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M Pravenec

Publications and source records attributed to M Pravenec.

At least 91 records · Page 5Linked to original sources

Cosegregation of the endothelin-3 locus with blood pressure and relative heart weight in inbred Dahl rats.

OBJECTIVE: To determine whether the endothelin-1 or endothelin-3 genes are genetically linked with blood pressure and relative heart weight in segregating rat populations, in the context of an elevated dietary sodium chloride intake. METHODS: Endothelin-1 and endothelin-3 genotypes of rats in segregating populations, derived from crosses of Dahl salt-sensitive (SS/Jr) rats with contrasting inbred strains, including Lewis rats, spontaneously hypertensive rats and Dahl salt-resistant (SR/Jr) rats, were determined using restriction fragment length polymorphisms. Segregating populations were fed a high (8%)-sodium chloride diet. Linkage of genotype with blood pressure or relative heart weight was determined by analysis of variance. Chromosomal location of the rat endothelin-3 gene was determined by genotyping a panel of recombinant inbred strains. RESULTS: Two alleles for the endothelin-1 gene and three alleles for the endothelin-3 gene were identified. The endothelin-1 locus did not cosegregate with blood pressure or relative heart weight. The endothelin-3 locus cosegregated with blood pressure and relative heart weight in an SS/Jr x F1 (SS/Jr x SR/Jr) population, but not in populations containing a higher percentage of genes from the SR/Jr strain. The endothelin-3 and seminal vesicle protein-1 loci were linked and located on rat chromosome 3. CONCLUSION: The endothelin-3 gene is, or is linked to, a locus on chromosome 3 that regulates blood pressure and relative heart weight in inbred Dahl rats, and these effects were strongly dependent on the genetic background.

Animals↗

Renal renin activity is associated with alterations of the renin gene in recombinant inbred rat strains.

1. A structural alteration within the first intron of the renin gene in spontaneously hypertensive rats was demonstrated to co-segregate with blood pressure in some sets of F2 hybrids or recombinant inbred strains. There is no evidence as to whether restriction fragment length polymorphism of the renin gene is associated with any of the changes in the renin tissue level. For this reason we have determined renal renin activity in spontaneously hypertensive, Wistar-Kyoto and Brown Norway rats as well as in 22 recombinant inbred strains derived from F2 hybrids of spontaneously hypertensive and Brown Norway rats. 2. At the age of 4 months significantly lower renal renin activity was observed in spontaneously hypertensive rats than in both normotensive rat strains, Wistar-Kyoto and Brown Norway. The presence of the spontaneously hypertensive rat allele in recombinant inbred strains was associated with a substantially lower renal renin activity as compared with recombinant inbred strains bearing the Brown Norway rat allele. There was no relationship between renal renin activity and the polymorphism in either the angiotensinogen gene or the angiotensin-converting enzyme gene. 3. There was a borderline correlation between blood pressure and renal renin activity in recombinant inbred strains. Nevertheless, additional comparisons within recombinant inbred strains bearing the spontaneously hypertensive rat allele of the renin gene failed to reveal any significant relationship between blood pressure level and renal renin activity. 4. Our data suggest that the restriction fragment length polymorphism marking the renin gene of the spontaneously hypertensive rat is accompanied by an alteration in the renin-angiotensin system at the renal level.(ABSTRACT TRUNCATED AT 250 WORDS)

Angiotensinogen↗

Assignment of rat linkage group V to chromosome 19 by single-strand conformation polymorphism analysis of somatic cell hybrids.

The rat provides a number of important models of human genetic disease; however, the rat genetic map has not been extensively developed. Although most rat chromosomes carry several gene assignments, some major linkage groups (LG) remain to be mapped. To determine the chromosome location of the largest unmapped linkage group in the rat (LG V containing multiple carboxylesterase loci), we used single-strand conformation polymorphism analysis to identify the rat esterase-10 gene in a panel of rat x mouse somatic cell hybrids. We found that the carboxylesterase gene family and hence LG V are located on rat chromosome 19. We have also confirmed the assignment of the angiotensinogen gene to rat chromosome 19 and have used a large set of recombinant inbred strains to map two anonymous variable number of tandem repeat (VNTR) markers to this chromosome. The current findings bring the total number of genes assigned to rat chromosome 19 from 3 to 19 and provide further evidence of substantial homology between this chromosome and chromosome 8 in the mouse.

Angiotensinogen↗

Platelet aggregation in spontaneous hypertension: genetic determination and correlation analysis.

OBJECTIVE: Hyper-responsive platelets are often found in essential hypertension. It has also been suggested that in hypertensive patients platelets may serve as an easily accessible indicator of abnormalities in contractile cell function. To test these suggestions, we analysed the relationship between platelet aggregation and genetic hypertension in the rat. METHODS: Linear regression analysis of mean values of recombinant inbred strains was used to evaluate the relationship between blood pressure and ADP-induced platelet aggregation. RESULTS: ADP-induced platelet aggregation in platelet-rich plasma in spontaneously hypertensive rats (SHR) was significantly decreased compared with in normotensive Brown Norway (BN) rats. However, in recombinant inbred strains, derived from (SHR x BN) F2 hybrids, correlation analysis revealed that platelet aggregation and blood pressure are independent traits. CONCLUSIONS: The present results suggest strongly that spontaneous hypertension and platelet hypo-aggregability in SHR were linked together by chance due to drift during selective inbreeding. The absence of a correlation between the two traits also indicates that alterations in platelet function in essential hypertension, often found in population-based studies, may have to be reaffirmed in genetically better-defined situations, e.g. by pedigree analysis.

Animals↗

Hypertensive strains and normotensive 'control' strains. How closely are they related?

The spontaneously hypertensive rat and the Dahl salt-sensitive rat are the most widely studied genetic models of hypertension. Many investigators have attempted to study the pathogenesis of hypertension by comparing these strains with their respective normotensive "controls," the Wistar-Kyoto rat and the Dahl salt-resistant rat. However, the genetic relation between each of these hypertensive strains and its corresponding normotensive control has never been clearly defined. Based on an analysis of DNA "fingerprint" patterns generated with six multilocus probes, we found that the spontaneously hypertensive rat (Charles River Laboratories, Inc.) is genetically quite different from its normotensive Wistar-Kyoto control: these strains only share approximately 50% of their DNA fingerprint bands in common. The inbred Dahl salt-sensitive rat (SS/Jr strain) (Harlan Sprague Dawley, Inc.) and the Dahl salt-resistant rat (SR/Jr strain) share approximately 80% of their DNA fingerprint bands in common. To the extent that the genes identified by DNA fingerprint analysis are representative of loci dispersed throughout the rodent genome, the current findings provide evidence of extensive genetic polymorphism between these commonly used hypertensive strains and their corresponding normotensive controls, particularly in the spontaneously hypertensive rat model. These findings, together with the fact that an enormous number of biochemical and physiological differences have been reported between these hypertensive and normotensive strains, suggest that continued comparison of spontaneously hypertensive rats with Wistar-Kyoto rats or Dahl salt-sensitive with salt-resistant rats will have limited value for investigating the pathogenesis of hypertension.

Animals↗

Restriction fragment length polymorphism of hsp70 gene, localized in the RT1 complex, is associated with hypertension in spontaneously hypertensive rats.

Previous studies from our laboratory have demonstrated that the intermediate phenotype of thermosensitivity is present in hypertensive mice and rats. Increased expression of hsp70 caused by increased transcription rate was demonstrated in vivo, in organs, and in cultured cells from spontaneously hypertensive rats and hypertensive mice. In this study, a polymorphism of this gene was revealed with BamHI enzyme by using a human hsp70 probe. A 4.4-kb fragment was visualized in normotensive rats (Brown-Norway BN.lx and Sprague-Dawley), and a 3.0-kb fragment was found in spontaneously hypertensive rats (SHR) of three different origins and in Wistar and Buffalo rats. Both fragments were present in the Wistar-Kyoto rat strain. The present study mapped the polymorphism of hsp70 into the RT1 complex in BN.1K and SHR.1N congenic strains. The hsp70 restriction fragment length polymorphism is associated with a blood pressure difference of 15 mm Hg in recombinant inbred strains. These results justify the search for a mechanism by which hsp70 could influence blood pressure.

Animals↗

Association of red blood cell sodium leak with blood pressure in recombinant inbred strains.

Red blood cell Na+ content as well as ouabain-resistant Na+ and Rb+ (K+) transport (susceptible or resistant to inhibition by loop diuretics) were determined in spontaneously hypertensive rats (SHR) and normotensive Brown Norway (BN) rats the erythrocytes of which were incubated in either saline or Mg(2+)-sucrose medium. Elevated ouabain-resistant Na+ net uptake contrasted with slightly decreased red blood cell Na+ content in SHR compared with BN rats. Acceleration of furosemide- and bumetanide-sensitive Na+ fluxes contributed to enhanced ouabain-resistant Na+ influx into SHR erythrocytes in saline medium, whereas higher furosemide- or bumetanide-resistant Na+ efflux caused greater ouabain-resistant Na+ efflux in Mg(2+)-sucrose medium. Furosemide- and bumetanide-resistant Rb+ leaks were augmented in SHR erythrocytes. The association of the disclosed ion transport alterations with blood pressure was examined in 20 recombinant inbred strains derived from F2 SHR x BN hybrids. Ouabain-resistant Na+ uptake as well as furosemide- and bumetanide-resistant Na+ inward leaks (but not red blood cell Na+ content or furosemide- and bumetanide-sensitive Na+ net uptake) cosegregated with systolic and pulse pressures but not diastolic pressure of the recombinant inbred strains. In contrast, neither ouabain-resistant Na+ efflux nor any component of ouabain-resistant Rb+ uptake correlated positively with blood pressure of the recombinant inbred strains. Increased ouabain-resistant Na+ influx was compensated for by accelerated ouabain-sensitive Na+ extrusion because red blood cell Na+ content was not elevated in the hypertensive strains. Thus, high cell Na+ turnover rates might be related to genetic hypertension if an altered Na+ inward leak would be less effectively compensated for in tissues involved in cardiovascular regulation.

Analysis of Variance↗

The rat renin gene: assignment to chromosome 13 and linkage to the regulation of blood pressure.

It has recently been suggested that in the rat, sequence variation in the renin gene or closely linked genes may have the capacity to affect blood pressure and contribute to the pathogenesis of hypertension. To map the chromosomal location of the rat renin gene and to investigate its relationship to the inheritance of increased blood pressure, we studied a panel of rat x mouse somatic cell hybrids and a large set of recombinant inbred (RI) strains derived from spontaneously hypertensive rats (SHR) and normotensive Brown-Norway (BN) rats. We have found that in the rat, the renin gene is located on chromosome 13 and that it belongs to a conserved synteny group located on chromosome 1 in man and mouse. We have also found the median blood pressure of the RI strains that inherited the renin allele of the SHR to be greater than that of the RI strains that inherited the renin allele of the normotensive BN rat. These findings, together with the results of previous studies, suggest that in the rat, sequence variation in the renin gene, or in genes linked to the renin locus on chromosome 13, may have the capacity to affect blood pressure.

Animals↗

Cosegregation of blood pressure with a kallikrein gene family polymorphism.

It has recently been proposed that sequence variation in the gene coding for tissue kallikrein might be involved in the pathogenesis of hypertension. However, molecular evidence of an association between a sequence alteration in the kallikrein gene family and the transmission of increased blood pressure has never been reported. In 32 recombinant inbred (RI) strains derived from the spontaneously hypertensive rat (SHR) and the normotensive Brown Norway rat (BN), we investigated whether a restriction fragment length polymorphism (RFLP) marking the kallikrein gene family cosegregated with blood pressure. In the RI strains that inherited the kallikrein RFLP from the SHR progenitor strain, the median systolic, diastolic, and mean arterial pressures were significantly greater than in the RI strains that inherited the kallikrein RFLP from the BN progenitor strain. These findings suggest that in the rat, sequence variation in the kallikrein gene family, or in closely linked genes, may have the capacity to affect blood pressure.

Animals↗

Genetic determination of heart and kidney weights studied using a set of recombinant inbred strains: the relationship to blood pressure.

The effects of genetic factors and blood pressure levels on heart and kidney weights were estimated in a set of recombinant inbred (RI) strains obtained by crossing normotensive rat (BN.lx) and genetically hypertensive rat (SHR) progenitor strains. Renal or cardiac hypertrophy in several normotensive RI strains, together with low organ weights in some hypertensive strains, indicate that genetic factors play an important role in heart and kidney weight determination. In RI strains, there was a slight positive correlation between systolic blood pressure and relative heart weight, while relative kidney weight correlated negatively with blood pressure. Indeed, the analysis of the degree of genetic determination in RI strains revealed higher values for the relative kidney weight than for the relative heart weight. Blood pressure has a lower degree of genetic determination than both organs. Several polymorphic loci were found to be associated with organ weight determination. Thus, the analysis of organ weights in RI strains revealed the influence of primary genetic factors rather than secondary blood pressure effects.

Analysis of Variance↗