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Biomedical subjects

N N Alipov

Publications and source records attributed to N N Alipov.

At least 19 recordsLinked to original sources

Chronodromotropic coordination in cats.

The coordinated nervous influences on HR and atrioventricular conduction velocity (chronodromotropic coordination) were examined in wakeful cats. The wave structure and reflex reactions of RR and atrioventricular (AV) intervals to stress noise stimulation were studied under normal conditions and during the action of blockers of peripheral receptors in ANS. Variations of both intervals had similar wave structure (power spectrum) and similar reactions to noise stimulus. Atropine pronouncedly decreased all components of the spectra in the high, low, and very low frequency ranges. It eliminated the reactions of both intervals to noise stimulation. In RR intervals, the high-frequency spectrum component decreased more strongly than the low-frequency ones. By contrast, in AV intervals atropine most greatly decreased the very-low-spectrum component, while the high frequency was decreased less of all. Propranolol produced no effect on the response to noise. It did not decrease components of the wave structure in both intervals, except for the very-low-frequency peak of AV interval. The nervous chronotropic and dromotropic influences were largely coordinated, although they were not obligatorily parallel.

Adrenergic beta-Antagonists↗

Effect of pentobarbital on spectral characteristics and phase ratios of wave oscillations of cardiac contraction period and time of atrioventricular conduction in cats.

Effects of pentobarbital on spectral characteristics and phase ratios of wave oscillations of the cardiac contraction period (RR interval) and time of atrioventricular conduction (AV interval) were studied in experiments of cats. Pentobarbital moderately reduced the mean values of both intervals and significantly reduced their standard deviations and spectral powers in all frequency bands (high-frequency, low-frequency, and very low-frequency). Pentobarbital treatment led to deceleration of breathing, the frequency range of respiratory oscillations of RR and AV intervals shifted in some cases from high to low frequencies; evaluation of spectral power in the intermittent band corresponding to respiration frequency (instead of standard fixed high-frequency band) showed that pentobarbital suppressed the respiratory oscillations in these bands. Pentobarbital induced inversion of phase ratio between respiratory oscillations of RR and AV intervals: oscillations of both intervals before pentobarbital coincided by phase, while after pentobarbital injection they were in antiphase. The mechanisms of the latter phenomenon deserve further investigation.

Animals↗

Role of sympathetic and parasympathetic nervous systems in heart rate regulation in cats.

The effects of atropine and beta-adrenoceptor blockers on mean HR, wave structure of the cardiac rhythm, and chronotropic reaction to noise stress were examined in cats. Atropine (0.5 mg/kg) increased the mean HR and significantly decreased the spectrum power of HF, LF, and VLF oscillations. The decrease in HF power was most pronounced, which enhanced LF/HF ratio. Propranolol (0.5 mg/kg) decreased the mean HR and slightly increased the power of HF, LF, and VLF oscillations. Atenolol (2 mg/kg) exerted similar but more pronounced effects. beta-Adrenoceptor blockers increased HF power to a greater extent than LF and VLF power, which led to a decrease in LF/HF ratio. Atropine markedly decreased the chronotropic reaction to stress. beta-Adrenoceptor blockers produced no effect on the amplitude of this reaction, but accelerated restoration of initial HR. It is established that the changes in power spectrum of HR and the phase reflex reactions in cats are mediated by parasympathetic influences; the sympathetic system is involved only in the control of mean HR, probably in response to the level of animal activity. The changes in LF/HF ratio during blockade of sympathetic and parasympathetic systems are caused by opposite influences of these systems on HF oscillations, but not by hypothetic "sympathetic" and "parasympathetic" nature of LF and HF oscillations of the heart rhythm.

Adrenergic beta-Antagonists↗

Frequency parameters of feline left ventricular pressure under various experimental conditions.

Cardiac frequency-domain parameters of the left ventricular pressure were studied in acute experiments on cats under conditions of reflex and load stimulation and during maximum inotropic stimulation with epinephrine. A strict correlation was revealed between the upper threshold of the frequency range and the maximum value of pressure first derivative. Without epinephrine infusion, the maximum value of pressure first derivative and the upper threshold of the frequency range attained 9840 mm Hg/sec and 98.4 Hz, correspondingly. During epinephrine infusion, the corresponding values were 12911 mm Hg/sec and 145 Hz. Left ventricular pressure in cats is characterized by high-frequency parameters, which can be measured by special catheter microtransducers and only in some cases by routine pressure gauges.

Animals↗

Whether independent regulation of myocardial contractility and diastolic relaxation rate is possible?

In acute experiments on cats neural inotropic and lusitropic reactions of the heart to enhancement of pre- and afterload were assessed by changes in contractility and relaxation indices, which were preliminary chosen for their maximum specificity and sensitivity. The control cardiac responses to increased pre- and afterload were measured after treatment with ganglionic blocker arfonad. The myogenic component of these responses assessed under the action of arfonad was highly pronounced, therefore the neural inotropic and lusitropic reactions were measured as the difference between load-induced changes of indices in experiments with and without arfonad. Increased preload produced similar negative inotropic and lusitropic effects, while increased afterload produced a more pronounced negative inotropic effect, which indicated independent regulation of contractility and diastolic relaxation of the heart.

Animals↗

Chronotropic and dromotropic components of cardiac reflexes in rabbits.

The relationships between dromotropic and chronotropic components of five reflexes were studied in rabbits: intravenous and intraarterial blood injections, occlusion of the carotid arteries, Aschner maneuver, and stimulation of depressors. All these stimuli reduced heart rate (except carotid artery occlusion, which induced approximately equal number of tachi- and bradycardic responses). The former three stimuli also reduced atrioventricular (AV) conduction velocity, the changes in these two parameters were proportional. Changes in heart rate induced by Aschner maneuver were more pronounced than changes in AV conduction. Stimulation of depressor induced co-directed shifts in these parameters during the first seconds, but then AV conduction increased, while heart rate remained decreased; bradycardia and AV acceleration persisted for long time after termination of stimulation. Our findings attest to independent regulation of heart rate and AV conduction velocity and to the absence of a strict relationship between these two parameters.

Animals↗

Contraction and relaxation indices in the study of neural inotropic and loositropic influences on the heart.

The possibility of using contraction and relaxation indices for evaluation of inotropic and loositropic influences on the heart was studied in experiments on cats. Increased pre- and afterload were used as the stimuli, which are simultaneously loading and reflexogenic. Under conditions of preserved innervation both stimuli elevated the indices selected according to the highest sensitivity/specificity ratio. Ganglionic blocker arfonad potentiated the effects of these stimuli. This attests to a considerable contribution of the myogenic component to the changes in the studied indices in response to increased pre- and afterload and to the existence of negative inotropic and loositropic influences on the heart under conditions of preserved innervation. These conclusions were supported when more specific indices were used: in most cases they decreased during load tests. Thus, when the contraction and relaxation indices are used for evaluation inotropic and loositropic influences on the heart, it seems reasonable either to compare heart responses under conditions of preserved or blocked innervation, or to apply more specific indices. Analysis of changes in most widely used indices (dP/dt)max and t showed that t reliably reflects neural loositropic influences, while the use of (dP/dt)max without proper control can be erroneous.

Animals↗

Comparison of different cardiac relaxation indices.

Sensitivity (response to epinephrine infusion) and specificity (response to changes in pre- and afterload) of some cardiac relaxation indices were compared in acute experiments on cats treated with ganglionic blocker arfonad. Some new indices proposed by us provide better characteristics than widely used relaxation time constant (t) and maximum first derivative of the left ventricular pressure (-dP/dt)max.

Animals↗

[Organization of reflex sympathetic influence on rate and force of cardiac contraction].

In acute experiments on 21 cats it was proved that the change of afferent impulse on vagus nerves by means of either freeze-block or electrostimulation of their central ends results in differential reflex influences on rhythm and force of the cardiac contractions caused by sympathetic nervous system. The cut of the lower cardiac nerves may cause 'break-up' of the observed reflex, removing or inverting its ino- or chronotropy component. The given phenomenon was revealed in the experiments with high arterial pressure and with absence of tonic chronotropy influences of the left lower cardiac nerve.

Animals↗

[Neural regulatory effects on the contractility of heart ventricles].

As a result of acute experiments on cats we revealed the approaches to choosing the best indices of the contractility of the left and the right cardiac ventricles in the concrete conditions of the experiment on the basis of the original criterion of optimality. For revealing neural inotropy influences we suggest the index based on the combined changes of optimum indices. A new approach to revealing reflex influences on contractility in the conditions of intact blood circulation is worked out, which is based on the comparison of these influences with the control changes of haemodynamic parameters.

Animals↗

[Role of myelinated and unmyelinated fibers of the vagus nerve in the development of ischemic fibrillation of the heart].

The effect of nn. vagi on ischemic heart arrhythmia was studied in acute experiments on cats. It was shown that thick myelinated fibers do not significantly alter the rate of onset of such arrhythmias. On the contrary, where the nn. vagi were cooled to 0 degree C, which entrained the block of non-myelinated fibers as well, the rate of ischemic heart arrhythmias (including heart fibrillation) drastically increased.

Animals↗

[Electrical activity of the heart cells and myocardial contractility during a change in extracellular sodium concentration].

The transmembrane potentials of the cells of the ventricle contractile myocardium of the rat and frog isolated hearts were studied as well as the strength of the ventricle contraction under the effect of a decrease (to 30 mM) or increase (up to 200 mM) in the sodium chloride concentration in the perfusate. The decrease led to a fibrillation of ventricles, 80-85% of contractile cells generating a high-frequency activity, 12-15% preserving the same AP and 3-5% having completely lost the excitability. The increase only affects the transmembrane potentials of ischemized myocardium. The decrease in the sodium concentration led to an augmentation of the contraction strength through the sodium-calcium exchange mechanism.

Action Potentials↗

[Action of pilocarpine on the normal frog heart and in pathology].

Experiments on frogs were performed to examine the effect of the M-cholinomimetic pilocarpine on the heart. It was discovered that at concentrations of 10(-15)--10(-5) g/ml pilocarpine exerted only an adverse chronotropic effect on the perfused heart. When applied at a concentration of 10(-4) g/ml the drug produced a negative as well as a positive chronotropic effect. The latter occurred spasmodically (without progressive rise in the heart rate) in association with a slow heart rate. In some experiments such effects were preceded by a certain deceleration of the heart. In experiments with positive chronotropic effects, arrhythmias and sinoatrial dissociation were observed sometimes. Experiments with recording of the electrograms of the sinuses and lower parts showed that such effects were caused not by pacemaker acceleration but by the removal of the blockade of conduction, between the pacemaker and the atria. As far as the pacemaker is concerned, pilocarpine exerted only a negative chronotropic effect.

Animals↗

[Positive chronotropic and inotropic effects of stimulation of the vagus nerve centers in the frog heart].

In frogs, positive inotropic effects are transmitted catecholaminergically as they have been blocked with propranolol but not with atropine. Positive chronotropic effects were in some experiments blocked with atropine and not with propranolol (a "cholinergic type" of of positive chronotropic effect), the opposite occurred in other experiments (an "adrenergic type"). The cholinergic positive chronotropic effects were observed with the initial slow heart rate and were accompanied by negative inotropic effects; the chronotropic effect itself appeared suddenly (with no gradual acceleration of heart rate) and disappeared just as suddenly. The adrenergic effects, on the contrary, were observed with the initial rapid heart rate; they were accompanied by positive inotropic effects and developed and disappeared gradually.

Animals↗