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Biomedical subjects

S B Harrap

Publications and source records attributed to S B Harrap.

At least 73 records · Page 4Linked to original sources

Transplantation studies of the role of the kidney in long-term blood pressure reduction following brief ACE inhibitor treatment in young spontaneously hypertensive rats.

1. Brief treatment with angiotensin-converting enzyme (ACE) inhibitors in young spontaneously hypertensive rats (SHR) causes a persistent reduction in blood pressure associated with a relatively selective reduction in renal vascular resistance. 2. To study the possible role of the kidney in this long-term hypotensive effect, we transplanted kidneys from untreated SHR into SHR that had been treated with perindopril (3 mg/kg per day) between 6 and 10 weeks of age and also transplanted kidneys from perindopril-pretreated SHR into untreated SHR. After transplantation, the remaining native kidney was removed so that only donor kidneys remained. 3. Untreated SHR that received kidneys from perindopril-pretreated SHR showed an initial fall in blood pressure followed by a rapid increase in pressure, weight loss and early death. 4. The transplantation of kidneys from control SHR into perindopril-pretreated SHR resulted in a rise in blood pressure that obviated the long-term reduction seen normally in these animals. 5. Kidneys from perindopril-pretreated SHR may be susceptible to the high blood pressure in untreated SHR. 6. The blood pressure increase in perindopril-pretreated SHR that accompanies substitution of the native kidneys by kidneys from untreated SHR further supports the hypothesis that the kidney is responsible for the long-term pressure effects following ACE inhibition in young SHR.

Aging↗

Angiotensin II, sodium, and cardiovascular hypertrophy in spontaneously hypertensive rats.

Angiotensin II (Ang II) may cause cardiovascular hypertrophy as a consequence of increased blood pressure or possibly by direct trophic actions. To dissociate Ang II and blood pressure in young spontaneously hypertensive rats (SHR), we used sodium loading during angiotensin converting enzyme inhibitor treatment. Animals were treated between 6 and 10 weeks of age with perindopril to lower Ang II and blood pressure, or with perindopril and 1% saline drinking fluid or perindopril and aldosterone infusion to lower Ang II but maintain high blood pressure. Blood pressure, heart weight, and media/lumen ratio of mesenteric resistance arteries were studied while rats were on treatment at 10 weeks of age and 15 weeks after treatment at 25 weeks of age. Perindopril lowered blood pressure and inhibited the development of cardiovascular hypertrophy. Saline or aldosterone restored high blood pressure during perindopril treatment and resulted in increased heart weight/body weight and resistance artery media/lumen ratios in direct proportion to the elevation of blood pressure. Because increased structure occurred despite perindopril treatment, we conclude that direct trophic actions of Ang II are not essential for the development of cardiovascular hypertrophy in young SHR and that the antitrophic actions of angiotensin converting enzyme inhibitors depend more on changes in blood pressure than on Ang II. However, restoration of blood pressure and structure by sodium during perindopril treatment raises the possibility that the design of the cardiovascular system and blood pressure may depend indirectly on Ang II through effects on sodium metabolism.

Angiotensin II↗

The angiotensin I converting enzyme gene and predisposition to high blood pressure.

Phenotypic abnormalities of the renin-angiotensin system have been associated with the predisposition to high blood pressure. The angiotensin I converting enzyme (ACE) gene has been implicated as a candidate gene. We examined the distribution of common alleles of the ACE gene and measured circulating components of the renin-angiotensin system and urinary sodium excretion in 170 young Caucasian adults with contrasting genetic predisposition to high blood pressure. Predisposition was defined on the basis of personal and parental blood pressure levels by using the four corners sampling method. Young adults with greatest predisposition who had high blood pressure and two parents with high blood pressure did not show any significant difference in the distribution of the markers of the ACE gene, either as genotype or allele frequencies, when compared with young adults with least predisposition who had low blood pressure and two parents with low blood pressure. Offspring with urinary sodium excretion above the median (143.4 mmol per day) also showed no significant differences in the distribution of ACE alleles or genotype between groups. Different genotypes were associated with different average serum ACE concentrations (p < 0.0001), but plasma angiotensin II and aldosterone showed no significant variation with ACE genotype. These results suggest that in a group of Caucasians selected from the general population, the ACE gene is not associated with genetic predisposition to high blood pressure. In this population common ACE gene allelic markers would not be useful indexes of susceptibility to hypertension.

Adult↗

Essential hypertension: a disorder of growth with origins in childhood?

PURPOSE: To review evidence that essential hypertension is a growth-related disorder with origins in childhood and manifestations in adult life. PRINCIPAL EVIDENCE: Blood pressure rises with age in children and adults. In children, the rise closely relates to growth and to skeletal and sexual maturation. Adolescents with highest pressure are heavier and had as children grown fastest; as adults, they show the greatest increase of pressure with age and are more likely to develop hypertension and coronary heart disease. In adults, the rate of increase of pressure relates to earlier pressure. One interpretation of this is that a self-perpetuating mechanism is at work. Genetic and environmental factors influence these events. HYPOTHETICAL MECHANISMS: Most forms of secondary hypertension have two pressor mechanisms; a primary cause, e.g. renal clip, and a second process, which is slow to develop, capable of maintaining hypertension after removal of the primary cause, and probably self-perpetuating in nature. We suggest that essential hypertension also has two mechanisms, both based upon cardiovascular hypertrophy: (1) a growth-promoting process in children (equivalent to the primary cause in secondary hypertension); and (2) a self-perpetuating mechanism in adults.

Adult↗

Abnormalities of glucocorticoid metabolism and the renin-angiotensin system: a four-corners approach to the identification of genetic determinants of blood pressure.

AIM: To assess the feasibility and utility of a new method to identify factors associated with increased predisposition to high blood pressure in young people. SUBJECTS: Eight hundred and sixty-four people aged 16-24 years and their parents. SETTING: Ladywell Medical Centre, Edinburgh, Scotland, UK. METHOD: Blood pressure was measured in 864 young adults and in both of their parents. Four groups of approximately 50 offspring were selected from the corners of a scatter diagram, with offspring blood pressure scores on one axis and combined parental blood pressure scores on the other. Blood and urine samples were taken for biochemical and genetic analyses. RESULTS: Two groups of offspring had parents with high blood pressure and two groups had parents with low blood pressure. When parental blood pressure was low, comparison of offspring with high and low blood pressure revealed significantly higher mean body mass index in offspring with high blood pressure, but no significant elevation of biochemical or hormonal variables. When parental blood pressure was high, comparison of offspring with high and low blood pressure also revealed a significant difference in body mass index, but in addition, offspring with high blood pressure and high parental blood pressure had higher levels of angiotensinogen, cortisol and 18-OH corticosterone. Restriction fragment length polymorphism analysis revealed that 27% of offspring at the greatest genetic risk (high personal and parental blood pressure) were homozygous for the larger allele of the glucocorticoid receptor gene compared with only 9% of those at lowest genetic risk (low personal and parental blood pressure). CONCLUSION: The combined biochemical and genetic findings suggest that abnormalities of glucocorticoid metabolism and the renin-angiotensin system may help to explain genetic predisposition to high blood pressure. The new sampling method is practicable and could be applied to the investigation of other continuously distributed variables which show familial aggregation.

Adolescent↗

Development and validation of echocardiographic methods for estimating left ventricular mass in rats.

1. The aim of this study was to develop non-invasive echocardiographic methods of measuring left ventricular mass (LVM) in rats, and to determine their usefulness in detecting left ventricular hypertrophy. 2. After initial studies to identify the optimum transducer and to ascertain the resolution limits of echocardiography, the repeatability of LVM estimates was studied. The average difference between two independent estimates in 86 male rats (average LVM = 674.7 mg) was 5.4 mg, and the standard deviation of the difference was 107.6 mg. 3. To determine agreement between direct and indirect methods, LVM was measured in 38 male rats by echocardiography and compared with direct measurement of the left ventricular weight at sacrifice. The mean difference between the two methods was 9.14 +/- 56.6 mg. The limits of agreement were from -122.4 to +104.1 mg. 4. Echocardiography was then used to measure LVM in eight male spontaneously hypertensive rats and eight male normotensive Donryu rats at 9 weeks of age. The mean LVM of SHR was 768.2 mg +/- 152.6, which was significantly (2P less than 0.001) greater than the LVM of DRY (435.4 mg +/- 32.2). 5. We conclude that echocardiography provides a non-invasive, repeatable and relatively accurate estimate of LVM in rats. The method is a potentially useful tool for studying the development or regression of cardiac hypertrophy in longitudinal experiments.

Animals↗

A developmental genetic mechanism involving angiotensin in spontaneously hypertensive rats.

1. Certain genes drive the blood pressure of young spontaneously hypertensive rats (SHR) to stable hypertensive levels in adulthood. 2. Relatively brief blockade of the renin-angiotensin system in young SHR can reset the track of SHR pressure to a lower level for the life of the animal. This effect appears to be a characteristic of the SHR strain. 3. It is proposed that the expression of a particular SHR hypertensive gene depends on angiotensin and is limited to young animals. This hypothesis explains some of the phenotypic abnormalities observed in young SHR and the decremental long-term blood pressure effects following ACE inhibitor treatment. 4. The identity of the gene is unclear, but information from biochemical, physiological and pharmacological studies may direct attention to distinct candidate genes within specific chromosomal regions of interest. 5. Understanding these genetic mechanisms may have important implications for future preventive strategies.

Aging↗

Renal transplantation between male and female spontaneously hypertensive rats.

The higher blood pressures of male compared with female spontaneously hypertensive rats (SHR) are the result of the inheritance of different sex chromosomes, although the pathophysiology has not been defined clearly. The reported hypertensive effect of kidneys transplanted from male SHR raises the possibility of a sex-specific renal abnormality, but the effects of transplanting female SHR kidneys have not been studied. To test this hypothesis, single kidneys were transplanted from male SHR into female SHR recipients and vice versa, followed by removal of the native kidneys of the recipients. Male and female SHR that had undergone uninephrectomy were used as controls. After surgery at 14 weeks of age, systolic blood pressures were measured each week until 30 weeks of age. The replacement of a SHR female kidney with a SHR male kidney was not associated with any significant rise in blood pressure, and the replacement of a SHR male kidney with a kidney from a female SHR was not associated with any reduction in blood pressure. These results indicate that the sexual dimorphism of SHR blood pressure is not the result of intrinsic renal differences between males and females and that nonrenal factors would be more likely to explain the blood pressure differences between the sexes.

Aging↗

Renal, cardiovascular and hormonal characteristics of young adults with autosomal dominant polycystic kidney disease.

We studied young adults with autosomal dominant polycystic kidney disease (ADPKD) to determine the characteristics that precede renal impairment. Nineteen affected (A) and 20 unaffected (U) offspring from families with ADPKD showed no significant differences in basal glomerular filtration rate (A: mean 97, SD 19; U: 100, SD 23 ml/min/1.73 m2) or renal functional reserve, but effective renal plasma flow was significantly lower in affected offspring (A: 532, SD 86; U: 605, SD 118 ml/min/1.73 m2, P less than 0.01). Plasma renin activity [A: median 26 (95% CI: 15 to 37); U: 14 (11 to 27) microU/ml, P less than 0.05, one-tailed test] and aldosterone [A: 2.5 (2.0 to 3.0), U: 1.0 (1.5 to 2.0) micrograms/100 ml, P less than 0.04, one-tailed test] were increased in affected offspring despite the higher systolic blood pressure (A: mean 123, SD 5; U: 115, SD 3 mm Hg, P less than 0.02) and significant expansion of total exchangeable sodium (A: 40.8, SD 2.3; U: 38.0, SD 3.5 mmol/kg, P less than 0.01). The ouabain-sensitive component of red cell sodium efflux was less in affected offspring (A: 0.258; SD 0.040; U: 0.288, SD 0.042 hr-1, P less than 0.04) and in both groups was correlated inversely with total exchangeable sodium. Echocardiography revealed no difference in left ventricular mass index nor prevalence of mitral valve prolapse. Potential cyst growth factors such as the glucocorticoids and somatomedin C were similar in both affected and unaffected groups.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent↗

Angiotensin converting enzyme inhibitors, regional vascular hemodynamics, and the development and prevention of experimental genetic hypertension.

During the development of hypertension in young spontaneously hypertensive rats (SHR) vascular resistance is increased, particularly in the renal circulation, and, to a lesser extent, in the splanchnic bed. Treatment with angiotensin converting enzyme inhibitors in young SHR reverses the renovascular abnormalities more effectively than simple vasodilators, suggesting that the resistance changes may depend on angiotensin II. Perindopril treatment during the development of hypertension causes a reduction in blood pressure as a result of a fall in total peripheral resistance, which persists long after treatment is stopped. These long-term effects can be prevented by replacing angiotensin during perindopril treatment. Not all organs share the long-term resistance changes following perindopril treatment, which are most marked in the renal, splanchnic, and cerebral circulations. The heterogeneous patterns of regional vascular resistance during the development and after prevention of hypertension with angiotensin converting enzyme inhibitors in SHR suggest that local factors, for example, angiotensin II related to the tissue renin-angiotensin system or local adrenergic activity, may be important in the genesis of high blood pressure in this genetic model.

Angiotensin-Converting Enzyme Inhibitors↗

Regional chromosomal assignment of the human mineralocorticoid receptor gene to 4q31.1.

The gene for human mineralocorticoid receptor (hMR), previously mapped to chromosome 4, has been further localized to 4q31.1 by in situ hybridization using a biotinylated 3.75 kb human cDNA clone encoding the primary amino acid sequence of hMR as a probe. Preliminary comparative mapping studies in orangutan (Pongo pygmaeus) suggest localization of the probe to the long arm of chromosome 3.

Animals↗

Brief angiotensin converting enzyme inhibitor treatment in young spontaneously hypertensive rats reduces blood pressure long-term.

Our study examines the long-term cardiovascular effects after a brief period of angiotensin converting enzyme (ACE) inhibitor treatment in young spontaneously hypertensive rats (SHR). SHR were treated with perindopril (3 mg/kg/day) by gavage from 2 to 6, from 6 to 10, or from 2 to 10 weeks of age. Systolic blood pressure was measured in the tail weekly until 25 weeks of age. Corresponding control groups received distilled water for the same periods. In each treatment group blood pressure was reduced significantly during treatment, rose when treatment stopped, but plateaued significantly below control SHR thereafter. This difference in blood pressure at 25 weeks of age was due to reduced total peripheral resistance as determined by microsphere methods, but plasma renin activity and angiotensin II concentrations were not different. Cardiac hypertrophy was also reduced in treated SHR. In a separate experiment, perindopril treatment from 6 to 10 weeks of age resulted in a significant reduction in the media/lumen ratios of mesenteric resistance vessels at 32 weeks of age. Concomitant administration of angiotensin II with perindopril from 6 to 10 weeks of age not only prevented the long-term effects on blood pressure seen with perindopril treatment alone but was associated with cardiovascular hypertrophy in excess of untreated control SHR. Finally, perindopril given for a shorter period (6 to 7 weeks) or later in life (20 to 24 weeks) had no significant long-term effects on blood pressure. These results demonstrate that a 4-week period of ACE inhibitor treatment in young SHR is sufficient to prevent the full expression of genetic hypertension and cardiovascular hypertrophy and that angiotensin II might be important in the development of hypertension in this model, its role in later life being less important.

Angiotensin II↗

Genetic co-segregation of renal haemodynamics and blood pressure in the spontaneously hypertensive rat.

1. To determine the relevance of renal circulatory abnormalities found in the immature spontaneously hypertensive rat (SHR) to the genetic hypertensive process, glomerular filtration rate and renal blood flow were measured in conscious F2 rats, derived from cross-breeding SHR and normotensive Wistar-Kyoto rats (WKY), at 4, 11 and 16 weeks of age by determining the renal clearances of 51Cr-ethylenediaminetetra-acetate and 125I-hippuran respectively. Plasma renin activity was measured at 11 and 16 weeks of age. 2. Mean arterial pressure, glomerular filtration rate and renal blood flow increased between 4 and 11 weeks of age. Between 11 and 16 weeks the mean glomerular filtration rate and renal blood flow did not alter, although the mean arterial pressure rose significantly. At 11 weeks of age, during the developmental phase of hypertension, a significant negative correlation between mean arterial pressure and both glomerular filtration rate and renal blood flow was noted. However, by 16 weeks when the manifestations of genetic hypertension were more fully expressed, no correlation between mean arterial pressure and renal blood flow or glomerular filtration rate was observed. Plasma renin activity was negatively correlated with both glomerular filtration rate and renal blood flow, but the relationship was stronger at 11 than at 16 weeks of age. 3. These results suggest that the reduction in renal blood flow and glomerular filtration rate, found in immature SHR, is genetically linked to the hypertension and may be of primary pathogenetic importance. It is proposed that the increased renal vascular resistance in these young animals stimulates the rise of systemic arterial pressure which returns renal blood flow and glomerular filtration rate to normal.

Animals↗

Failure of chronic administration of growth hormone to affect blood pressure, vascular reactivity and sodium metabolism in normal rats.

To examine the effects of exogenous growth hormone on the cardiovascular system and sodium metabolism, ovine growth hormone was given daily to female rats for 5 weeks. Growth hormone resulted in a significant increase in body mass compared with controls. However, blood pressure in the treated rats was not significantly different from that in controls. Following treatment, the baseline resistances and pressor responses of the isolated mesenteric beds did not differ between the two groups. In addition, exchangeable sodium, erythrocytic intracellular sodium and transmembrane sodium efflux rate constants were not altered significantly by growth hormone treatment. The failure to observe cardiovascular or sodium effects of growth hormone despite significant potentiation of growth is, at present, unexplained.

Animals↗

Effects of sodium intake and aldosterone on the renal pressure-natriuresis.

To study the effects of dietary sodium and plasma aldosterone on pressure-natriuresis (PN) we examined six groups of adult, male Sprague-Dawley rats. Group 1 received normal-sodium diet, group 2 high-sodium diet, and group 3 low-sodium diet for 3 wk; group 4 was given low sodium for 3 wk then high sodium for 3 wk; groups 5 and 6 received high sodium for 3 wk but during the 3rd wk were also given aldosterone by subcutaneous infusion to mimic the plasma aldosterone seen in groups 1 and 3, respectively. After the diets, rats were killed, and urinary sodium excretion, glomerular filtration rate (GFR), and calculated tubular sodium reabsorption (FRNa) were measured during stepwise increases in perfusion pressure in isolated perfused kidneys from each group. No significant differences in blood pressure were seen between any of the groups. The PN curves for groups 2 and 3 were significantly different (P less than 0.001) and shifted to the left and right of group 1, respectively. These shifts appeared to be the result of significant (P less than 0.001) differences in FRNa rather than changes in GFR. PN was not significantly different in groups 4 and 2, indicating that the effects of low-sodium diet were reversible. The infusion of aldosterone in groups 5 and 6 was associated with modest and significant (P less than 0.001) shifts, respectively, of the PN curve to the right of the curve of rats in group 2. In group 6 this shift appeared to be due to significant (P less than 0.001) changes in FRNa, so as to resemble that seen in low-sodium rats of group 3.(ABSTRACT TRUNCATED AT 250 WORDS)

Aldosterone↗