus 10.9 +/- 1) and higher creatinine clearance (2.29 +/- 0.04 ml. per minute versus 2.54 +/- 0.03, all p <0.05). CONCLUSIONS: Based on our results we believe that enalapril would provide a beneficial effect against chronic tubulointerstitial lesions caused by oxalates.

Angiotensin-Converting Enzyme Inhibitors↗

Morphological changes in cavernous tissue in spontaneously hypertensive rats.

Erectile dysfunction has an increased prevalence in hypertensive patients and is associated with cardiovascular diseases. For many years the discussion has been polarized on whether in hypertensive patients, it is the arterial hypertension or the antihypertensive therapy that is the cause of male erectile dysfunction. The aim of our study was to determine the morphologic changes in cavernous tissue (CT) in an animal model of arterial hypertension. Male spontaneously hypertensive rats (SHR) (n = 15) and normotensive Wistar-Kyoto (WKY) rats (n = 15) were studied for 8 months. Animals were allowed to drink tap water and fed a standard rat chow ad libitum. Systolic blood pressure (SBP) was measured monthly by the tail/cuff method. At the end of the experiment all the animals were sacrificed for microscopic studies. Cavernous tissue was processed by hematoxylin and eosin, Masson's trichrome, and monoclonal anti-alpha smooth muscle actin. Cavernous smooth muscle (CSM) and vascular smooth muscle (VSM) proliferation and CT fibrosis were evaluated by a semiquantitative score. SHR showed a higher proliferative score in CSM (2.7 +/- 0.28 v 1.1 +/- 0.07; P < .001), as well as in VSM (2.7 +/- 0.25 v 1 +/- 0.05; P < .001), and higher CT fibrosis score (2.8 +/- 0.28 v 0.1 +/- 0.07; P < .001), when compared to WKY rats. Furthermore, SHR showed a positive correlation between SBP and CSM proliferative score (r2 = 0.9277), SBP and VSM proliferative score (r2 = 0.8828), and SBP and CT fibrosis score (r2 = 0.7775). In addition, an increase in the surrounding connective tissue at the perineurium and endoneurium of the amielinic nerves in CT was observed in the SHR group. According to these results we conclude that SHR present morphologic changes in vessels as well as in cavernous spaces of the erectile tissue that have a high positive correlation with high blood pressure. Moreover, the increase in extracellular matrix expansion seems to affect not only the interstitium but also the neural structures of the penis.

Actins↗

Enalapril and captopril enhance glutathione-dependent antioxidant defenses in mouse tissues.

The effect of enalapril and captopril on total glutathione content (GSSG + GSH) and selenium-dependent glutathione peroxidase (Se-GPx) and glutathione reductase (GSSG-Rd) activities was investigated in mouse tissues. CF-1 mice (4-mo-old females) received water containing enalapril (20 mg/l) or captopril (50 mg/l) for 11 wk. Enalapril increased GSSG + GSH content (P < 0.05) in erythrocytes (147%), brain (112%), and lung (67%), and captopril increased GSSG + GSH content in erythrocytes (190%) and brain (132%). Enalapril enhanced Se-GPx activity in kidney cortex (42%) and kidney medulla (23%) and captopril in kidney cortex (30%). GSSG-Rd activity was enhanced by enalapril in erythrocytes (21%), brain (21%), liver (18%), and kidney cortex (53%) and by captopril in erythrocytes (25%), brain (19%), and liver (34%). In vitro erythrocyte oxidant stress was evaluated by thiobarbituric acid-reactive substances (TBARS) production (control 365 +/- 11, enalapril 221 +/- 26, captopril 206 +/- 17 nmol TBARS x g Hb(-1) x h(-1); both P < 0.05 vs. control) and phenylhydrazine-induced methemoglobin (MetHb) formation (control 66.5 +/- 3.5, enalapril 52.9 +/- 0.4, captopril: 56.4 +/- 2.9 micromol MetHb/g Hb; both P < 0.05 vs. control). Both angiotensin-converting enzyme inhibitor treatments were associated with increased nitric oxide production, as assessed by plasma NO-(3) + NO-(2) level determination (control 9.22 +/- 0.64, enalapril 13.7 +/- 1.9, captopril 17.3 +/- 3.0 micromol NO-(3) + NO-(2)/l plasma; both P < 0.05 vs. control). These findings support our previous reports on the enalapril- and captopril-induced enhancement of endogenous antioxidant defenses and include new data on glutathione-dependent defenses, thus furthering current knowledge on the association of ACE inhibition and antioxidants.

Angiotensin-Converting Enzyme Inhibitors↗

Higher levels of antioxidant defenses in enalapril-treated versus non-enalapril-treated hemodialysis patients.

We previously reported chronic treatment with angiotensin-converting enzyme inhibitors (ACEis) increases antioxidant defenses in mice. In the present study, however, we examined various antioxidant defenses in chronic hemodialysis (HD) patients either treated with enalapril (10 mg/d) for at least 6 months (+ACEi; n = 11) or untreated (-ACEi; n = 11). The relationship between antioxidant status and HD was investigated by determining oxidative stress markers and antioxidant defenses in a group of chronic HD patients (n = 33) and a group of age-matched controls (n = 29). The effect of a single HD session on those parameters was also evaluated. Before an HD session (pre-HD), HD patients had significantly lower levels of red blood cell (RBC) glutathione (GSH), selenium-dependent glutathione peroxidase activity (RBC-Se-GPx), plasma ubiquinol-10, and alpha-tocopherol than controls. In a randomly selected group of patients (n = 19), a single HD session caused an additional decrease in RBC-GSH and plasma ubiquinol-10 levels. Plasma thiobarbituric acid reactive substance (TBARS) levels were significantly greater in pre-HD patients than controls. Post-HD plasma TBARS levels were similar to control values. The cohort of +ACEi HD patients had greater pre-HD RBC-GSH content, RBC-Se-GPx activity, and plasma beta-carotene concentrations than -ACEi patients (RBC-GSH: +ACEi, 3.1 +/- 0.9 micromol/mL packed RBCs [PRBCs]; -ACEi, 1.2 +/- 0.3 micromol/mL PRBCs [P < 0.05 v +ACEi]; RBC-Se-GPx: +ACEi, 5.8 +/- 0.7 U/mL PRBCs; -ACEi, 4.3 +/- 0.2 U/mL PRBCs [P < 0.05 v +ACEi]; plasma beta-carotene: +ACEi, 0.54 +/- 0.16 micromol/L plasma; -ACEi, 0.19 +/- 0.05 micromol/L plasma [P < 0.05 v +ACEi]). Results show profound alterations in the circulating antioxidant systems of chronic HD patients and that additional oxidative stress occurs during the HD procedure. In addition, in +ACEi HD patients, the levels of several antioxidant defenses are greater than in those in -ACEi HD patients.

Adult↗

Enalapril prevents tubulointerstitial lesions by hyperoxaluria.

Hyperoxaluria is a recognized cause of tubulointerstitial lesions, and this could contribute to development of hypertension and chronic renal failure. Enalapril has been effective against the progression of tubulointerstitial lesions in various animal models. The aim of the present study was to evaluate the usefulness of enalapril on the tubulointerstitial damage produced by oxalates. Two-month-old male Sprague-Dawley rats were separated into 4 groups, control with tap water (G1), hyperoxaluric (G2), hyperoxaluric+enalapril (G3), enalapril (G4), for 4 weeks. G2 and G3 rats were given 1% ethyleneglycol (ETG, precursor for oxalates), and G3 and G4 rats were given enalapril 20 mg/L in drinking water. At the end of the study, we evaluated renal tubulointerstitial lesions by a semiquantitative score. Urine albumin excretion, serum and urine nitric oxide production, tubulointerstitial immunostaining by alpha-smooth muscle actin, transforming growth factor-beta1, and collagen type III were measured. Rats belonging to the hyperoxaluric group treated with enalapril (G3) showed fewer tubulointerstitial lesions (1.3+/-0.2 versus 3+/-0.2; P<0.01), lower urine albumin excretion (8+/-2 mg/d versus 25+/-2 mg/d; P<0.01), less percentage of alpha-smooth muscle actin in renal interstitium (2+/-0.4% versus 13.5+/-2.4%; P<0.01), less percentage of transforming growth factor-beta1 in tubulointerstitial area (3.3+/-1% versus 13.3+/-2. 1%; P<0.01), less percentage of collagen type III interstitial deposition (0.7+/-0.5% versus 7+/-2.6%; P<0.01), and increased NO production in serum as well as urine (both P<0.01), when compared with the hyperoxaluric group not treated with enalapril (G2). Considering these data, we believe that enalapril, by several mechanisms of action, could provide an important benefit in the prevention of inflammatory response, transforming growth factor-beta1 tubulointerstitial production, collagen type III interstitial deposition, and finally, the progressive tubulointerstitial fibrosis caused by oxalates.

Animals↗

Effects of amlodipine on tubulointerstitial lesions in normotensive hyperoxaluric rats.

Although controversial, a number of reports have suggested that calcium antagonists can retard or prevent the progression of various renal diseases in experimental models. Nevertheless, there are few data related to tubulointerstitial changes in these studies. On the other hand, hyperoxaluria is a recognized cause of tubulointerstitial lesions, and this could contribute to the development of hypertension and chronic renal failure. The aim of the present study was to evaluate a possible beneficial effect of amlodipine, a 1,4-dihydropyridine class of calcium antagonist, in a model of primary tubulointerstitial lesion produced by hyperoxaluria. Two-month-old male Sprague-Dawley rats were separated into 4 groups for a 4-week period: G1 (control; tap water only); G2 (hyperoxaluric); G3 (hyperoxaluric plus amlodipine treatment); and G4 (amlodipine treatment). G2 and G3 rats were given 1% ethylene glycol (a precursor for oxalates) in drinking water, and G3 and G4 rats were given amlodipine 2 mg. kg(-1). d(-1) by gavage. At the end of the study, we evaluated by semiquantitative scores (0 to 4) the different renal tubulointerstitial lesions, urinary albumin excretion, renal function by creatinine clearance, and blood pressure. Rats belonging to the hyperoxaluric group treated with amlodipine (G3) had fewer tubulointerstitial lesions, as follows: (1) inflammatory infiltrate score: 3.31+/-0.07 versus 0.23+/-0.12; P<0.05; (2) tubular atrophy score: 3.33+/-0.33 versus 0.50+/-0.22, P<0.05; (3) interstitial fibrosis score: 2.76+/-0.34 versus 0.31+/-0. 16, P<0.05; (4) oxalate deposits score: 3.66+/-0.33 versus 0.09+/-0. 08, P<0.05; (5) lower urinary albumin excretion (11.3+/-2 versus 27+/-4.5 mg/d, P<0.01); and (6) higher creatinine clearance (1. 22+/-0.08 versus 1.13+/-0.08, P<0.01) compared with the hyperoxaluric group untreated with amlodipine (G2). On the other hand, there were no significant changes in blood pressure in any group. In view of these data, we suggest that amlodipine, probably by nonhemodynamic mechanisms of action, can provide an important benefit in the prevention of epithelial tubular cell injury and inflammatory response and therefore in the prevention of the progressive tubulointerstitial fibrosis caused by oxalates.

Amlodipine↗

Biomolecular changes in the aging myocardium: the effect of enalapril.

Chronic administration of enalapril in the aging mouse prevents myocardial fibrosis. To investigate the mechanisms involved, we studied 30 CF1 female mice that received enalapril (ENAL:20 mg/L) in their drinking water after weaning and 30 control (CONT) mice. Ten animals from each group were killed at 12, 18, and 24 months. Half of the samples were prepared for light microscopy (LM) and the other half for electron microscopy (EM). Cardiac histologic sections were studied by an image analyzer (Bioscan OPTIMAS 4.1). We performed the following measurements in cardiomyocytes: mitochondrial number, mitochondrial superoxide dismutase (SOD) using immunohistochemical methods with EM, the percentage of cell cyclin, and apoptosis. The results obtained for CONT and ENAL, respectively were as follows. For cyclin (percentage of positive) our results were: 12 months 17.1+/-0.1% and 18.2+/-0.8%, 18 months 2.4+/-1.6% (P < .001), and 11.4+/-0.1% (P < .001), 24 months 1.2+/-1.3% (P < .001), and 8.2+/-1.2% (P < .001) with significant differences at 18 and 24 months. For the Feulgen method (cell/mm2) we found: 12 months CONT 89.7+/-1.2, ENAL 84.6+/-1.2; 18 months CONT 62.8+/-1.2, ENAL 98.7+/-1.3, and 24 months CONT 81.2+/-1.3, ENAL 112.3+/-1.4. Apoptosis (percentage of positive) was found to be 12 months 3.7+/-0.4% and 1.9+/-0.1%, 18 months 7.1 +/-0.3% (P < .001), and 1.5+/-0.1% (P < .001), 24 months 10.9+/-0.5% (P < .001) and 2.1+/-1.8% (P < .001), for CONT and ENAL, respectively; there were significant differences at 18 and 24 months. The number of mitochondria per cardiomyocyte were: 12 months 85.9+/-1.8 and 87.3+/-1.5, 18 months 69.2+/-1.5t and 82.2+/-1.8 (P < .001), 24 months 54.6+/-1.1 (P < .001) and 81.4+/-1.6 (P < .001) for CONT and ENAL respectively, with significant differences at 18 and 24 months. Mitochondrial SOD was found to be: 12 months 13.6%+/-0.2% (P < .05) and 17.8%+/-1.3% (P < .05), 18 months 7.1%+/-1.0% (P < .001) and 16.7%+/-1.6% (P < .001), 24 months 4.1%+/-0.5% (P < .001), and 12.4%+/-0.9% (P .001) for CONT and ENAL respectively, with significant differences at 12 months and at 18 and 24 months (ANOVA and contrast Scheffe's test). We conclude that chronic administration of ENAL modifies mitochondrial SOD at 12 months, whereas at 18 and 24 months ENAL was associated with higher mitochondrial SOD and a higher mitochondrial number with a greater cyclin expression, and a lower percentage of apoptosis. Enalapril may prevent myocardial fibrosis, possibly by causing changes related to enzymatic-mitochondrial or cellular cycle modifications.

Aging↗

Enalapril and captopril enhance antioxidant defenses in mouse tissues.

This study was conducted to investigate a possible systemic effect of angiotensin-converting enzyme inhibitors (ACEi) on tissue antioxidant defenses. CF1 mice (4-mo-old females) were administered either water (control) or water containing enalapril (20 mg/l) or captopril (50 mg/l) during 11 wk. Neither enalapril nor captopril treatment had an effect on body mass or brain, kidney, or heart weight relative to controls. CuZn-superoxide dismutase (SOD) activity was increased by enalapril treatment in kidney medulla (27%), heart (24%), and erythrocytes (19%) and by captopril treatment in kidney medulla (43%) and heart (54%) relative to controls. Mn-SOD and catalase activities were unaffected by either treatment. Enalapril, but not captopril treatment, increased Se-glutathione peroxidase activity in renal medulla (19%). Nonenzymatic antioxidant defenses, evaluated by tert-butyl hydroperoxide-initiated chemiluminescence (HICL), were enhanced in kidney cortex (48%) by enalapril and in brain by enalapril (44%) or captopril (36%) treatment relative to controls. As evaluated in vitro by HICL and thiobarbituric acid-reactive substances formation, captopril had a free radical scavenger activity, whereas neither enalapril nor lisinopril was effective. These results suggest that ACEi may protect tissues from oxidative damage by increasing enzymatic and nonenzymatic antioxidant defenses.

Angiotensin-Converting Enzyme Inhibitors↗

Decrease of exercise-induced microalbuminuria in patients with type I diabetes by means of an angiotensin-converting enzyme inhibitor.

Taking into account both the importance of microalbuminuria (MA) as a predictive parameter of clinical nephropathy in diabetic patients and the efficiency of exertion to show and/or to increase MA in both diabetic patients and normal individuals, we studied 37 type I diabetic patients divided into two groups: group A, with no MA at rest (n = 19), and group B, with MA at rest (n = 18). Group C comprised 10 healthy volunteers as controls. Changes of basal MA during exercise and postexercise were studied in all three groups. Normotensive patients with no metabolic disorders, normal renal function, and no proteinuria underwent an ergometric test up to 600 kg. This test was repeated after the administration of 20 mg enalapril in a single daily dose for 60 days. Body weight, systolic and diastolic arterial pressure, creatinine, and creatinine clearance were determined and showed no significant variations either between groups or with treatment. Microalbuminuria was studied in the three groups with and without administration of enalapril throughout the 2 months of the study. Determinations were performed under conditions of rest, exercise, and postexercise. Mean baseline MA values +/- SEM were as follows: at rest, 5.22 +/- 0.49, 58.36 +/- 13.24, and 4.73 +/- 0.45 micrograms/min for groups A, B, and C, respectively; with exercise, 15.19 +/- 4.43, 74.70 +/- 14.89, and 16.76 +/- 4.62 micrograms/min for groups A, B, and C, respectively; and postexercise, 32.04 +/- 6.64, 253.15 +/- 63.88, and 9.23 +/- 3.25 micrograms/min, respectively. The geometric means of the baseline to posttreatment MA ratio were as follows: at rest, 0.95, 1.59 (P < 0.01), and 1.03 for groups A, B, and C, respectively; with exercise, 1.53 (P < 0.01), 1.91 (P < 0.01), and 1.69 for groups A, B, and C, respectively; and postexercise, 2.94 (P < 0.01), 3.24 (P < 0.01), and 1.03 for groups A, B, and C, respectively. In conclusion, in the early diagnostic suspicion of diabetic nephropathy, the screening of postexercise MA during an ergometric test could be of help. Treatment with enalapril decreased MA in diabetic groups A (no MA at rest) and B (MA at rest) during exercise and postexercise, and also decreased MA in group B while at rest.

Adult↗

Superoxide dismutase and glutathione peroxidase activities are increased by enalapril and captopril in mouse liver.

We have characterized the effect of angiotensin converting enzyme (ACE) inhibitors on the activity of CuZn-superoxide dismutase (CuZn-SOD), Mn-superoxide dismutase (Mn-SOD), catalase, and selenium-dependent glutathione peroxidase (Se-GPx). CF1 mice (4-month-old females) were administered water containing enalapril (20 mg/l) or captopril (50 mg/l), during 4 to 11 weeks. After 11 weeks, enalapril treatment caused an increase in the activity of CuZn-SOD, Mn-SOD and Se-GPx, from 19 +/- 4 to 46 +/- 7, 2.1 +/- 0.2 to 3.8 +/- 0.2 units/mg protein and 27 +/- 3 to 54 +/- 3 milliunits/mg protein, respectively. After 11 weeks, captopril treatment increased the activities (P < 0.05) of CuZn-SOD, MnSOD and Se-GPx to 35 +/- 4, 2.9 +/- 0.2 units/mg protein, and 38 +/- 2 milliunits/mg protein, respectively. Catalase activity was not affected by the treatments. These results suggest that ACE inhibitors may protect cell components from oxidative damage by increasing the enzymatic antioxidant defenses.

Animals↗

Angiotensin II regulates nephrogenesis and renal vascular development.

To test the hypothesis that angiotensin II (ANG II) is necessary for normal embryonic and postnatal kidney development, the effect of angiotensin receptor blockade or angiotensin converting enzyme inhibition on nephrovascular development was studied in newborn Sprague-Dawley rats and in Rana catesbeiana tadpoles undergoing prometamorphosis. Blockade of ANG II type 1 receptor (AT1) in newborn rats induced an arrest in nephrovascular maturation and renal growth, resulting in altered kidney architecture, characterized by fewer, thicker, and shorter afferent arterioles, reduced glomerular size and number, and tubular dilatation. Inhibition of ANG II generation in tadpoles induced even more marked developmental renal abnormalities. Blockade of ANG II type 2 receptor (AT2) in newborn rats did not alter renal growth or morphology. Results indicate that ANG II regulates nephrovascular development, a role that is conserved across species.

Angiotensin II↗

Cardiovascular changes by long-term inhibition of the renin-angiotensin system in aging.

We studied four groups of 20 female mice to evaluate the long-term effect of an angiotensin-converting enzyme on myocardium and vessels during the natural process of aging. Three groups received enalapril in water from weaning to 24 months of age (group A, 20 mg/L; group B, 10 mg/L; group C, 5 mg/L); group D served as a control. Animals surviving after 24 months were killed, and morphometric studies were performed. Total corporal weight was higher in animals receiving enalapril. Cardiac weight relative to total body weight was lower in the treated groups than in the control group. Cardiac morphometric studies showed lower myocardiosclerosis in animals receiving angiotensin-converting enzyme inhibitor (groups A through D, respectively, 0.9 +/- 0.6%, 1.1 +/- 0.2%, 1.03 +/- 0.1%, and 9.5 +/- 4.3%; P < .01, groups A, B, and C versus D). The number of mitochondria per myocardiocyte was higher in the groups receiving enalapril (A through D, respectively, 85 +/- 7, 85 +/- 6, 83 +/- 8, and 58 +/- 8; P < .01, groups A, B, and C versus D). At the vascular level, vessel diameters were not significantly different between the groups receiving angiotensin-converting enzyme inhibitor and the control group, whereas differences were seen in arterial tunica media thickness (wall-lumen ratio) (groups A through D, respectively, aorta: 0.13 +/- 0.02, 0.11 +/- 0.02, 0.12 +/- 0.01, 2.81 +/- 0.35; intrapulmonary: 0.9 +/- 0.43, 0.6 +/- 0.41, 0.8 +/- 0.46, 1.9 +/- 0.51; intracerebral: 2.18 +/- 0.46, 2.29 +/- 0.45, 2.46 +/- 0.43, 3.30 +/- 0.41; intrarenal: 2.28 +/- 0.46, 2.73 +/- 0.48, 2.70 +/- 0.51, 3.23 +/- 0.41; intracariaciac: 2.27 +/- 0.44, 2.59 +/- 0.41, 2.80 +/- 0.43, 3.68 +/- 0.47; P < .001, groups A, B, and C versus D).(ABSTRACT TRUNCATED AT 250 WORDS)

Aging↗

Intraglomerular expression of alpha-smooth muscle actin in aging mice.

To determine whether chronic treatment with enalapril initiated early in life prevents glomerular injury secondary to normal aging, CF1 mice received enalapril (20 mg/L, n = 10) or nifedipine (40 mg/L, n = 10) in their drinking water from the time of weaning to 12 months of life. Control mice (n = 10) received tap water ad libitum. Immunocytochemical detection of renin confirmed that angiotensin-converting enzyme inhibition resulted in recruitment of renin-containing cells along the preglomerular vessels. Morphometric analysis of glomeruli included assessment of glomerular diameter and the percentage of mesangial area per glomerulus. Glomerular diameter and mesangial area were higher in control mice (99.7 +/- 0.5 microns, 12.7 +/- 0.3%) than in enalapril-treated mice (88 +/- 0.8 microns, 8.6 +/- 0.6%) (P < .05). Glomerular diameter and mesangial area in the nifedipine-treated group (99.1 +/- 0.9 microns, 12.4 +/- 0.9%) were not different from control mice. These results demonstrate that angiotensin-converting enzyme inhibition prevents the glomerular enlargement and mesangial expansion observed during natural aging. In addition, control glomeruli expressed alpha-smooth muscle actin in a mesangial distribution. This effect was prevented by enalapril treatment but not by nifedipine. We conclude that long-term treatment with enalapril from early life prevents the early changes associated with glomerular injury and expression of alpha-smooth muscle actin in the glomerulus. alpha-Smooth muscle actin may participate in and serve as an early marker of the glomerular injury during the normal aging process.

Actins↗

Decreased glomerulosclerosis in aging by angiotensin-converting enzyme inhibitors.

To evaluate the effects of angiotensin-converting enzyme inhibition on renal aging, enalapril was administered in the drinking water to three groups of CF1 mice at doses of 20 mg/L (Group A), 10 mg/L (Group B), and 5 mg/L (Group C). These experimental groups were compared with 20 CF1 mice not receiving enalapril (Group D). At 2 yr, total body weight was 48.1 +/- 7.5 g in Group A, 47.7 +/- 7.1 g in Group B, 47.6 +/- 4.6 g in Group C, and 35.1 +/- 5.4 g in Group D. The ratio of kidney to total body weight, in percentages, was 1.8 +/- 0.3, 1.6 +/- 0.3, 1.9 +/- 0.2, and 1.5 +/- 0.1 in Groups A, B, C, and D, respectively. Morphometric studies of the kidneys revealed the glomerular diameter to be 86.7 +/- 18.0 microns, 96.9 +/- 6.3 microns, 91.1 +/- 11.4 microns, and 106.8 +/- 9.3 microns in Groups A, B, C, and D, respectively. The number of glomeruli per square millimeter of renal cortex was 9.6 +/- 3.7, 12.3 +/- 2.7, 12.4 +/- 8.6, and 3.2 +/- 1.5 in Groups A, B, C, and D, respectively. The mesangial area per glomerulus, in percentages, was 11.6 +/- 4.8, 13.9 +/- 2.9, 14.2 +/- 3.1, and 20.6 +/- 1.9 in Groups A, B, C, and D, respectively. The percentage of glomeruli with sclerosis was 0.1 +/- 0.1, 0.3 +/- 0.1, 0.6 +/- 0.2, and 11.6 +/- 1.9 in Groups A, B, C, and D, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Aging↗

[Renin synthesis by renal cells during chronic inhibition of angiotensin I converting enzyme].

A study was performed on renin synthesis in order to evaluate changes that occur in renal cells during angiotensin-converting enzyme chronic inhibition of Ang I in mice. Immediately after weaning, 20 CF1 mice received 20 mg/l enalapril maleate in drinking water during 16 months; this group was compared with a control group. Kidney tissue was processed and studies using optical and electron microscope immunochemical techniques were performed. An antirenin antibody was used, and in situ hybridization was performed to keep track of renin mRNA with a digoxygenin-marked probe. We calculated the number of juxtaglomerular apparatus (JGA), afferent arterioles (AA) and arcuate vessels (AV) immunomarked (IM) with antirenin and antidigoxygenin. These parameters were rendered in JGA rates (%IMJGA) and AA (%IMAA) and AV (%IMAV) marked rates (%AV), and in the rate of JGA (%SJGA), AA (%SAA) and AV (%SAV) hybridization signs. Electron microscope readings were used to determine the number of gold particles per renin granule. An increase in the number of renin-producing cells was observed in animals having received enalapril chronically, beyond AJG and AA, since marking was observed in arcuate vessels. The mean %MJGA value was lower in control animals (65.6% +/- 2.4) than in treated animals (94.2% +/- 3 p < 0.05). Similar findings occurred with %MAA: 23.6% +/- 3, (control animals) vs. 41.6% +/- 2.3, p < 0.05 (treated animals). AV were not marked in the control group, as they were in treated animals where %MAV was 4.4% +/- 1.6. The mRNA distribution was different in animals with RAS inhibition as compared with control animals.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensin I↗