Are We Learning as Much as Possible from Spaceflight to Better Understand Health and Risks to Health on Earth, as Well as in Space? — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Are We Learning as Much as Possible from Spaceflight to Better Understand Health and Risks to Health on Earth, as Well as in Space?
Human Performance Laboratory, University of Calgary, Calgary, Canada
,
Faculty of Kinesiology, University of Calgary, Calgary, Canada
,
Department of Surgery, University of Calgary, Calgary, Canada
,
McCaig Institute for Bone & Joint Health, University of Calgary, Calgary, Canada
,
Alberta Health Services Bone & Joint Health Strategic Clinical Network, Edmonton, Canada
1 Human Performance Laboratory, University of Calgary, Calgary, Canada
2 Faculty of Kinesiology, University of Calgary, Calgary, Canada
3 Department of Surgery, University of Calgary, Calgary, Canada
4 McCaig Institute for Bone & Joint Health, University of Calgary, Calgary, Canada
5 Alberta Health Services Bone & Joint Health Strategic Clinical Network, Edmonton, Canada
The objective of this review is to discuss the changes in human biology and physiology that occur when humans, who evolved on Earth for millions of years, now are subjected to space flight for extended periods of time, and how detailing such changes associated with space flight could help better understand risks for loss of health on Earth. Space programs invest heavily in the selection and training of astronauts. They also are investing in maintaining the health of astronauts, both for extensive stays in low earth orbit on ISS, and in preparation for deep space missions in the future. This effort is critical for the success of such missions as the N is small and the tasks needed to be performed in a hostile environment are complex and demanding. However, space is a unique environment, devoid of many of the “boundary conditions” that shaped human evolution (e.g. 1 g environment, magnetic fields, background radiation, oxygen, water, etc). Therefore, for humans to be successful in space, we need to learn to adapt and minimize the impact of an altered environment on human health. Conversely, we can also learn considerably from this altered environment for life on earth. The question is, are we getting the maximal information from life in space to learn about like on earth? The answer is likely No, and as such, our “Return on Investment” is not as great as it could be. Even though the number of astronauts is not large, what we can learn from them could help shape new questions for research focused on health for those on earth, as well is contribute to “precision health” from the study of astronaut diversity. This latter effort would contribute to both the health of astronauts identifying risks, as well as contribute to health on earth via better understanding of the human genome and epigenome, as well as factors contributing to risk for diseases on earth, particularly as individuals age and regulatory systems become altered. Better use of the International Space Station, and similar platforms in the future, could provide critical insights in aging-associated risks for loss of health on Earth, as well as promote new approaches to using precision medicine to overcome threats to health while in space. To achieve this goal will likely require advanced approaches to collecting such information and use of more systems biology, systems physiology approaches to integrate the information.
KeywordsPhysiologyGenomeEpigenomeSpace FlightPrecision Medicine
Darwin, C. (1859) The Origin of the Species.
Moller, A.P. and Moussesu, T.A. (2013) The Effects of Natural Variation in Background Radioactivity on Humans, Animals and Other Organisms. Biological Reviews of the Cambridge. Philosophical Society, 88, 226-254. https://doi.org/10.1111/j.1469-185X.2012.00249.x
Courtillot, V. and Le Mouel, J.L. (1988) Time Variations of the Earth’s Magnetic Field: From Daily to Secular. Annual Review Earth Planetary Science, 16, 389-476. https://doi.org/10.1146/annurev.ea.16.050188.002133
Tattersall, I. (2009) Human Origins: Out of Africa. Proceeding of the National Academy of Sciences (USA), 106, 16018-16021. https://doi.org/10.1073/pnas.0903207106
Hood, L. and Galas, D. (2003) The Digital Code of DNA. Nature, 421, 444-448. https://doi.org/10.1038/nature01410
Ueno, S. (2012) Studies on Magnetism and Bioelectromagnetics for 45 Years: From Magnetic Analog Memory to Human Brain Stimulation and Imaging. Bioelectromagnetics, 33, 3-22. https://doi.org/10.1002/bem.20714
Ploutz-Snyder, L., Bloomfield, S., Smith, S.M., Hunter, S.K., Temple-ton, K. and Bemben, D. (2014) Effects of Sex and Gender on Adaptation to Space: Musculoskeletal Health. Journal of Women’s Health, 23, 963-966. https://doi.org/10.1089/jwh.2014.4910
Iwamoto, J., Takeda, T. and Sato, Y. (2005) Interventions to Prevent Bone Loss in Astronauts during Space Flight. Keio Journal of Medicine, 54, 55-59. https://doi.org/10.2302/kjm.54.55
Feinberg, A.P. (2018) The Key Role of Epigenetics on Human Disease Prevention and Mitigation. New England Journal of Medicine, 378, 1323-1334. https://doi.org/10.1056/NEJMra1402513
Hughes-Fulford, M., Chang, T.T., Martinez, E.M. and Li, C.F. (2015) Spaceflight Alters Expression of microRNA during T-Cell Activation. FASEB Journal, 29, 4893-4900. https://doi.org/10.1096/fj.15-277392
Fogel, O., Richard-Miceli, C. and Tost, J. (2017) Epigenetic Changes in Dhronic Inflammatory Diseases. Advances in Protein Chemistry and Structural Biology, 106, 139-189. https://doi.org/10.1016/bs.apcsb.2016.09.003
Hughson, R.L. (2009) Recent Findings in Cardiovascular Physiology with Space Travel. Respiratory Physiology and Neurobiology, 169, S38-S41. https://doi.org/10.1016/j.resp.2009.07.017
Hughson, R.L., Robertson, A.D., Arbeille, P., Shoemaker, J.K., Rush, J.W.E., Fraser, K.S. and Greaves, D.K. (2016) Increased Postflight Carotid Artery Stiffness and Inflight Insulin Resistance Resulting from 6-mo Spaceflight in Male and Female Astronauts. American Journal Physiology Heart Circulatory Physiology, 310, H628-H638. https://doi.org/10.1152/ajpheart.00802.2015
Precision Health
Silent Mutations
Accelerated Aging
Wilson, D.M. 3rd, Kim, D., Berquist, B.R. and Sigurdson, A.J. (2011) Variation in Base Excision Repair Capacity. Mutation Research, 711, 100-112. https://doi.org/10.1016/j.mrfmmm.2010.12.004
Yatagai, F. and Ishioka, N. (2014) Are Biological Effects of Space Radiation Really Altered under the Microgravity Environment? Life Sciences in Space Research, 3, 76-89. https://doi.org/10.1016/j.lssr.2014.09.005
Baillet, S. (2017) Magnetoencephalography for Brain Electrophysiology and Imaging. Nature Neuroscience, 20, 327-339. https://doi.org/10.1038/nn.4504
Delp, M.D., Charvat, J.M., Limolo, C.L., Globus, R.K. and Ghosh, P. (2016) Apollo Lunar Astronauts Show Higher Cardiovascular Disease Mortality: Possible Deep Space Radiation Effects on the Vascular Endothelium. Scientific Reports, 6, Article No. 29901.
Caswell, J.M., Singh, M. and Persinger, M.A. (2016) Simulated Sudden Increases in Geomagnetic Activity and Its Effect on Heart Rate Variability: Experimental Verification of Correlation Studies. Life Sciences in Space Research, 10, 47-52. https://doi.org/10.1016/j.lssr.2016.08.001
Cucinotta, F.A., Hamada, N. and Little, M.P. (2016) No Evidence for an Increase in Circulatory Disease Mortality in Astronauts Following Space Radiation Exposures. Life Sciences in Space Research, 10, 53-56. https://doi.org/10.1016/j.lssr.2016.08.002
Baevsky, R.M, Petrov, V.M. and Chernikova, A.G. (1998) Regulation of Autonomic Nervous System in Space and Magnetic Storms. Advances in Space Research, 22, 227-234. https://doi.org/10.1016/S0273-1177(98)80014-8
Breus, T.K., Baevskii, R.M. and Chernikova, A.G. (2012) Effects of Geomagnetic Disturbances on Humans Functional State in Space Flight. Journal of Biomedical Science and Engineering, 5, 341-355. https://doi.org/10.4236/jbise.2012.56044
Cucinotta, F.A., Alp, M., Sulzman, F.M. and Wang, M. (2014) Space Radiation Risks to the Central Nervous System. Life Sciences in Space Research, 2, 54-69. https://doi.org/10.1016/j.lssr.2014.06.003
Kay, R.W. (2004) Schizophrenia and Season of Birth: Relationship to Geomagnetic Storms. Schizophrenia Research, 66, 7-20. https://doi.org/10.1016/S0920-9964(02)00495-4
Mulligan, B.P. and Persinger, M.A. (2012) Experimental Simulation of the Effects of Sudden Increases in Geomagnetic Activity upon Quantitative Measures of Human Brain Activity: Validation of Correlational Studies. Neuroscience Letters, 516, 54-56. https://doi.org/10.1016/j.neulet.2012.03.054
Keshavan, M.S., Gangadhar, B.N., Gautam, R.U., Ajit, A. and Kapur, R.L. (1981) Convulsive Threshold in Humans and Rats and Magnetic Field Changes: Observations during Total Solar Eclipse. Neuroscience Letters, 22, 205-208. https://doi.org/10.1016/0304-3940(81)90089-6
Neutelings, T., Nusgens, B.V., Liu, Y., Tavella, S., Ruggiu, A., Cancedda, R., Gabriel, M., Colige, A. and Lambert, C. (2015) Skin Physiology in Microgravity: A 3-Month Stay Aboard ISS Induces Dermal Atrophy and Affects Cutaneous Muscle and Hair Follicles Cycling in Mice. Microgravity, 1, 15002. https://doi.org/10.1038/npjmgrav.2015.2
Chylack, L.T. Jr., Feiveson, A.H., Peterson, L.E., Wear, M.L., Marak, L.J., Hardy, D.S., Chappell, L.J. and Cucinotta, F.A. (2012) NASCA Report 2: Longitudinal Study of Relationship of Exposure to Space Radiation and Risk of Lens Opacity. Radiation Research, 178, 25-32. https://doi.org/10.1667/RR2876.1
Ray, E.K. (1991) Introduction: Are Aging and Space Effects Similar? Experimental Gerontology, 26, 123-129. https://doi.org/10.1016/0531-5565(91)90002-4
Cristofalo, V.J. (1991) On Understanding the Biology of Aging: Studies in Space. Experimental Gerontology, 26, 137-138. https://doi.org/10.1016/0531-5565(91)90005-7
Vernikos, J. and Schneider, V.S. (2010) Space, Gravity and the Physiology of Aging: Parallel or Convergent Disciplines? A Mini-Review. Gerontology, 56, 157-166. https://doi.org/10.1159/000252852
Demontis, G.C., Germani, M.M., Caiani, E.G., Barravecchia, I., Passino, C. and Angeloni, D. (2017) Human Pathophysiological Adaptations to the Space Environment. Frontiers in Physiology, 8, 547. https://doi.org/10.3389/fphys.2017.00547
Ideker, T., Dutkowski, J. and Hood, L. (2011) Boosting Signal-to-Noise in Complex Biology: Prior Knowledge Is Power. Cell, 144, 860-863. https://doi.org/10.1016/j.cell.2011.03.007
Hood, L. and Tian, Q. (2012) Systems Approaches to Biology and Disease Enable Translational Systems Medicine. Genomics, Proteomics and Bioinformatics, 10, 181-185. https://doi.org/10.1016/j.gpb.2012.08.004
Trachana, K., Bargaje, R., Glusman, G., Price, N.D., Huang, S. and Hood, L.E. (2018) Takings Systems Medicine to Heart. Circulation Research, 122, 1276-1289. https://doi.org/10.1161/CIRCRESAHA.117.310999