Human Pathophysiological Adaptations to the Space Environment
Патофизиологические адаптации человека к космической среде
2017-08-02
SCID: 54.1/qdh25zmu
Discuss with AI
bone density losscardiovascular deconditioningmicrogravityspace environmentspace radiation
Figures from the paper
Abstract (AI)
Space is an extreme environment for the human body, where during long-term missions microgravity and high radiation levels represent major threats to crew health. Intriguingly, space flight (SF) imposes on the body of highly selected, well-trained, and healthy individuals (astronauts and cosmonauts) pathophysiological adaptive changes akin to an accelerated aging process and to some diseases. Such effects, becoming manifest over a time span of weeks (i.e., cardiovascular deconditioning) to months (i.e., loss of bone density and muscle atrophy) of exposure to weightlessness, can be reduced through proper countermeasures during SF and in due time are mostly reversible after landing. Based on these considerations, it is increasingly accepted that SF might provide a mechanistic insight into certain pathophysiological processes, a concept of interest to pre-nosological medicine. In this article, we will review the main stress factors encountered in space and their impact on the human body and will also discuss the possible lessons learned with space exploration in reference to human health on Earth. In fact, this is a productive, cross-fertilized, endeavor in which studies performed on Earth yield countermeasures for protection of space crew health, and space research is translated into health measures for Earth-bound population.
Key Findings
1
Long-term spaceflight exposes astronauts to microgravity and radiation, producing pathophysiological adaptations resembling accelerated aging and certain diseases.
2
Microgravity-related cardiovascular deconditioning develops within weeks, while bone-density loss and muscle atrophy emerge over months.
3
Proper countermeasures can reduce spaceflight-induced physiological deterioration, which is generally largely reversible after returning to Earth.
4
Research on Earth supports countermeasures for crew health, while space-derived findings can be translated into measures benefiting Earth-bound populations.
5
Spaceflight offers mechanistic insights into human pathophysiology and may inform pre-nosological medicine and health interventions on Earth.
Research Object
Human astronauts and cosmonauts exposed to the space environment during long-term space flight
Research Subject
Pathophysiological adaptations to microgravity and radiation, including cardiovascular deconditioning, bone-density loss, muscle atrophy, accelerated-aging-like changes, their countermeasures, reversibility, and implications for human health
Publication Details
Publication Date
2017-08-02
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest