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Biomedical subjects

F C Luft

Publications and source records attributed to F C Luft.

At least 37 records · Page 2Linked to original sources

Genetic influence on blood pressure and lipid parameters in a sample of Polish twins.

We studied 76 healthy monozygotic (MZ) and same-sex dizygotic (DZ) twin pairs (mean age 35 +/- 8 years, body mass index, BMI, 23.6 +/- 3.9 kg/m2) to determine genetic and environmental contributions to systolic (SBP) and diastolic (DBP) blood pressure, heart rate (HR) and serum lipids [total cholesterol (TC), low-density lipoprotein cholesterol (LDL-chol), high-density lipoprotein cholesterol (HDL-chol) and triglycerides (TG)I. SBP, DBP and HR were measured clinically and by ambulatory blood pressure monitoring (ABPM). Parameters of the genetic models for age-, sex- and BMI-adjusted data were estimated by model fitting and path analysis technique using LISREL 8. We found significant genetic effect on SBP and DBP for both clinical and ABP measurements, ranging from 37% for night-time ambulatory DBP to 79% for daytime ambulatory SBP. Estimates of genetic effects were higher for daytime than night-time ABP values, and higher for ambulatory 24-h SBP than office SBP measurements, with the reverse true for DBP. Significant genetic effect on HR ranged from 59% for office measurements to 69% for 24-h mean values. In summary, we also found genetic effect on TC, LDL-chol and HDL-chol with estimates ranging from 36% to 64%, but not on TG. Furthermore, a shared environmental component for TG was found, estimated at 36%. We showed significant genetic effect on both office and ambulatory BP and HR, with stronger genetic effect on daytime than night-time BP. We also found genetic effect on TC and lipoprotein fractions, but no significant genetic effect on TG. Environmental factors influencing serum TG, such as alcohol consumption, may explain the apparent lack of genetic effect in this healthy, non-obese population.

Adolescent↗

Angiotensin II and endothelin induce inflammation and thereby promote hypertension-induced end-organ damage.

Angiotensin (Ang) II and endothelin (ET-1) can both be regulated by NF-kappaB. They are, to variable degrees, also capable of activating NF-kappaB and increase the expression of NF-kappaB-dependent genes. Ang II-related vascular effects are in part mediated by ET-1. Nitric oxide synthase inhibition facilitates Ang II-related effects, which can be inhibited both by AT1-receptor blockers and by endothelin system inhibitors. This state-of-affairs supports the notion that a combined therapeutic strategy of inhibiting Ang II and ET-1 generation or blocking their effects at the receptor level would be superior to either strategy alone. Animal studies are encouraging but not without conflicting results. Angiotensin-converting enzyme inhibitors and AT1-receptor blockers have a superb track record in experimental animal models and in a host of clinical studies. Selective and nonselective blockers of the ET-1 receptors are important research tools and are also undergoing clinical trials. Inhibitors of the endothelin-converting enzyme have been developed. The recent elucidation of the endothelin-converting enzyme's physical structure should facilitate the development of still more novel compounds to inhibit ET-1 generation. We have recently engendered supportive evidence in this regard.

Angiotensin II↗

Pericardial effusion in the nephrotic syndrome.

Hydropericardium is a known cause of pericardial effusion related to severely expanded extracellular fluid volume. Nephrotic patients have expanded extracellular fluid volume but obviously may have other causes for pericardial effusion. We tested the hypothesis that pericardial effusion is related to inflammation and not to hydropericardium in patients with nephrotic syndrome. Twenty nephrotic patients with systemic lupus erythematosus (SLE) were compared to 20 patients with nephrotic syndrome of other causes. No patient in either group had symptoms or signs of pericardial disease. Pleural effusion and ascites were equally common in SLE-nephrotic patients compared to non-SLE-nephrotic patients. However, 8 SLE patients had pericardial effusion, while none of the non-SLE-nephrotic patients had pericardial effusion. We suggest that hydropericardium is rare in nephrotic patients and that an inflammatory or other secondary cause should be considered when pericardial effusion complicates nephrotic syndrome.

Adult↗

[Innate and acquired immunity in angiotensin-induced malignant hypertension].

Participation of the immune system in angiotensin (Ang) II-induced endorgan damage is not a conventionally accepted idea. Nevertheless, we have evidence from a double-transgenic rat model of malignant hypertension that Ang II leads not only to activated innate immunity via NF-kB, but also to activated acquired immunity via dendritic cells. By means of surface markers, we observed dendritic cell maturation, migration, and contact with CD4 and CD8 lymphocytes in hearts and kidneys of double-transgenic rats. Treatment with dexamethasone or etanercept provides protection in this model, independent of arterial blood pressure-related effects. Our preliminary data implicate innate immunity and acquired immunity. Both cell-mediated and antibody-mediated effects are involved in the latter in this model.

Angiotensin II↗

Limited effect of systemic beta-blockade on sympathetic outflow.

Central beta-adrenoreceptors may augment sympathetic outflow. We tested the hypothesis that beta-blockade attenuates central sympathetic outflow by inhibiting central adrenoreceptors. We studied 18 healthy controls (4 female, 14 male; age, 26+/-6 years, body mass index, 23+/-3 kg/m(2)). ECG, brachial, and finger arterial blood pressure, muscle sympathetic nerve activity, and respiration were measured continuously before and during complete beta-blockade. Subjects received a total intravenous dose of 0.21 mg/kg of propranolol in 15 minutes. Spontaneous baroreflex slopes were calculated using the sequence technique (BRSup, BRSdown). The sympathetic baroreflex slope was determined at baseline using phenylephrine and sodium nitroprusside infusions. The subjects underwent cold pressor testing before and during beta-blockade. The R-R interval increased from 861+/-119 ms at baseline to 952+/-141 ms during beta-blockade (P<0.01). Blood pressure was 117+/-9/65+/-8 mm Hg at baseline and 117+/-10/67+/-8 mm Hg during beta-Blockade (P=NS). beta-Blockade did not affect baroreflex sensitivity (BRSup: 21+/-10 versus 28+/-11 ms/mmHg, P<0.1; BRSdown: 17+/-8 versus 20+/-8 ms/mmHg, P=NS). Muscle sympathetic nerve activity increased significantly during beta-blockade (number of bursts/100 beats: 32+/-9 versus 40+/-14, P<0.05), compared with baseline. However, the operating points of the parasympathetic and sympathetic baroreflex during beta-blockade were on the baroreflex curves obtained at baseline. beta-Blockade blunted the heart rate response to cold pressor testing; blood pressure and muscle sympathetic nerve activity responses were similar. Our study demonstrates that propranolol does not cause an acute decrease in sympathetic activity in normotensive young subjects. This, observation is not consistent with an important tonic stimulatory effect of beta-adrenoreceptors in the brain.

Adrenergic beta-Antagonists↗

Regulation of calcium sparks and spontaneous transient outward currents by RyR3 in arterial vascular smooth muscle cells.

Intracellular Ca(2+) levels control both contraction and relaxation in vascular smooth muscle cells (VSMCs). Ca(2+)-dependent relaxation is mediated by discretely localized Ca(2+) release events through ryanodine receptor (RyR) channels in the sarcoplasmic reticulum (SR). These local increases in Ca(2+) concentration, termed sparks, stimulate nearby Ca(2+)-activated K(+) (BK) channels causing BK currents (spontaneous transient outward currents or STOCs). STOCs are hyperpolarizing currents that oppose vasoconstriction. Several RyR isoforms are coexpressed in VSMCs; however, their role in Ca(2+) spark generation is unknown. To provide molecular information on RyR cluster function and assembly, we examined Ca(2+) sparks and STOCs in RyR3-deficient freshly isolated myocytes of resistance-sized cerebral arteries from knockout mice and compared them to Ca(2+) sparks in cells from wild-type mice. We used RT-PCR to identify RyR1, RyR2, and RyR3 mRNA in cerebral arteries. Ca(2+) sparks in RyR3-deficient cells were similar in peak amplitude (measured as F/F(0)), width at half-maximal amplitude, and duration compared with wild-type cell Ca(2+) sparks. However, the frequency of STOCs (between -60 mV and -20 mV) was significantly higher in RyR3-deficient cells than in wild-type cells. Ca(2+) sparks and STOCs in both RyR3-deficient and wild-type cells were inhibited by ryanodine (10 micromol/L), external Ca(2+) removal, and depletion of SR Ca(2+) stores by caffeine (1 mmol/L). Isolated, pressurized cerebral arteries of RyR3-deficient mice developed reduced myogenic tone. Our results suggest that RyR3 is part of the SR Ca(2+) spark release unit and plays a specific molecular role in the regulation of STOCs frequency in mouse cerebral artery VSMCs after decreased arterial tone.

Animals↗

Altered gene expression in cerebral capillaries of stroke-prone spontaneously hypertensive rats.

Stroke-prone spontaneously hypertensive rats (SHRSP) are a well-characterized, genetic model for stroke. We showed earlier that the structure and function of the tight junctions in SHRSP blood-brain barrier endothelial cells is disturbed prior to stroke. To investigate the molecular events leading to endothelial dysfunction in SHRSP cerebral capillaries, we carried out suppression subtractive hybridization (SSH) in combination with a cDNA filter screening step. We identified two cDNA fragments that were upregulated in SHRSP, compared to stroke-resistant spontaneously hypertensive rats (SHR), and found open reading frames of 133 and 138 amino acids, respectively. These peptides did not match any known proteins in public databases. A third upregulated SHRSP cDNA fragment was identified as the rat sulfonylurea receptor 2B (SUR2B). We also isolated and cloned the cDNA of the rat homologue for the mouse G-protein signaling 5 (RGS5) regulator. This regulator was downregulated in SHRSP. We used in situ hybridization to show that rat RGS5 is expressed in the brain capillary endothelium and in the choroid plexus. Our findings may lead to the identification of new stroke-related genes.

ATP-Binding Cassette Transporters↗

Loss of caveolae, vascular dysfunction, and pulmonary defects in caveolin-1 gene-disrupted mice.

Caveolae are plasma membrane invaginations that may play an important role in numerous cellular processes including transport, signaling, and tumor suppression. By targeted disruption of caveolin-1, the main protein component of caveolae, we generated mice that lacked caveolae. The absence of this organelle impaired nitric oxide and calcium signaling in the cardiovascular system, causing aberrations in endothelium-dependent relaxation, contractility, and maintenance of myogenic tone. In addition, the lungs of knockout animals displayed thickening of alveolar septa caused by uncontrolled endothelial cell proliferation and fibrosis, resulting in severe physical limitations in caveolin-1-disrupted mice. Thus, caveolin-1 and caveolae play a fundamental role in organizing multiple signaling pathways in the cell.

Albumins↗

Amelioration of angiotensin II-induced cardiac injury by a 3-hydroxy-3-methylglutaryl coenzyme a reductase inhibitor.

BACKGROUND: 3-Hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase inhibitors (statins) have effects that extend beyond cholesterol reduction. We used an angiotensin (Ang) II-dependent model to test the hypothesis that cerivastatin ameliorates cardiac injury. METHODS AND RESULTS: We treated rats transgenic for human renin and angiotensinogen (dTGR) chronically from weeks 4 to 7 with cerivastatin (0.5 mg/kg by gavage). We used immunohistochemistry, electrophoretic mobility shift assays, and reverse transcription-polymerase chain reaction techniques. Compared with control dTGR, dTGR treated with cerivastatin had reduced mortality, blood pressure, cardiac hypertrophy, macrophage infiltration, and collagen I, laminin, and fibronectin deposition. Basic fibroblast growth factor mRNA and protein expression were markedly reduced, as was interleukin-6 expression. The transcription factors NF-kappaB and AP-1 were substantially less activated, although plasma cholesterol was not decreased. CONCLUSIONS: These results suggest that statins ameliorate Ang II-induced hypertension, cardiac hypertrophy, fibrosis, and remodeling independently of cholesterol reduction. Although the clinical significance remains uncertain, the results suggest that statins interfere with Ang II-induced signaling and transcription factor activation, thereby ameliorating end-organ damage.

Angiotensin II↗

Tissue renin-angiotensin systems: new insights from experimental animal models in hypertension research.

Renin was first isolated in the kidney by Tigerstedt and Bergman over 100 years ago. Almost 50 additional years were necessary to isolate the renin substrate angiotensinogen and to show its cleavage to angiotensin (Ang). Further studies were then needed to demonstrate that Ang I is converted via an angiotensin-converting enzyme to Ang II. The circulating renin-angiotensin system, with blood pressure regulatory and aldosterone stimulatory roles, served well for decades. However, more recent information on Ang II and its action in terms of cell proliferation, hypertrophy, and hyperplasia as well as immune-modulatory and even intracellular functions, have focused attention on local Ang II generation and effects. These investigations necessarily began in the kidney, but quickly moved to other organs including the brain, heart, adrenal gland, and vessel wall and formed the basis for the concept of independent tissue renin-angiotensin systems. Both renin and Ang II have even been implicated in intracellular activities. This review presents some selected aspects of the historical development of this concept and summarizes discoveries relying primarily on animal models which demonstrate that Ang II is generated locally and acts in tissues as a local peptidergic system. Comprehensiveness in such an endeavor is not possible. We focus largely on work from our own group, not because the work is necessarily worthy of such scrutiny but rather because of our own familiarity with the contents.

Animals↗