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D Ganten

Publications and source records attributed to D Ganten.

At least 127 records · Page 7Linked to original sources

Human renin-dependent hypertension in rats transgenic for human angiotensinogen.

To examine the utility of rats transgenic for human angiotensinogen in the study of human renin-induced hypertension, we first developed assays to measure both the human and rat renin-angiotensin systems in these rats. We used human and mouse renin, transgenic human angiotensinogen, and the human renin inhibitor Ro 42-5892 to determine human- and rat-specific plasma angiotensinogen concentrations, renin activity, and renin concentration. The assays were validated with rat and human plasma mixed in known amounts and with plasma from rats transgenic for human renin. We then tested the human angiotensinogen-transgenic rats by infusing recombinant human renin over 10 days (50 ng/h, n=4) with osmotic minipumps. High human angiotensinogen transgene expression was found in the liver, brain, kidney, gastrointestinal tract, and aorta, whereas rat angiotensinogen gene expression was detected in the liver and brain. During human renin infusion, blood pressure increased to >200/150 mm Hg. Before infusion, human angiotensinogen was 100-fold greater than rat angiotensinogen (141 +/- 73 versus 1.2 +/- 0.16 microg angiotensin l/mL); the relation was not changed by renin infusion. Plasma renin activity increased 300-fold; human plasma renin concentration increased to very high levels (449 +/- 262 ng of angiotensin I per mL per hour), whereas rat plasma renin concentration decreased to undetectable levels. Thus, chronic human renin infusion resulted in severe hypertension with extreme plasma renin activity and plasma renin concentration. However, even at these levels, human angiotensinogen was not rate limiting and angiotensin II was not a significant stimulus for angiotensinogen production. We conclude that these transgenic rats represent a novel model of human renin-dependent hypertension.

Angiotensinogen↗

Salt-sensitive hypertension in (mREN-2)27 transgenic rats.

The (mREN-2)27 transgenic model of hypertension was developed to investigate the effect of genetic over activity of angiotensin II systems as a contributing factor in the development of arterial hypertension. In this model, transgene-positive rats demonstrate elevated renin-angiotensin system activity not only in the circulatory system but also in adrenal gland, reproductive organs, and brain. Since evidence indicates that angiotensin peptides and osmotic stimuli interact synergistically to produce exaggerated behavioral, endocrine, and cardiovascular effects, we examined the effect of salt consumption on arterial pressure, plasma vasopressin, and body fluid balance in male (mREN-2)27 transgene-positive and -negative rats. Four days of drinking 2% NaCl increased mean arterial pressure from 165 +/- 10 to 199 +/- 7 mm Hg in transgene-positive rats. In contrast, transgene-negative rats showed no change in arterial pressure (126 +/- 5 to 128 +/- 3 mm Hg). Plasma vasopressin levels were significantly elevated only in transgene-positive rats, whereas pituitary levels of vasopressin were significantly lower in transgene-positive rats compared with transgene-negative controls (18 +/- 3 and 118 +/- 14 ng, respectively). Although transgene-positive rats consumed significantly more 2% NaCl than did transgene-negative rats, during this period 24-hour sodium balance did not differ between the groups. Since fluid and electrolyte balance is similar between the two groups of rats, the data suggest that transgene-positive rats may be more sensitive to the effects of increased NaCl intake in terms of both endocrine and cardiovascular responses.

Animals↗

Role of area postrema in transgene hypertension.

Transgenic [Tg(+)] rats carrying the mouse Ren-2d gene [(mRen-2d)27] are a newly established monogenetic form of experimental hypertension. To determine whether the area postrema contributes to the development of hypertension in mRen-2 Tg(+) rats, this circumventricular organ in the fourth ventricle was removed from 5-week-old Tg(+) rats. From weeks 4 through 9, systolic blood pressure was measured weekly by tail-cuff plethysmography in area postrema-lesioned and sham-lesioned Tg(+) rats. Although systolic blood pressure rose markedly in sham-lesioned Tg(+) rats, the increase in systolic blood pressure was significantly attenuated in area postrema-lesioned Tg(+) rats. At 9 weeks of age, a femoral artery was cannulated for the measurement of arterial pressure in awake rats. Mean arterial pressure (MAP) in area postrema-lesioned Tg(+) rats was significantly (P < .01) lower than that in sham-lesioned rats: 171 +/- 7 and 132.+/- 5 mm Hg, respectively. Baroreceptor reflex was evaluated by intravenous infusion of sodium nitroprusside. There was no significant difference in baroreceptor reflex sensitivity between the two groups. Intravenous pentolinium (5 mg/kg), used to produce sympathetic ganglionic block, caused significant decreases in MAP in both groups. However, the reduction of MAP in the sham-lesioned group was significantly (P < .05) greater than that in the area postrema-lesioned group: -73 +/- 4 and -48 +/- 6 mm Hg, respectively. The ratio of left ventricular weight to body weight in sham-lesioned Tg(+) rats was significantly larger than that of area postrema-lesioned rats. These results suggest that ablation of the area postrema markedly attenuates the development of hypertension in mRen-2d Tg(+) rats, and this attenuation may be attributed to decrease in sympathetic outflow.

Animals↗

Subcellular localization of angiotensin II immunoreactivity in the rat cerebellar cortex.

We localized angiotensin II (Ang II) immunoreactivity in the rat cerebellar cortex with immunogold staining methods. Perfusion fixation with high amounts of glutaraldehyde and the use of cryoultramicrotomy caused remarkable changes in immunostaining versus formaldehyde/picric acid fixation. With the use of monoclonal and polyclonal anti-Ang II, Ang II immunoreactivity was prominent in cerebellar neurons such as Purkinje, granule, basket, and stellate cells. At the subcellular level, the peptide was clearly localized in nuclei, and in some cell types, such as endothelial and granule cells, it was nearly exclusively present in the transcriptionally active euchromatin. Intracellular Ang II immunoreactivity was also detected in vesicle-like structures in cytoplasm and mitochondria and at cell-cell contacts. Additional experiments with liver and adrenal tissue confirmed the nuclear localization of Ang II immunoreactivity, suggesting a role of Ang II in the regulation of gene transcription.

Adrenal Glands↗

Synthesis and secretion of natriuretic peptides in the hypertensive TGR(mREN-2)27 transgenic rat.

To examine the pathophysiological mechanisms in transgenic rats carrying the murine Ren-2d renin gene, we studied atrial natriuretic peptide (ANP) and brain natriuretic peptide (BNP) gene expression and secretion in 12-week-old hypertensive TGR(mREN-2)27 and normotensive Sprague-Dawley rats. Hypertension and marked left ventricular hypertrophy in TGR(mREN-2)27 rats were associated with high baseline plasma levels of immunoreactive ANP (148 +/- 18 versus 34 +/- 3 pmol/L, hypertensive versus normotensive rats; P < .001), whereas plasma immunoreactive BNP levels did not differ significantly between the strains (19 +/- 4 versus 12 +/- 3 pmol/L, P = .06). ANP mRNA and immunoreactive ANP levels in the left ventricular endocardial and epicardial layers in TGR(mREN-2)27 rats were about 20 to 40 times higher (P < .001) than those in normotensive rats. There were no statistically significant differences between atrial and ventricular BNP mRNA levels, but left ventricular immunoreactive BNP concentrations were twofold higher in hypertensive TGR(mREN-2)27 than in normotensive rats. Infusion of [Arg8]-vasopressin (0.05 microgram/kg per minute IV, for 2 hours) in normotensive rats produced rapid increases (twofold, P < .05 to .01) in left ventricular BNP mRNA and immunoreactive BNP levels, whereas ventricular BNP mRNA and peptide levels did not change significantly in hypertensive rats. The increase in left atrial BNP mRNA levels in response to acute pressure overload was also significantly smaller in the hypertensive than normotensive rats (3.5-fold versus 5.2-fold, P < .01). Furthermore, the proportional but not absolute (in picomoles per liter) increase in plasma immunoreactive ANP was smaller in transgenic rats in response to acute saline and [Arg8]-vasopressin infusions (0.9% NaCl: 1.9-fold increase versus 4.4-fold increase in normotensive rats, P < .001; [Arg8]-vasopressin: 2.2-fold versus 4.8-fold increase, P < .001). These results show that baseline and cardiac overload-induced increases in BNP synthesis are markedly attenuated in transgenic rats carrying the murine Ren-2d renin gene. In addition, acute volume and pressure overload produced a smaller proportional increase in ANP secretion in hypertensive rats than normotensive rats. These alterations in the natriuretic peptide system may contribute to the pathogenesis of hypertension and cardiovascular complications in the TGR(mREN-2)27 rat.

Animals↗

Cardiorenal consequences of dual angiotensin converting enzyme and neutral endopeptidase 24.11 inhibition in transgenic rats with an extra renin gene.

The cardiovascular consequences of mixed angiotensin converting enzyme and neutral endopeptidase (ACE/NEP) inhibition with alatriopril/alatrioprilat were compared with the consequences of endopeptidase (NEP) inhibition alone with (S)-thiorphan/ecadotril by determining the acute effects of the compounds on hemodynamic, hormonal, and renal parameters in hypertensive transgenic rats harboring an additional mouse renin gene (TGR(mRen2)27). Infusion of alatrioprilat and (S)-thiorphan in anesthetized TGR decreased blood pressure in a dose-dependent manner, but heart rate remained unchanged. The renal excretion of water, sodium, and cGMP also increased dose-dependently, with nearly the same maximal effects after infusion of (S)-thiorphan and alatrioprilat. At the end of infusion, plasma ANP and cGMP were elevated both after (S)-thiorphan and after alatrioprilat, whereas plasma renin activity increased only after alatrioprilat. The ACE inhibition effect was studied in ganglion-blocked rats receiving a continous infusion of angiotensin I. Alatrioprilat decreased the mean blood pressure dose-dependently, but about 30 times higher concentrations were needed to produce the same effects as the ACE inhibitor captopril. At a dose of 30 mg/kg p.o., ecadotril, the orally active prodrug of (S)-thiorphan, decreased the systolic blood pressure in conscious TGR by 22 mmHg for 6 h, whereas alatriopril (100 mg/kg p.o.) also reduced the systolic pressure in these rats with a maximal reduction of 22 mmHg. In addition, ecadotril and alatriopril significantly increased the urinary excretion of sodium. In contrast, ACE inhibition with captopril decreased the excretion of sodium dose-dependently in conscious TGR. In conclusion, combined ACE/NEP inhibition produced a comparable lowering of blood pressure and improvement in renal function as those with NEP inhibition in TGR. Dual ACE/NEP inhibition may therefore be useful in cardiovascular conditions such as hypertension or heart failure.

Alanine↗

Neutral endopeptidase inhibition potentiates the effects of natriuretic peptides in renin transgenic rats.

The influence of neutral endopeptidase (NEP) inhibition with (S)-thiorphan on the hormonal, renal, and blood-pressure-lowering effects of an infusion of atrial (ANP), brain (BNP), and C-type natriuretic peptide (CNP) was evaluated in hypertensive transgenic rats (TGR) harboring an additional mouse renin gene (TGR(m(Ren2)27)). These TGR possess an activated natriuretic peptide system as compared with Sprague-Dawley rats (SDR), used in this study as control. (S)-Thiorphan significantly decreased blood pressure in anesthetized TGR but not in anesthetized SDR during the 60-min infusion period. Exogenously administered ANP decreased blood pressure in SDR with no significant effects in TGR after 60 min. In contrast, BNP infusion significantly decreased blood pressure in TGR, while changes in SDR were not significant. The blood pressure was further decreased after combined infusion of ANP and BNP with (S)-thiorphan in TGR. No effect on blood pressure was registered during infusion of CNP in either experimental group. The plasma levels of ANP, BNP, and cGMP were higher in TGR than in SDR, whereas plasma renin activity was lower. Co-administration of ANP, BNP, or CNP with the NEP inhibitor (S)-thiorphan potentiated the plasma ANP, BNP, and cGMP. Infusion of ANP alone did not affect BNP plasma levels of TGR and vice versa. In contrast, CNP infusion increased ANP plasma levels in both TGR and SDR. Renal excretion of sodium and cGMP increased after infusion of (S)-thiorphan and ANP or BNP in both TGR and SDR. The combination of ANP and (S)-thiorphan had a slightly greater effect on urinary excretion of sodium and cGMP in TGR than either compound alone, but the effects were more pronounced in SDR than in TGR. Finally, infusion of CNP alone and in combination with (S)-thiorphan influenced the excretion of sodium and cyclic GMP only slightly. These results indicate that inhibition of neutral endopeptidase by (S)-thiorphan potentiates the hemodynamic and renal effects of natriuretic peptides ANP and BNP, and to some extent those of CNP, in hypertensive TGR and normotensive SDR. In contrast to ANP and BNP, infusion of CNP had no effect on the blood pressure in anesthetized TGR or SDR. Inhibition of NEP therefore seems to be a promising way to potentiate endogenous levels of natriuretic peptides, which may be of therapeutic benefit in cardiovascular diseases such as hypertension or heart failure.

Animals↗

Effect of losartan on right ventricular hypertrophy and cardiac angiotensin I-converting enzyme activity in pulmonary hypertensive rats.

The aim of this study was to investigate the effect of prophylactic treatment with the angiotensin type 1 (AT1) receptor antagonist losartan on right ventricular hypertrophy and cardiac angiotensin 1-converting enzyme (ACE) activity in a rat model of monocrotaline-induced pulmonary hypertension. Losartan failed to prevent either pulmonary hypertension or right ventricular hypertrophy. Right ventricular ACE in untreated pulmonary hypertensive rats did not differ from control rats. Losartan treatment in pulmonary hypertensive rats caused a significant 2-fold increase of ACE activity in the hypertrophied right (p < 0.005) but not in the left ventricle. Thus, cardiac ACE activity is not stimulated in rats with monocrotaline-induced right ventricular hypertrophy. Prophylactic losartan treatment in this model of progressive pulmonary hypertension failed to prevent or reduce the increase in ventricular afterload. The relevance of the increase in right ventricular ACE activity during pulmonary hypertension after losartan treatment is unknown and needs to be evaluated in further studies.

Animals↗

Angiotensin I converting enzyme and chymase in cardiovascular tissues.

Recent studies have provided evidence that the human cardiovascular tissues contain components of the renin-angiotensin system: angiotensinogen, renin, angiotensin I converting enzyme (ACE), chymase and angiotensin II (Ang II) receptors. In addition to ACE, a cardiac Ang II forming serine proteinase, human heart chymase, has been identified in the human left ventricle. Unlike rat heart, only a minor (approximately 11%) component of Ang II forming activity in the human left ventricle was due to ACE, since the majority (approximately 80%) of activity was due to chymase. Human heart chymase has been purified to homogeneity and characterized. Recently, the cDNA and gene for this enzyme have been cloned. Biochemical characterization revealed that heart chymase is the most efficient and specific Ang II forming enzyme described thus far. The different cellular and regional distribution of ACE and heart chymase in the heart as well as in blood vessels implies distinct pathophysiological roles for these two Ang II forming enzymes. Several reports indicate that ACE-independent Ang II formation appears to take place in hypoxic or ischemic heart or blood vessel in vivo and to be involved in vascular remodeling after balloon injury. Therefore, it is very important to clarify the detailed mechanisms of the tissue Ang II formation in humans and its contribution to the pathophysiological changes in cardiovascular disease. In this review, we review the pathophysiological roles of the two main Ang II forming enzymes, ACE and chymase, in cardiovascular homeostasis.

Animals↗

Angiotensin-converting enzyme-independent pathways of angiotensin II formation in human tissues and cardiovascular diseases.

The tissue renin-angiotensin system plays an integral role in the homeostasis of blood pressure and in the pathogenesis of cardiovascular remodeling. These effects are primarily mediated through the paracrine and autocrine actions of locally produced angiotensin II (A II). It is generally accepted that the conversion of angiotension I to A II is mainly due to angiotensin-converting enzyme (ACE). However, there are several in vitro and in vivo reports of ACE-independent synthesis of A II in hypoxic and ischemic heart and blood vessels, which may also contribute to cardiovascular pathology. The differential cellular and regional expression of ACE and chymase in the human heart and blood vessels suggests distinct pathophysiologic roles for these two A II-forming enzymes. The study of different pathways involved in tissue A II formation, including that of ACE- and chymase-independent enzymes, will clarify their respective contribution to the pathophysiologic changes in cardiovascular diseases, and help in planning a more comprehensive clinical strategy. This report reviews the properties of human heart chymase, an A II-forming serine proteinase, and compares it with those of ACE.

Angiotensin II↗

Angiotensinogen gene M235T polymorphism is not associated with diabetic nephropathy. The Diabetic Nephropathy Study Group.

BACKGROUND: There is agreement that a family history of hypertension (HT), is a predictor for the risk of diabetic nephropathy (DN) in patients with type 2 diabetes, and possibly also type 1 diabetes. It follows that genes related to the risk of hypertension must also be considered candidate genes for DN. The 235T allele of the angiotensinogen gene was found to be related to primary HT. METHODS: To examine whether it is predictive for DN as well, we examined the angiotensinogen gene polymorphism in 230 healthy local controls, 423 patients with type 1 diabetes (n = 180 with DN; n = 243 without DN) and 663 patients with type 2 diabetes (n = 310 with DN; n = 353 without DN). The angiotensinogen gene M235T polymorphism was determined using PCR amplification. RESULTS: The following results were obtained (i) no significant difference of genotype distribution (type 1: MM/MT/TT (%) 27.6/57.2/15.2 vs 27.2/56.1/16.7 (P = 0.92); type 2; MM/MT/TT (%) 31.7/48.2/2/20.1 vs. 32.9/46.8/20.3 (P = 0.93) or allele frequencies (type 1: M 0.56 vs. 0.55 (P = 0.795); type 2; M 0.56 vs. 0.56 (P = 0.86)) was found, between diabetic patients with or without DN, (ii) no difference was found between normotensive and hypertensive diabetic patients. CONCLUSION: The data argue against a role of the angiotensinogen gene M235T polymorphism in the manifestation of diabetic nephropathy or hypertension in diabetic patients.

Adult↗

[Development of a model of human renin hypertension in rats].

The effective development of human renin inhibitors meets its major obstacle in the absence of a suitable experimental rodent model and the species-specificity of human renin, exclusively cleaving its natural substrate human angiotensinogen. We have reconstructed the human renin-angiotensin system in transgenic rats over expressing the human angiotensinogen gene TGR (hAOGEN) 1623 by chronically injecting i.v. human recombinant renin. We have first established new in vitro enzyme kinetic techniques to measure the various components of the chimeric renin-angiotensin system and distinguished the two human and rat-specific pathways of generating angiotensin I by the human specific renin inhibitor Ro 42-5892 (Hoffmann-La Roche). Male heterozygous TGR had plasma levels of rat angiotensinogen of 1.2 +/- 0.2 mg Ang l/ml while the plasma levels of the transgene were 141 +/- 98 mg Ang l/ml (n = 41; not normally distributed). Transgene expression was found in the liver kidney, aorta, heart and adrenals. Four rats were infused i.v. with human recombinant renin at 50 ng/h over 9 days which chronically increased their blood pressure to > 200 mmHg while total plasma renin activity increased by a factor of 300. Rat renin disappeared form the plasma. This new model of experimental human renin-induced hypertension in rats will facilitate the screening and characterization of human renin inhibitors.

Angiotensinogen↗

Transgenic rats: tools to study the function of the renin-angiotensin system.

1. The development of the transgenic technology for the rat allowed the evaluation of gene functions in the cardiovascular system in vivo. New insights have been gained particularly in the functions of the renin-angiotensin system (RAS), as most transgenic rat models established so far carry genes of this system. 2. TGR(mREN2)27 is a rat harbouring the mouse Ren-2 gene and exhibiting fulminant hypertension. The plasma RAS in this animal is down-regulated; however, the tissue-specific production of angiotensin II is activated (e.g. in the adrenal gland, the brain and the vessel wall). The physiological consequences of this activation, which finally leads to hypertension, can be studied in TGR(mREN2)27, rendering it a valuable tool in the functional analysis of tissue RAS. 3. TGR(hREN) and TGR(hAOGEN) carry the human genes for renin and angiotensinogen, respectively. In these animals the species-specific interaction of the two proteins and the expression pattern of the genes can be studied. Furthermore, these animals can be used to test renin-inhibitory drugs for use in antihypertensive therapy. 4. Further refinement of transgenic methodology (e.g. by the development of gene targeting in rats), should enhance our understanding of the functions of the RAS in cardiovascular regulation.

Angiotensin Receptor Antagonists↗

The renin-angiotensin system and renal function in transgenic (mRen2)27 rats.

The transgenic rat (TGR)(mRen2)27 was the first hypertensive transgenic rat model developed. The model is unique in that it allows studying the effects of a single gene, namely the mouse salivary gland renin gene (mRen2), in the rat. The transgene is expressed in various rat tissues, including the central nervous system, adrenal gland, and the kidney. TGR exhibit a rightward shifted pressure-natriuresis curve that is overwhelmingly angiotensin II (Ang II) dependent. The mRen2 transgene, the rat's own renin gene, angiotensinogen, and the type 1 Ang II receptor, AT1, are all expressed in the kidneys of TGR. The rat's own renin gene is regulated normally in renal tissue, while the mRen2 transgene operates independently of blood pressure. These results, coupled with findings that the mRen2 transgene product converts rat angiotensinogen more effectively than endogenous rat renin, that the TGR may have high circulating mouse renin levels which increase with age, and the fact that high circulating prorenin concentrations are present in these TGR, shed light on the kidney's role in the blood-pressure-elevating mechanisms of TGR. The viewpoint that the kidneys are not mechanistically important in this TGR model must be revised.

Angiotensin II↗

Angiotensinogen messenger RNA stabilization by angiotensin II.

OBJECTIVE: To further characterize the molecular mechanism whereby angiotensin II stabilizes the angiotensinogen messenger (m)RNA through binding studies of the previously isolated polysomal stabilizing protein to partial and mutagenized sequences of the 3' untranslated region of the gene and to explore its importance to rodent genetic hypertension. DESIGN: Analysis of angiotensinogen mRNA mutants for half-life and binding to a polysomal protein with a molecular weight of 12000. METHODS: Protein/RNA interactions were determined in band shift assays employing radiolabelled 3' untranslated region of angiotensinogen mRNA. Measurement of the mRNA half-life used a cell-free incubation system and 3' untranslated region DNA sequences were polymerase chain reaction (PCR) cloned and sequenced. Sequences of normotensive Wistar-Kyoto (WKY) rats and spontaneously hypertensive rat (SHR) strains were compared. Point mutations were introduced by site directed mutagenesis. RESULTS: The angiotensinogen 3' untranslated region exhibited specific binding to the polysomal 12000 molecular weight protein which, in an in vitro incubation system, increased 10-fold the half-life of full-length angiotensinogen mRNA; no effect was observed with 3' deleted angiotensinogen mRNA indicating a regulatory function of protein at the 3' untranslated region. Sequence analysis of PCR amplified DNA fragments identified a (G-->C) point mutation in the La Jolla colony SHR. Following introduction of this point mutation into wild-type 3' untranslated regions, protein binding significantly increased (wild-type binding constant, 19 mumol/l; mutant binding constant 3.5 mumol/l), indicating that this point mutation affects 3' untranslated region secondary structure, binding of the RNA stabilizing protein and, consequently, the half-life of angiotensinogen mRNA. Deletion of a U-rich region (position 1609-1613, UCCUU) expressed twice in the 3' untranslated region almost completely abolished protein binding suggesting this sequence as one part of the putative binding motif in the 3' untranslated region. CONCLUSIONS: Angiotensin II regulates hepatic angiotensinogen synthesis and secretion by inhibiting degradation of angiotensinogen mRNA by the action of a polysomal protein. Mutations in the 3' untranslated region mRNA coding sequence alter binding and half-life and may significantly affect the half-life of angiotensinogen mRNA thereby altering the secretion rate of angiotensinogen.

Angiotensin II↗

Genetic linkage of the ACE gene to plasma angiotensin-converting enzyme activity but not to blood pressure. A quantitative trait locus confers identical complex phenotypes in human and rat hypertension.

BACKGROUND: An allelic variant of the ACE gene has been found to be linked to plasma angiotensin-converting enzyme (ACE) activity in humans and has been implicated in the etiology of some common cardiovascular disorders. Previously, we have shown significant genetic linkage of blood pressure to a region on rat chromosome 10 that contains ACE in an experimental F2-intercross between the stroke-prone spontaneously hypertensive rat (SHRSPHD) and the normotensive Wistar-Kyoto (WKYHD-0) reference strain. Subsequent investigations revealed marked differences in plasma ACE activity among the SHRSPHD and WKYHD-0 strains. Nonetheless, the physiological relevance of these findings remained obscure. We therefore investigated the genetic determination of plasma ACE activity and its relation to blood pressure and dietary NaCl exposure in a model of experimental genetic hypertension, the SHRSPHD. METHODS AND RESULTS: We conducted a further crossbreeding experiment between SHRSPHD and a congenic reference strain, WKYHD-1, that carries a 6-centimorgan (cM) long, SHRSP-homologous segment introgressed in chromosome 10, 26 cM remote from ACE. This allowed us to contrast effects on blood pressure and ACE activity conferred by the ACE locus with other more remote loci within the congenic chromosomal region. Genetic analysis in this F2 (WKYHD-1 x SHRSPHD) cross revealed that plasma ACE activity was determined almost entirely by genetic effects of the ACE gene locus (lod score = 43). However, neither plasma ACE nor the ACE locus showed any cosegregation with blood pressure before or after dietary NaCl exposure. CONCLUSIONS: These results demonstrate that a molecular variant of the ACE gene determines plasma ACE activity but exhibits no direct effect on blood pressure. Moreover, the findings also exclude the possibility that plasma ACE is secondarily affected by blood pressure or excess dietary NaCl exposure. Our results reconcile the previous discrepancy between findings in human and experimental hypertension.

Animals↗

Dissection of a quantitative trait locus for genetic hypertension on rat chromosome 10.

We have previously identified a locus on rat chromosome 10 as carrying a major hypertension gene, BP/SP-1. The 100:1 odds support interval for this gene extended over a 35-centimorgan (cM) region of the chromosome that included the angiotensin I-converting enzyme (ACE) locus as demonstrated in a cross between the stroke-prone spontaneously hypertensive rat (SHRSPHD) and the normotensive Wistar-Kyoto (WKY-0HD) rat. Here we report on the further characterization of BP/SP-1, using a congenic strain, WKY-1HD. WKY-1HD animals carry a 6-cM chromosomal fragment genotypically identical with SHRSPHD on chromosome 10, 26 cM away from the ACE locus. Higher blood pressures in the WKY-1HD strain compared with the WKY-0HD strain, as well as absence of linkage of the chromosome 10 region to blood pressure in an F2 (WKY-1HD x SHRSPHD) population suggested the existence of a quantitative trait locus, termed BP/SP-1a, that lies within the SHRSP-congenic region in WKY-1HD. Linkage analysis in the F2 (WKY-0HD x SHRSPHD) cross revealed that BP/SP-1a is linked to basal blood pressure, whereas a second locus on chromosome 10, termed BP/SP-1b, that maps closer to the ACE locus cosegregates predominantly with blood pressure after exposure to excess dietary NaCl. Thus, we hypothesize that the previously reported effect of BP/SP-1 represents a composite phenotype that can be dissected into at least two specific components on the basis of linkage data and congenic experimentation. One of the loci identified, BP/SP-1a, represents the most precisely mapped locus affecting blood pressure that has so far been characterized by random-marker genome screening.

Animals↗

Increased vasopressor actions of intraventricular neuropeptide Y-(13-36) in spontaneously hypertensive versus normotensive Wistar-Kyoto rats. Possible relationship to increases in Y2 receptor binding in the nucleus tractus solitarius.

The C-terminal NPY fragment (13-36)[NPY-(13-36)], a Y2 receptor agonist, elicits vasopressor responses upon central administration. The cardiovascular responses of NPY-(13-36) together with the distribution of NPY receptor subtypes within the nucleus tractus solitarius (nTS) have therefore been studied in spontaneously hypertensive rats (SHR). NPY-(13-36) was injected intracerebro-ventricularly in different doses (7.5 to 3000 pmol) in awake, unrestrained rats to evaluate the cardiovascular effects. NPY receptor subtypes were studied by autoradiography using [125I]peptide YY ([125I]PYY) as a radioligand and by masking the NPY Y1 and Y2 receptor subtypes with unlabelled [Leu31,Pro43]NPY and NPY-(13-36) respectively. In both male SHR and age-matched male normotensive Wistar-Kyoto rats (WKY) NPY-(13-36) injections elicited vasopressor effects. In WKY this effect was dose-dependent and became significant at doses from 75 pmol, whereas in the SHR the vasopressor effect had a longer duration than in the WKY and became significant at lower doses (25 pmol) but associated with the development of an early ceiling effect. The heart rate was unaffected in both groups of rats. Total specific [125I]PYY binding in the nTS was 25% higher in SHR than in WKY rats. By masking the Y1 and Y2 receptor subtypes respectively it could be shown that this difference was due to an increase in Y2 receptor binding within the nTS. The present results give evidence for an increased potency but not an increased efficacy of NPY-(13-36) in inducing a pressor response in the SHR associated with a longer duration as compared with the WKY rats.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗