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M Gerová

Publications and source records attributed to M Gerová.

At least 19 recordsLinked to original sources

Nitric oxide-compromised hypertension: facts and enigmas.

NO concentration in the femoral artery and femoral vein of anesthetized dogs was found to be 154.2+/-5.6 nM and 90.0+/-12 nM, respectively. Inhibition of NO synthase (NOS) slightly decreased the basal NO concentration in femoral artery from 154.2+/-5.6 to 137.2+/-3.3 nM. Acetylcholine-induced increase in NO concentration was slightly but still significantly attenuated, suggesting that very probably L-NAME did not inhibit all sources of nitric oxide (NO). Local NOS inhibition in the posterior hypothalamus dose-dependently increased systemic blood pressure (BP) in rats. Short-term general NOS inhibition in anesthetized dogs increased diastolic BP but not systolic BP. The heart rate after one-hour down-fluctuation returned to initial values. Proteosynthesis in the myocardium and both branches of the left coronary artery increased, but this was not supported by polyamines, since the activity of ornithine decarboxylase declined. Long-term general NOS inhibition elicited a sustained BP increase, a decrease in heart rate, cardiac hypertrophy and an increase in wall thickness of the coronary and carotid artery. The results indicate that NO deficiency itself plays a role in proteosynthesis and cardiac hypertrophy, in spite of relatively small increase in diastolic blood pressure and no change in systolic blood pressure, at least after an acute L-NAME administration. The hypotension response to acetylcholine and bradykinin studied in anesthetized NO-compromised rats, was unexpectedly enhanced. The elucidation of this paradoxical phenomenon will require further experiments.

Animals↗

Short-term NO synthase inhibition and the Na+-binding properties of cardiac Na,K-ATPase.

It is known that hypertension is accompanied by increased [Na+]i. The functional properties of Na,K-ATPase, which transports the Na+ out and K+ into myocardial cells during the relaxation phase, were investigated in the left ventricle (LV), septum (SV) and the right ventricle (RV) of anesthetized dogs with moderate acute blood pressure elevation elicited by short-term (4-hour) NO synthase inhibition. The NO-insufficiency was induced by administration of an L-arginine analogue, the N(G)-nitro-L-arginine methyl ester (L-NAME). Concerning the function of Na,K-ATPase under the conditions of lowered NO synthesis, we focused our attention to the binding of Na+ to the enzyme molecule. Activation of the enzyme by increasing Na+ concentrations revealed significant changes in both the maximal velocity (Vmax) and the affinity for Na+ (K(Na)) in all investigated heart sections. The Vmax increased by 27% in LV, by 87% in SV and by 58% in RV. The K(Na) value increased by 86% in LV, by 105% in SV and by 93% in RV, indicating an apparent decrease in the sensitivity of the Na+-binding site in the Na,K-ATPase molecule. This apparently decreased pump affinity for Na+ together with the increase of Vmax suggest that, during the short-term inhibition of NO synthesis, the Na,K-ATPase is capable of extruding the excessive Na+ from the myocardial cells more effectively at higher [Na+]i, as compared to the Na,K-ATPase of control animals.

Animals↗

Acetylcholine and bradykinin induce paradoxically amplified hypotensive response in hypertensive NO-deficient rats.

The hypotensive response to acetylcholine and bradykinin was studied in rats with NO synthase activity inhibited for a short period of 2 h or a long period of 6 weeks. N(G)-nitro-L-arginine-methyl ester (L-NAME) was used as NO synthase inhibitor (given in a dose of 50 mg/kg either into the jugular vein, or daily in drinking water). Blood pressure was measured in the right carotid artery by a Statham pressure transducer in acute experiments, and on the tail artery by the plethysmographic method weekly in chronic experiments. During both the short- and long-lasting NO synthase inhibition blood pressure rose significantly. The heart rate decreased significantly in rats treated with L-NAME for 6 weeks. Surprisingly, the hypotensive responses to acetylcholine and bradykinin were present in both experimental groups. Paradoxically, the hypotensive responses to all three doses of acetylcholine were remarkably enhanced in rats with NO synthase inhibition lasting 6 weeks, in comparison to both age-matched controls and to rats subjected to short-lasting NO synthase inhibition. The blockade of muscarinic receptors by atropine abolished the hypotensive response to acetylcholine but not to bradykinin. The hypothetical mechanisms underlying this unexpected paradoxical phenomenon of cardiovascular control are discussed.

Acetylcholine↗

Early changes of protein synthesis in myocardium and coronary arteries induced by NO synthase inhibition.

The question was addressed whether short-term (4 hour) NO deficiency, inducing an increase in blood pressure in anaesthetized dogs, does influence proteosynthesis in the myocardium and coronary arteries. A potentially positive answer was to be followed by the study of the supporting role of ornithine decarboxylase for the polyamines pathway. N(G)-nitro-L-arginine-methyl ester (L-NAME) (50 mg/kg per hour) was administered i.v. to inhibit NO synthase. After the first L-NAME dose diastolic blood pressure increased from 131.8+/-2.0 to 149.4+/-3.9 mm Hg (p<0.001) and was maintained at about this level till the end of the experiment. Systolic blood pressure only increased after the first dose (from 150.8+/-1.1 to 175.0+/-5.8 mm Hg, p<0.01), returning thereafter to the control level. Similarly, the heart rate declined only after the first dose (from 190.4+/-5.3 to 147.6+/-4.5 beats/min, p<0.01). Total RNA concentrations increased in the left cardiac ventricle (LV), the left anterior descending coronary artery (LADCA) and left circumflex coronary artery (LCCA) by 15.9+/-0.7, 29.7+/-1.3 and 17.6+/-1.0%, p<0.05, respectively. The same applied to [14C]leucine incorporation (by 86.5+/-5.0, 33.5+/-2.6, 29.3+/-4.1%, p<0.05, respectively). The above parameters indicated an increase of proteosynthesis in the LV myocardium and both coronary arteries LADCA and LCCA after short-term NO deficiency. Surprisingly, the ornithine decarboxylase activity in the LV myocardium decreased significantly by 40.2+/-1.6% (p<0.01) but the changes were not significant in the coronary arteries. This unexpected finding makes the role of polyamines in increasing proteosynthesis during a pressure overload due to NO deficiency questionable.

Animals↗

NO concentration in the periendothelial area of the femoral artery of the dog measured in vivo.

.NO concentration was measured in the periendothelial area of the femoral artery by Malinski's porphyrinic .NO sensor in seven anaesthetized dogs. The basal concentration was 154.2 +/- 5.6 nM and two-minute intraarterial infusions of acetylcholine (3-4 micrograms/ml/min) or bradykinin (30-40 ng/ml/min) increased this value significantly to 204.3 +/- 16.4 and 266.5 +/- 16.4 nM (P < 0.01), respectively. Inhibition of .NO synthase by L-NAME (50 mg/kg) declined the basal .NO concentration only to 137.2 +/- 3.3 nM (P < 0.01). Subsequent administration of acetylcholine and bradykinin attenuated significantly the increase in .NO concentration. Surprisingly, both agonists still induced a significant increase of .NO concentration by 125.3 +/- 8.3 and 156.6 +/- 26.9 nM, respectively (P < 0.01). One of the possible explanations may be that besides arginine-citrulline plus the .NO pathway other sources of .NO could be involved in the high level of .NO after .NO synthase blockade by L-NAME.

Acetylcholine↗

Developmental dynamics of endothelial and neurogenic control of canine thoracic aorta.

The purpose of the study was to confront the range of endothelial relaxation and neurogenic contraction of the thoracic aorta in fetuses (1 week before birth), puppies (1, 2, 4 and 6 weeks old), and in adult dogs. Isometric tension of aortic rings was monitored in organ bath. Acetylcholine-induced dose-dependent relaxation of aortic rings precontracted by phenylephrine was pronounced already in fetuses and puppies and significantly larger than in adults. Indomethacin, a cyclooxygenase inhibitor, did not affect the magnitude of aortic relaxation to acetylcholine. Transmural nerve stimulation induced but very slight contractions of the thoracic aorta in fetuses, while in puppies the extent of contractions was increasing with increasing age, reaching its maximum in adults. Contractile responses of aortic rings induced by KCl were fully detectable in fetuses and puppies and increased with increasing age of the animals. Thus in ontogenesis, the extent of endothelium-dependent relaxation and neurogenic contraction of the thoracic aorta displayed an opposite trend. The acetylcholine-induced relaxation was fully operative already in fetuses and puppies and its extent was declining toward adulthood, whereas the neurogenic contraction was hardly detectable in fetuses, increasing in puppies, and showed the highest values in adults.

Acetylcholine↗

Dynamics of endothelium-muscle cell contacts in the coronary artery of the dog in ontogeny.

The myo-endothelial area in the coronary artery conduit was described in 3 developmental stages: in fetuses, newborns, and adult dogs. Transmission and scanning electron microscopy were used for the study, and morphometry was used for quantitative evaluation. In all three stages, the internal elastic lamina was found to be fenestrated. Endothelial cells and smooth muscle cells (SMC) approached the fenestrae, and protrusions of one or both cells entered into the fenestrae. In some places contacts between endothelial and SMC were found. The patterns of mutual approaches of smooth muscle and endothelial cells, as well as the entering into the fenestrae were similar in all three stages. The myo-endothelial contacts were counted per 100 microns inner circumference of the coronary artery and the numbers observed, i.e. 5.17 +/- 0.50 in fetuses, 1.94 +/- 0.17 in newborns and 0.33 +/- 0.09 in adult animals, proved clearly that the frequency of myo-endothelial contacts, highest in fetuses, decreases with age. With regard to the dual control of the coronary smooth muscle and/or diameter, it is noteworthy that an opposite trend can be observed in the development of innervation of the coronary artery: the autonomic nerve fibres with varicosities are missing in the coronary wall 1 week before birth, while after birth their number keeps increasing. Remarkable enough is also the difference in distances between the endothelium and SMC on the one hand and nerve varicosities and SMC on the other. The above facts indicate a prevalence of endothelial control of coronary diameter.

Aging↗

Early changes in protein synthesis in epicardial coronary artery of pressure-overloaded heart.

In anesthetized dogs, a 4-h, approximately 30% increase in blood pressure induced by constriction of the abdominal aorta brought about an increase in the total RNA content in the left anterior descending coronary artery (LADCA) and the left ventricular (LV) myocardium (9.05 +/- 1.72 and 11.06 +/- 4.68%, respectively) but not in the left circumflex coronary artery (LCCA). Under the same experimental conditions, [14C]leucine incorporation increased in LADCA and LV myocardium (45.34 +/- 13.54 and 58.07 +/- 11.91%, respectively), but not in LCCA. The data indicate an early shift in protein synthesis in LADCA and simultaneously in the myocardium during a short-term pressor event. The difference in the shift of protein synthesis in the two main branches of the left coronary artery was related to the quantitatively different deformation of the LADCA and LCCA due to different deformation of the underlying myocardium and/or of the annulus fibrosus atrioventricularis during changes in the left or right ventricle volume [M. Gerová, E. Barta, M. Stolárik, and J. Gero, Am. J. Physiol. 262 (Heart Circ. Physiol. 31): H1049-H1053, 1992]. The results support the hypothesis that the deformation and/or rate of deformation of cells in the coronary wall may trigger an increase in protein synthesis. Changes in protein synthesis in the myocardium and LADCA were found to be reversible 2 h after releasing the aortic constriction.

Animals↗

Nitric oxide in the periendothelial area of femoral vein of the dog assessed in vivo by a porphyrinic sensor.

Nitric oxide concentration in the periendothelial are of the femoral vein in anaesthetized dogs was measured directly with a catheter- protected porphyrinic sensor. A 2- to 4-fold increase occurred in the basal NO concentration of 90 +/- 12 nM after acetylcholine injection (1-1.5 micrograms/kg). A linear correlation was found between femoral artery blood flow and NO concentration in the periendothelial area of the femoral vein. Noradrenaline decreased NO levels below the detection limit of the porphyrinic sensor (10 nM).

Acetylcholine↗

Vascular responses after long-term inhibition of nitric oxide synthesis in newborn dogs.

The effect of long-term inhibition of nitric oxide synthase on the relaxation and contraction ability of the thoracic aorta, carotid and pulmonary arteries was studied in the early postnatal period. Starting from the fifth day after birth, puppies were administered NG-nitro-L-arginine methyl ester (L-NAME, 50 mg/kg/day subcutaneously) for 6 weeks. After this period, mean blood pressure increased from the control value of 94 +/- 14 mm Hg to 168 +/- 5 mm Hg (P < 0.01) and the heart/body weight ratio from 6.22 +/- 0.25 to 8.23 +/- 0.45 (P < 0.01). In control arterial rings precontracted by phenylephrine (10(-5) mol/l), acetylcholine caused dose-dependent relaxations; the maximal values were reached in the range of 10(-8) to 10(-6) mol/l. In arteries from L-NAME treated puppies, acetylcholine also induced dose-dependent relaxations, the maximum values in the thoracic aorta (81.0 +/- 2.9%) and carotid artery (87.2 +/- 6.9%) were significantly reduced, not, however, in the pulmonary artery (76.4 +/- 7.8%). Dose-response curves to acetylcholine in all the examined arteries from L-NAME-treated animals were shifted to the right indicating a decrease in sensitivity to acetylcholine. Neurogenic contractions, induced by electrical stimulation of adrenergic nerves, were not significantly altered in the thoracic aorta and carotid artery. However, in the pulmonary artery the contractions were greater at high frequency of stimulation. The findings that (i) submaximal doses of L-NAME attenuate acetylcholine-induced relaxation only slightly, and (ii) that it does not appreciably influence adrenergic contractions justify the hypothesis that the endothelium of vessels in newborn dogs is very probably endowed with a high content of nitric oxide synthase.

Acetylcholine↗

Remodelling of septal branch of coronary artery and carotid artery in L-NAME treated rats.

Coronary and carotid artery structure was studied in rats in order to analyze the processes in the cardiovascular system in NO-deficient hypertension model. Long-term inhibition of NO synthase was induced by L-nitro arginine methyl ester (L-NAME, 50 mg/kg/day p.o.) for a period of 8 weeks. An increase in blood pressure and heart/body weight ratio confirmed the reliability of the model. The wall thickness as well as the calculated wall area of the coronary artery increased by 70% and 50%, respectively, in comparison to control vessels. The wall thickness and the calculated wall area of the carotid artery increased by 73% and 70%, respectively. Further analysis indicated that both the tunica intima and tunica media in the coronary and the carotid artery increased quantitatively in a similar manner. Remarkable differences were found in the contribution of cellular and noncellular components in the tunica media of the coronary and carotid arteries of experimental animals. The calculated extracellular area increased by 116% in comparison to the control coronary artery and by 97% in comparison to the control carotid artery. The increase in extracellular matrix of the tunica media of coronary and carotid arteries seems to be basic cause of the remodelling of the vessels studied.

Animals↗

Morphometric characteristics of cardiac hypertrophy induced by long-term inhibition of NO synthase.

Morphometry of cardiomyocytes and capillary domains in the left ventricle myocardium was performed in control rats and in rats treated with nitro-L-arginine methyl ester 50 mg/kg/day p.o. for a period of 8 weeks. The myocardial hypertrophy accompanying the NO-deficient hypertension induced by chronic inhibition of NO synthase is characterized by an increase in thickness of myocardial fibres and by relative rarefaction of the capillary bed, e.g. an alteration in myocardial structure which is typical for pressure overload hypertrophy.

Animals↗

Long-term inhibition of NO synthase induces cardiac hypertrophy with a decrease in adrenergic innervation.

Data concerning the effect of NO on the function and structure of the heart are controversial. We have studied two main questions: (i) Does the heart muscle reflect the hypertension induced by long-term inhibition of NO synthase? (ii) Since the arginine-NO pathway is also operative in the autonomic nervous system, the second goal was to ascertain the possible changes of the adrenergic nervous system in the heart after long-term NO synthase inhibition. Wistar rats were administered L-NAME in drinking water (50 mg/kg bw/day) for 8 weeks. Systolic blood pressure and heart rate were monitored weekly. The heart/body weight ratio were determined at the end of experiment. The adrenergic nerve terminals visualized by histochemistry were counted according to Haug's point counting method. Blood pressure increased significantly in L-NAME-treated rats. No changes were found in the heart rate. Heart/body weight ratio increased markedly. Surprisingly, the density of adrenergic nerve terminals did not alter accordingly. The density of adrenergic nerve terminals in the left ventricle and septum decreased but no significant changes were found in the left atrium and the right ventricle. Hypertension due to NO deficiency induced cardiac hypertrophy that was characterized by a decline in the density of adrenergic innervation of the overloaded left ventricle and septum.

Adrenergic Fibers↗

Long-term NO synthase inhibition affects heart weight and geometry of coronary and carotid arteries.

The heart weight and the structure of coronary and carotid arteries were studied in NO-deficient hypertension. Wistar rats were administered L-NAME (50 mg/kg/day) in drinking water for a period of 8 weeks. The blood pressure and heart rate were recorded weekly. In one group of control and experimental animals the heart weight was assessed and the heart/body weight ratio (relative heart weight) was calculated. In the other group of control and experimental animals, the cardiovascular system was perfused by a fixative under constant perfusion pressure. The inner circumference and the wall thickness (tunica intima and tunica media) of the coronary (septal branch) and carotid artery were measured using light microscopy and the wall/diameter ratio was calculated. Inhibition of NO synthase induced a significant increase in blood pressure (187.2 +/- 4.2 mm Hg compared to 131.4 +/- 1.9 mm Hg in the controls, p < 0.01). The heart rate decreased (334.4 +/- 7.0 beats/min compared to 352.6 +/- 4.1 beats/min in the controls, p < 0.05). The heart weight increased in NO-deficient rats (1.32 +/- 0.08 g versus 1.10 +/- 0.03 g, p < 0.05); the heart/body weight index increased remarkably (3.09 +/- 0.15 compared to 2.10 +/- 0.04 in the controls, p < 0.01). Morphometry of the septal branch of the left coronary artery indicated a decrease of the inner circumference (664 +/- 24 microns versus 832 +/- 30 microns, p < 0.01), the increased wall thickness (21.15 +/- 0.84 microns compared to 12.47 +/- 0.62 microns in the controls, p < 0.01) and the remarkably changed wall/diameter ratio (1:10 versus 1:21 in the controls). Similar alterations were found in the carotid arteries: the inner circumference was decreased (2456 +/- 39 microns versus 2732 +/- 66 microns, p < 0.01), the wall thickness increased (45.14 +/- 0.41 microns compared to 26.08 +/- 1.23 microns, p < 0.01) and the wall/diameter ratio was changed to 1:17 in comparison with 1:33 in the controls. In conclusion, cardiac hypertrophy and structural alterations of the coronary artery and carotid artery accompany NO-deficient hypertension.

Animals↗

Instrumentation of ramus circumflexus compromises the innervation of coronary artery and myocardium.

A fine non-compressing methacrylate ring was implanted on the ramus circumflexus (RC) in 13 dogs. After the animals survived 7-14 days, the distribution and the rate of the Wallerian degeneration was studied in coronary arteries and myocardium by means of the formaldehyde induced fluorescence (FIF) technique and the transmission electron microscopy. The density of vasomotor innervation in the main arterial trunks was expressed as the number of transsected terminals per 1 mm2 of the transversally sectioned media; the density of adrenergic terminals in the myocardium was determined by the point-counting method. A compact scar encompassing the ring was found. The scar compressed some perivascular nerves. As a consequence, by about 40% of terminals degenerated in the RC. The innervation of the branching of this artery was compromised as well. Moreover, the density of nerve terminals in myocardium decreased around the whole circumference of the ventricles and in the septum, equally by 29%. The value was lower than that found after the instrumentation of ramus interventricularis anterior (50%). The results indicate (i) a compromise of the innervation of coronary artery and myocardium after the instrumentation of RC; (ii) the different decrease in density of nerve terminals in the myocardium suggests that majority of adrenergic nerve supply for ventricle myocardium is running along ramus interventricularis anterior.

Animals↗

Remodelling and functional alterations of the rabbit coronary artery in volume overloaded heart.

OBJECTIVE: The aim was to study the contractility of the conduit coronary artery to vasoactive agents in developing and established volume overload cardiac hypertrophy and to compare it with structural alterations in the artery. METHODS: Aortic valve insufficiency in rabbits was used to produce a volume overloaded heart. One month (developing hypertrophy), and four months (stabilised hypertrophy) after inducing aortic insufficiency, the isometric contraction of the coronary artery to acetylcholine, serotonin, and potassium chloride was recorded. For transmission electron microscopy, the coronary arteries were perfused via the ascending aorta with glutaraldehyde fixative under constant pressure. The point counting method was used for quantitative evaluation. Semithin sections were used to determine the geometry (ie, the inner diameter and wall thickness) of the coronary artery by light microscopy. RESULTS: A significant increase in heart weight and heart weight to body weight ratio was found after one month and four months of volume overload. Concentration-response relations of the coronary artery to all three agents were shifted to the right; in developing hypertrophy the shift was non-significant, in stabilised hypertrophy it was significant. The contractions were weakened by up to one fifth of the control values. An associated increase in wall thickness of the coronary artery was found, due to a significant expansion of the intercellular space. The internal diameter did not change significantly. Ultrastructural findings (an increase of the area occupied by organelles in myocytes) suggested a transition from "contractile" to more "synthetic" type of smooth muscle cells. CONCLUSIONS: In cardiac hypertrophy due to volume overload, the structure of the coronary arteries reflects the long term haemodynamic alterations, particularly through an increase in the non-cellular component. In parallel, the contraction efficiency to vasoactive drugs decreases markedly.

Acetylcholine↗

The coronary artery--from geometry to RNA turnover.

This review compares the geometry of conduit coronary arteries in man and animals, namely the wall/diameter ratio (1:7.4 and 1:15 respectively). The left and right ventricle volume determines the geometry (segment length and diameter) of both branches of the left coronary artery: ramus interventricularis anterior and ramus circumflexus; the range of deformation of the latter was substantially smaller. The heterogeneity of deformation was also found along the ramus interventricularis anterior, the deformation decreasing towards the apex. The above relations have consequences (i) on the haemodynamics (passive changes in conduit segment resistance), (ii) the deformation of coronary arteries triggers metabolic processes in the coronary wall. Four hours' lasting cardiac volume or pressure overload brought about an increase in the RNA content not only in the myocardium, but also in the coronary artery. The process is reversible. Moreover, the range of the RNA increase is in full concert with the heterogeneous deformability of the respective segment of the coronary tree.

Animals↗