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Time Domains of Hypoxia Responses and -Omics Insights

  • James J. Yu
  • , Amy L. Non
  • , Erica C. Heinrich
  • , Wanjun Gu
  • , Joe Alcock
  • , Esteban A. Moya
  • , Elijah S. Lawrence
  • , Michael S. Tift
  • , Katie A. O'Brien
  • , Jay F. Storz
  • , Anthony V. Signore
  • , Jane I. Khudyakov
  • , William K. Milsom
  • , Sean M. Wilson
  • , Cynthia M. Beall
  • , Francisco C. Villafuerte
  • , Tsering Stobdan
  • , Colleen G. Julian
  • , Lorna G. Moore
  • , Mark M. Fuster
  • Jennifer A. Stokes, Richard Milner, John B. West, Jiao Zhang, John Y. Shyy, Ainash Childebayeva, José Pablo Vázquez-Medina, Luu V. Pham, Omar A. Mesarwi, James E. Hall, Zachary A. Cheviron, Jeremy Sieker, Arlin B. Blood, Jason X. Yuan, Graham R. Scott, Brinda K. Rana, Paul J. Ponganis, Atul Malhotra, Frank L. Powell, Tatum S. Simonson
  • Department of Medicine
  • University of California
  • University of California Riverside
  • University of California la Jolla
  • University of New Mexico School of Medicine
  • University of North Carolina Wilmington
  • University of Cambridge
  • School of Biological Sciences
  • University of the Pacific, California
  • Department of Zoology
  • Loma Linda University School of Medicine
  • Department of Anthropology
  • Laboratorio de Fisiología Comparada/Fisiología del Transporte de Oxígeno
  • Department of Pediatrics
  • University of Colorado Denver
  • Division of Reproductive Sciences
  • Southwestern University
  • San Diego Biomedical Research Institute
  • Max Planck Institute for Evolutionary Anthropology
  • University of California, Berkeley
  • Johns Hopkins University School of Medicine
  • University of Montana
  • Moores Cancer Center
  • Center for Marine Biotechnology and Biomedicine

Producción científica: Contribución a una revistaArtículo de revisiónrevisión exhaustiva

23 Citas (Scopus)

Resumen

The ability to respond rapidly to changes in oxygen tension is critical for many forms of life. Challenges to oxygen homeostasis, specifically in the contexts of evolutionary biology and biomedicine, provide important insights into mechanisms of hypoxia adaptation and tolerance. Here we synthesize findings across varying time domains of hypoxia in terms of oxygen delivery, ranging from early animal to modern human evolution and examine the potential impacts of environmental and clinical challenges through emerging multi-omics approaches. We discuss how diverse animal species have adapted to hypoxic environments, how humans vary in their responses to hypoxia (i.e., in the context of high-altitude exposure, cardiopulmonary disease, and sleep apnea), and how findings from each of these fields inform the other and lead to promising new directions in basic and clinical hypoxia research.

Idioma originalInglés
Número de artículo885295
PublicaciónFrontiers in Physiology
Volumen13
DOI
EstadoPublicada - 8 ago. 2022
Publicado de forma externa

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