Adaptation to microgravity, deconditioning, and countermeasures

Адаптация к микрогравитации, детренированность и контрмеры
Kunihiko Tanaka, Naoki Nishimura, Yasuaki Kawai
2016-12-20

bisphosphonatemicrogravity adaptationmusculoskeletal deconditioningorthostatic intoleranceresistive exercise
Humans are generally in standing or sitting positions on Earth during the day. The musculoskeletal system supports these positions and also allows motion. Gravity acting in the longitudinal direction of the body generates a hydrostatic pressure difference and induces footward fluid shift. The vestibular system senses the gravity of the body and reflexively controls the organs. During spaceflight or exposure to microgravity, the load on the musculoskeletal system and hydrostatic pressure difference is diminished. Thus, the skeletal muscle, particularly in the lower limbs, is atrophied, and bone minerals are lost via urinary excretion. In addition, the heart is atrophied, and the plasma volume is decreased, which may induce orthostatic intolerance. Vestibular-related control also declines; in particular, the otolith organs are more susceptible to exposure to microgravity than the semicircular canals. Using an advanced resistive exercise device with administration of bisphosphonate is an effective countermeasure against bone deconditioning. However, atrophy of skeletal muscle and the heart has not been completely prevented. Further ingenuity is needed in designing countermeasures for muscular, cardiovascular, and vestibular dysfunctions.
1
Advanced resistive exercise combined with bisphosphonate administration effectively counters bone deconditioning.
2
Cardiac atrophy and reduced plasma volume during spaceflight may contribute to orthostatic intolerance.
3
Microgravity diminishes musculoskeletal loading and hydrostatic pressure differences, causing lower-limb muscle atrophy and urinary bone-mineral loss.
4
Skeletal-muscle and cardiac atrophy remain incompletely prevented, requiring improved countermeasures for muscular, cardiovascular, and vestibular dysfunction.
5
Vestibular control declines in microgravity, with otolith organs more susceptible than semicircular canals.

Human physiological adaptation and deconditioning during exposure to microgravity, including the musculoskeletal, cardiovascular, and vestibular systems

Microgravity-induced muscle, bone, cardiac, plasma-volume, and vestibular changes, along with the effectiveness and limitations of countermeasures

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2016-12-20
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Kunihiko Tanaka
Naoki Nishimura
Yasuaki Kawai
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