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Biomedical subjects

Zh A Donina

Publications and source records attributed to Zh A Donina.

At least 19 recordsLinked to original sources

[Cardiorespiratory responses of animals to passive orthostasis after intermittent hypoxia during head-down tilt].

Cardiorespiratory responses induced by upright tilt before and after intermittent hypoxia during head-down tilt, were investigated in rabbits. Arterial blood pressure, heart rate, central venous pressure, transmural filling pressure of the heart (calculated as the product of esophageal and central venous pressure), breathing frequency, esophageal pressure were measured in supine (baseline), head-down and upright posture. Our results indicate a reduction in orthostatic responses in cardiovascular system after intermittent hypoxia.

Animals↗

[The dynamic of breathing biomechanics and intrathoracic hemodynamics parameters during microgravity modeling].

In ground-based model of the hemodynamics effects of weightlessness, the intersystem relation of breathing and circulation was investigated during inspiration and expiration separately in anesthetized catz. It's shown that the dynamics of central venous pressure, esophageal pressure and filling pressure of the heart during inspiration in supine and head-down tilt position has obvious similarity to those which hypothetically can be present in microgravity. The results suggest that intrathoracic hemodynamics during inspiration in supine and head-down position may be an adequate ground model for investigation of weightlessness influences on intrathoracic circulation.

Animals↗

Influence of changes in intrathoracic and central venous pressure on cardiac filling dynamics.

Changes in the ratio between intrathoracic and central venous pressure were studied in narcotized cats under conditions of constant positive or negative pressure ventilation. Transformation of elastic characteristics in the respiratory system caused by changes in intrathoracic pressure led to inversion of the ratio between transpulmonary intrathoracic and central venous pressure determining right atrial filling pressure.

Animals↗

[Respiration and cardiovascular mechanisms of hypobaric correction of the head-down redistribution of local blood volumes].

The focus was placed on the physiological mechanisms of correction of the blood redistribution during the head-down tilt (HDT) with a discrete or complex use of the methods of negative pressure respiration (NPR) and lower body negative pressure (LBNP). It was evidenced that rise in the intracranial hydrostatic pressure in HDT (-6 degrees) can be compensated by NPR within a range of -10 to -15 cm of water column causing decrease in the intrasternal pressure from -5.04 to -7.74 cm w.c. Bioimpedance and ultrasonic investigations led to the conclusion that the decreased transpulmonary pressure is responsible for blood outflow from the intracranial venous system till the level adequate to the horizontal position of the body. The results were verified in experiments with unconscious cats: pressure in the exterior jugular vein and v. cava superior during HDT (-30 degrees) with NRP at -5 cm w.c. decreased by 3.2. and 4.3. w.c., respectively. Experiments with human subjects also demonstrated that the complex use of NPR and LBNP produces an additive hemodynamic effect and can be considered a new method for correcting the adverse consequences of redistribution of the local blood volumes toward the head end.

Adult↗

[Transmural pressure in the right atrium during positive pressure respiration in cats].

The influence of continuous positive pressure breathing (cm H2O) on the breathing mechanics, central venous pressure, and transmural pressure in the right atrium, were studied in anaesthetised cats separately during inspiration and expiration. It's shown that hemodynamics effects are directly connected with the influence of increased intrathoracic pressure during whole breathing cycles in contrast with the phase changes in natural expiration and inspiration. The inversion of relation of intrathoracic and central venous pressure due to displacement of the mechanical respiratory characteristics became the factors defining the fall of the right atrium filling pressure.

Animals↗

[The effect of complex barometric exposure on hemodynamics during simulation of the physiological impacts microgravity in animals].

In experiments with anesthetized cats effects of breathing under negative pressure (BNP, -5 cm of water column) combined with lower body negative pressure (LBNP, -20 cm of water column) on the cardiorespiratory reactions to postural simulation of the hemodynamic shifts in microgravity were studied. Evidence was obtained that this complex barometric exposure of tilted animals (-30 degrees) imitated the central and peripheral hemodynamics characteristic of tilt at the calculated inclination of +6 degrees up to +12 degrees. Extrapolation of the experimental data on the orthodox physiological model of microgravity (HDT, -6 degrees) allows an assumption that the protocol of complex barometric exposure tested in this experiment transforms the hemodynamic parameters under study to the levels close to those in the vertical body. Results of the investigation infer an additive character of the complex barometric exposure (LBNP + BNP) and its utility as a model of orthostatic g-loads.

Animals↗

[Effect of the body antiorthostatic posture on various circulation and respiration parameters in anesthetised cats].

In anaesthetised cats, antiorthostatic posture of the body with an inclination angle of 30 degrees increased pressure in the vena cava superior and in jugular vein. The rest of the cardio-respiratory parameters were changed insignificantly. Physical and physiological mechanisms of the blood regional redistribution in alteration of the body gravitation orientation, are discussed.

Anesthesia↗

[Influence of breathing at negative pressure on redistribution of local blood volumes in anti-orthostatic load in cats].

To improve methods of offsetting the hemodynamic shifts in microgravity, applicability of breathing at negative pressure (BNP, pressure relief by -5.0 cm of water column) during inspiration and expiration was assessed in acute experiments with unconscious cats tilted head-down (-30 degrees). Direct measurement of pressure in v. cava superior and v. jugularis externa using a catheter revealed a concurrent significant (p < 0.05) growth of the parameter which should be considered a sign of impeded venous outflow from the craniocervical vessels. BNP added to the sucking effect of the thoracic cavity (the siphoning effect) and led to more massive venous outflow from cephalic vessels as evidenced by pressure drop in the jugular vein and v. cava superior to the values determined in the basic horizontal position. However, BNP did not significantly alter arterial hemodynamics, respiration pattern or gas exchange. Data of the investigation attest effectiveness of this method of moderating blood flow to the cat's head during HDT and possibility to apply it in the zero-g environment.

Animals↗

[Compensatory reactions of the rabbit respiratory system to hypoxic stimulation in hyperbaric conditions].

Two series of experiments were performed with awake rabbits to study ventilatory reactions of the respiratory system to hypoxic stimulus. Two types of tests included alternating exposure to hypoxic mixture with 14%, 12%, and 10% of O2 (for 10 min) and rebreathing (12% O2 + 4.5% CO2) with concurrent sampling of arterial blood for gas analysis. The experiments were performed under the atmospheric pressure and in the nitrogen-oxygen air at 0.6, 1.0, 1.3, 1.5, 2.0, and 3.0 MPa. Both of the tests disclosed a distinct reduction of pulmonary ventilation gain in hyperbaric conditions due to inhalation of a hypoxic mixture. In the experiment with alternating exposure to hypoxic mixtures the gain reduction was gradual and correlated with a pressure rise. During rebreathing, hypoxemia appeared as early as the first minutes of experiment. PaCO2 grew by the end of exposure and abrupt inhibition of the ventilatory reaction occurred even at 0.6 MPa. Sharp degrees of hypoxemia during rebreathing seemed to suppress the respiratory center to the extent at which the reaction to hypoxia became weaker rather than stronger and was manifested by a sudden attenuation. These results suggest that hyperbaric conditions reduce the ventilatory reaction to hypoxia and balancing potentials of the respiratory system, and impair the respiration controls.

Animals↗

[The capacity of humans to regulate the artificial ventilation of their own lungs].

The subjects were given the possibility to control the capacity of the artificial ventilation apparatus (AVA) at resting and during physical work. The subjects were able to find such a level of the artificial ventilation when he or she could delay natural respiratory movements. The subjects seem to orient themselves to afferents from the chemoreceptors in this task. The subjects could not delay the respiration during physical work, obvious hypocapnia being preserved at that.

Adult↗

[The characteristics of the reaction of the rabbit respiratory system to CO2 under hyperbaric conditions].

Under the increase of the nitrogen-oxygen mixture pressure from 6.13 to 30.0 kg/cm2, the respiratory response to a hypercapnic stimulus weakened in alert rabbits: the total increase of the lung ventilation decreased, and the ventilatory response of the respiratory system in hyperbaric conditions occurred in great values of the PaCO2. The data obtained suggest that the hyperbarism both suppresses the lung ventilation and disturbs the regulation of respiration due to a high density of the inhaled gas mixture rather than to nitrogen's narcotic effect.

Animals↗

[Reaction of the respiratory system of rabbits to hypoxic stimulation in a nitrogen-oxygen environment under elevated pressure].

In 9 unanesthetized rabbits, parameters of external respiration were studied in normoxic nitrogen-oxygen mixture under the pressure of 6 kg/cm2, depending on the decrease of oxygen pressure in arterial blood. The ventilatory response of the respiration system to a hypoxic stimulus was decreased in hyperbaria whereas in reduction of the oxygen tension in arterial blood down to 37.6 Hg a suppression of the lung ventilation occurred.

Animals↗

[Reaction of the external respiration system to a hypercapnic stimulus in rabbits under increased pressure].

In 10 unanesthetized rabbits exposed to normoxic (PIO2 = 0.2 kgs/cm2) helio-oxygen medium under pressure 40 kgs/cm2, changes of the respiration parameters (frequency, Vt, V, ITP) depending on the CO2 tension in the blood were studied with the aid of the recurrent respiration technique. The animals both in hyperbaric and in normal conditions (air), when breathing from the sack up to 7 min, revealed a linear increase in V due to an increase of the CO2 tension in the blood, but the lung ventilation increment decreased by the 12th min. In the helio-oxygen mixture under hyperbaric conditions the V relative increment was lesser and its decrease by the 12th min was more obvious than in ordinary air under the atmospheric pressure.

Animals↗

[Changes in the respiration of rabbits in a high pressure nitrogen-oxygen mixture].

In 14 unanesthetized rabbits, the parameters and the work of respiration, the electrical activity of respiratory muscles, the oxyhemoglobin content in the arterial blood, and the oxygen available in the cerebral cortex were studied in conditions of nitrogen-oxygen mixture (PO=0.2 kgc/cm2) under increased pressure: 6, 10, 20, 30, and 40 kgc/cm2. The 6 kgc/cm2 pressure decreased the lung ventilation, intensified the work of respiration and the electrical activity of external intercostal muscles. The 20--30 kgc/cm2 pressure entailed a gradual drop of the oxyhemoglobin content in the arterial blood and of the oxygen available in the cortex. The 40 kgc/cm2 pressure stopped the breathing in rabbits within 10--30 min. The data obtained reveal a limit of the increase in the density of inspired gas which for rabbits seems to be about 51.29 g/l.

Airway Resistance↗