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Biomedical subjects

O G Gazenko

Publications and source records attributed to O G Gazenko.

At least 19 recordsLinked to original sources

[From 108 minutes to 438 days and further on... (on the 40th anniversary of Iu. A. Gagarin's flight)].

The progress of science and technology at the end of the XIXth and first half of the XXth century paved the way to start space exploration by humanity. The flight of Yu. A. Gagarin on April 12, 1961 was one of the history watersheds that had a great many of social implications. Piloted missions to space demonstrated the possibility for humans to adapt to the spaceflight factors which, nonetheless, can provoke various unfavorable reactions, particularly on return to Earth. Step-by-step extension of mission length paralleled enhancement of the methods of monitoring of crew health, life support systems, and development of modalities to maintain crew health and performance. The paper contains brief discussion of data acquired in short- and long-term missions including the 438-d mission of cosmonaut-physician V.V. Polyakov. The final section is devoted to the mainstream problems of future piloted space programs.

Aerospace Medicine↗

[Main areas and results of research at the Institute of Biomedical Problems in 1963-1998].

The paper features the history of the Institute of Biomedical Problems (IBMP), the Russian leading institution in space biology and medicine, and the advances achieved by researchers over 35 years since its foundation. Special attention is devoted to the contribution of the Institute to the establishment of international co-operation in human space flight and space life sciences. Future of the space life sciences and humans in space is outlined.

Academies and Institutes↗

Milestones of space medicine development in Russia (establishment and evolution of the Institute of Biomedical Problems).

This paper describes the history of the Institute of Biomedical Problems (IMBP): its birth and development. IMBP's directors were: Andrei V. Libedinsky (1963-1965), Vasily V. Parin (1965-1967), Oleg G. Gazenko (1968-1988), and Anatoly I. Grigoriev (1988 to the present). Most of the early employees of IMBP came from the USSR Air Force Institute of Aviation Medicine and the USSR Ministry of Health Institute of Biophysics. The major goals of IMBP were: development of a system of medical monitoring and support of long-duration space missions, selection and training of civilian crew members, bioengineering testing of flight equipment, and development of life support system concepts and requirements. The paper presents major results of the above research activities.

Aerospace Medicine↗

[Nikolaĭ Nikalaevich Sirotinin and his school].

In a brief review of 50-year scientific activity of professor N. N. Sirotinin and his students the authors emphasize that this broad-minded scientist contributed to development of such disciplines as microbiology, pathophysiology, high-altitude, aerospace medicine. However, his main goal was evolution of reactivity and resistance, approaches to perfection of human health and performance. Much attention was paid to effects of low partial oxygen pressure on human and animal body, to hypoxic states of different origin. Methods of hypoxytherapy and hypoxic training are widely used in Russia and abroad. The contribution of academician N. N. Sirotinin to modern pathophysiology, high-altitude and aerospace physiology, internal and sport medicine is highly appreciated in Russia.

Aerospace Medicine↗

Review of basic medical results of the Salyut-7--Soyuz-T 8-month manned flight.

This paper presents the results of medical investigations performed in the Salyut-7 8-month mission in which a professional physician took part. The paper contains anthropometric measurements, results of investigating the vestibular function, cardiovascular function at rest and in response to multi-step tests (with emphasis on echocardiographic measurements), metabolic parameters and hormonal status. It also discusses medical aspects of the extravehicular activity. The medical investigations, although some new methods were applied, provided the continuity of methodical approaches and data accumulated in previous missions.

Adaptation, Physiological↗

Central and regional hemodynamics in prolonged space flights.

This paper presents the results of measuring central and regional (head, forearm, calf) hemodynamics at rest and during provocative tests by the method of tetrapolar rheography in the course of Salyut-6-Soyuz and Salyut-7-Soyuz missions. The measurements were carried out during short-term (19 man-flights of 7 days in duration) and long-term (21 man-flights of 65-237 days in duration) manned missions. At rest, stroke volume (SV) and cardiac output (CO) as well as heart rate (HR) decreased insignificantly (in short-term flights) or remained essentially unchanged (in long-term flights). In prolonged flights CO increased significantly in response to exercise tests due to an increase in HR and the lack of changes in SV. After exercise tests SV and CO decreased as compared to the preflight level. During lower body negative pressure (LBNP) tests HR and CO were slightly higher than preflight. Changes in regional hemodynamics included a distinct decrease of pulse blood filling (PBF) of the calf, a reduction of the tone of large vessels of the calf and small vessels of the forearm. Head examination (in the region of the internal carotid artery) showed a decrease of PBF of the left hemisphere (during flight months 2-8) and a distinct decline of the tone of small vessels, mainly, in the right hemisphere. During LBNP tests the tone of pre- and postcapillary vessels of the brain returned to normal while PBF of the right and left hemisphere vessels declined. It has been shown that regional circulation variations depend on the area examined and are induced by a rearrangement of total hemodynamics of the human body in microgravity. This paper reviews the data concerning changes in central and regional circulation of men in space flights of different duration.

Adaptation, Physiological↗

Medical problems of manned space flights onboard orbital stations.

Medical aspects of crew safety and life support as well as biomedical investigations form part and parcel of the preparation and conduct of manned space programs. The list of biomedical problems related to these programs is very long. The present paper concentrates on some of them.

Adaptation, Physiological↗

Investigations onboard the biosatellite Cosmos-1667.

The program of the 7-day flight of the biosatellite Cosmos-1667 launched in July 1985 included experiments on two rhesus monkeys, ten Wistar SPF rats, ten newts, Drosophila flies, maize seedlings, lettuce sprouts, and unicellular organisms--Tetrahymena. The primate study demonstrated that transition to orbital flight was accompanied by a greater excitability of the vestibular apparatus and an increased linear blood flow velocity in the common carotid artery. The rat studies showed that atrophy of antigravity muscles and osteoporosis of limb bones developed even during short-term exposure to microgravity. The experiments on other living systems revealed no microgravity effects on the cell division rate, proliferative activity of cells of regenerating tissues and organs, energy metabolism of developing insects, structure or chemical composition of higher plant seedlings.

Adaptation, Physiological↗