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Lifelong exposure to high-altitude hypoxia in humans is associated with improved redox homeostasis and structural–functional adaptations of the neurovascular unit

  • Benjamin S. Stacey
  • , Ryan L. Hoiland
  • , Hannah G. Caldwell
  • , Connor A. Howe
  • , Tyler Vermeulen
  • , Michael M. Tymko
  • , Gustavo A. Vizcardo-Galindo
  • , Daniella Bermudez
  • , Rómulo J. Figueroa-Mujíica
  • , Christopher Gasho
  • , Edouard Tuaillon
  • , Christophe Hirtz
  • , Sylvain Lehmann
  • , Nicola Marchi
  • , Hayato Tsukamoto
  • , Francisco C. Villafuerte
  • , Philip N. Ainslie
  • , Damian M. Bailey
  • University of South Wales
  • University of British Columbia
  • University of British Columbia, Faculty of Medicine
  • University of British Columbia Okanagan
  • University of Alberta
  • Universidad Peruana Cayetano Heredia
  • Loma Linda University School of Medicine
  • Université de Montpellier
  • Ritsumeikan University Biwako-Kusatsu Campus

Research output: Contribution to journalArticlepeer-review

26 Scopus citations

Abstract

Abstract: High-altitude (HA) hypoxia may alter the structural–functional integrity of the neurovascular unit (NVU). Herein, we compared male lowlanders (n = 9) at sea level (SL) and after 14 days acclimatization to 4300 m (chronic HA) in Cerro de Pasco (CdP), Péru (HA), against sex-, age- and body mass index-matched healthy highlanders (n = 9) native to CdP (lifelong HA). Venous blood was assayed for serum proteins reflecting NVU integrity, in addition to free radicals and nitric oxide (NO). Regional cerebral blood flow (CBF) was examined in conjunction with cerebral substrate delivery, dynamic cerebral autoregulation (dCA), cerebrovascular reactivity to carbon dioxide (CVRCO2) and neurovascular coupling (NVC). Psychomotor tests were employed to examine cognitive function. Compared to lowlanders at SL, highlanders exhibited elevated basal plasma and red blood cell NO bioavailability, improved anterior and posterior dCA, elevated anterior CVRCO2 and preserved cerebral substrate delivery, NVC and cognition. In highlanders, S100B, neurofilament light-chain (NF-L) and T-tau were consistently lower and cognition comparable to lowlanders following chronic-HA. These findings highlight novel integrated adaptations towards regulation of the NVU in highlanders that may represent a neuroprotective phenotype underpinning successful adaptation to the lifelong stress of HA hypoxia. (Figure presented.). Key points: High-altitude (HA) hypoxia has the potential to alter the structural–functional integrity of the neurovascular unit (NVU) in humans. For the first time, we examined to what extent chronic and lifelong hypoxia impacts multimodal biomarkers reflecting NVU structure and function in lowlanders and native Andean highlanders. Despite lowlanders presenting with a reduction in systemic oxidative–nitrosative stress and maintained cerebral bioenergetics and cerebrovascular function during chronic hypoxia, there was evidence for increased axonal injury and cognitive impairment. Compared to lowlanders at sea level, highlanders exhibited elevated vascular NO bioavailability, improved dynamic regulatory capacity and cerebrovascular reactivity, comparable cerebral substrate delivery and neurovascular coupling, and maintained cognition. Unlike lowlanders following chronic HA, highlanders presented with lower concentrations of S100B, neurofilament light chain and total tau. These findings highlight novel integrated adaptations towards the regulation of the NVU in highlanders that may represent a neuroprotective phenotype underpinning successful adaptation to the lifelong stress of HA hypoxia.

Original languageEnglish
Pages (from-to)1095-1120
Number of pages26
JournalJournal of Physiology
Volume601
Issue number6
DOIs
StatePublished - 15 Mar 2023

Keywords

  • acclimatization
  • cerebrovascular function
  • cognition
  • free radicals
  • high altitude
  • neurovascular unit

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