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Brain structure and neurocognitive function in two professional mountaineers during 35 days of severe normobaric hypoxia

Title: Brain structure and neurocognitive function in two professional mountaineers during 35 days of severe normobaric hypoxia
Authors: Sönksen, S.E.; Kuhn, S.; Basner, M.; Gerlach, D.; Hoffmann, F.; Mühl, C.; Tank, J.; Noble, H.J.; Akgün, K.; Ziemssen, T.; Jordan, J.; Limper, U.
Publisher Information: Wiley
Publication Year: 2022
Collection: German Aerospace Center: elib - DLR electronic library
Subject Terms: Schlaf und Humanfaktoren; Leitungsbereich ME; Kardiovaskuläre Luft- und Raumfahrtmedizin
Description: Background and purpose Animal studies suggest that exposure to severe ambient hypoxia for several days may have beneficial long-term effects on neurodegenerative diseases. Because, the acute risks of exposing human beings to prolonged severe hypoxia on brain structure and function are uncertain, we conducted a pilot study in healthy persons. Methods We included two professional mountaineers (participants A and B) in a 35-day study comprising an acclimatization period and 14 consecutive days with oxygen concentrations between 8% and 8.8%. They underwent cerebral magnetic resonance imaging at seven time points and a cognitive test battery covering a spectrum of cognitive domains at 27 time points. We analysed blood neuron specific enolase and neurofilament light chain levels before, during, and after hypoxia. Results In hypoxia, white matter volumes increased (maximum: A, 4.3% ± 0.9%; B, 4.5% ± 1.9%) whilst gray matter volumes (A, −1.5% ± 0.8%; B, −2.5% ± 0.9%) and cerebrospinal fluid volumes (A, −2.7% ± 2.4%; B, −5.9% ± 8.2%) decreased. Furthermore, the number (A, 11–17; B, 26–126) and volumes (A, 140%; B, 285%) of white matter hyperintensities increased in hypoxia but had returned to baseline after a 3.5-month recovery phase. Diffusion weighted imaging of the white matter indicated cytotoxic edema formation. We did not observe changes in cognitive performance or biochemical brain injury markers. Discussion In highly selected healthy individuals, severe sustained normobaric hypoxia over 2 weeks elicited reversible changes in brain morphology without clinically relevant changes in cognitive function or brain injury markers. The finding may pave the way for future translational studies assessing the therapeutic potential of hypoxia in neurodegenerative diseases.
Document Type: article in journal/newspaper
File Description: application/pdf
Language: English
ISSN: 1351-5101
Relation: https://elib.dlr.de/189801/1/M%C3%BChl_Euro%20J%20of%20Neurology%20-%202022%20-%20S%20nksen%20-%20Brain%20structure%20and%20neurocognitive%20function%20in%20two%20professional%20mountaineers%20during.pdf; Sönksen, S.E. und Kuhn, S. und Basner, M. und Gerlach, D. und Hoffmann, F. und Mühl, C. und Tank, J. und Noble, H.J. und Akgün, K. und Ziemssen, T. und Jordan, J. und Limper, U. (2022) Brain structure and neurocognitive function in two professional mountaineers during 35 days of severe normobaric hypoxia. European Journal of Neurology, 29 (10), Seiten 3112-3116. Wiley. doi:10.1111/ene.15470 . ISSN 1351-5101.
DOI: 10.1111/ene.15470
Availability: https://elib.dlr.de/189801/; https://onlinelibrary.wiley.com/doi/10.1111/ene.15470
Rights: cc_by_nc
Accession Number: edsbas.34365A3E
Database: BASE