UBC-Nepal expedition: phenotypical evidence for evolutionary adaptation in the control of cerebral blood flow and oxygen delivery at high altitude

被引:22
作者
Hoiland, Ryan L. [1 ]
Howe, Connor A. [1 ]
Carter, Howard H. [2 ]
Tremblay, Joshua C. [3 ]
Willie, Chris K. [1 ]
Donnelly, Joseph [4 ]
MacLeod, David B. [6 ]
Gasho, Chris [7 ,8 ]
Stembridge, Mike [5 ]
Boulet, Lindsey M. [1 ]
Niroula, Shailesh [9 ]
Ainslie, Philip N. [1 ]
机构
[1] Univ British Columbia Okanagan Campus, Sch Hlth & Exercise Sci, Ctr Heart Lung & Vasc Hlth, 3333 Univ Way, Kelowna, BC V1V 1V7, Canada
[2] Univ Copenhagen, Dept Nutr Exercise & Sports, Norre Alle 51, DK-2200 Copenhagen, Denmark
[3] Queens Univ, Sch Kinesiol & Hlth Studies, Cardiovasc Stress Response Lab, 28 Div St, Kingston, ON K7L 3N6, Canada
[4] Univ Cambridge, Dept Clin Neurosci, Div Neurosurg, Brain Phys Lab, Cambridge Biomed Campus, Cambridge CB2 0QQ, England
[5] Cardiff Metropolitan Univ, Cardiff Ctr Exercise & Hlth, Cyncoed Rd, Cardiff CF23 6XD, S Glam, Wales
[6] Duke Univ, Med Ctr, Dept Anesthesiol, Human Pharmacol & Physiol Lab, Durham, NC 27708 USA
[7] VA Loma Linda Healthcare Syst, Loma Linda, CA USA
[8] Loma Linda Univ, Sch Med, Loma Linda, CA USA
[9] Tribhuvan Univ, Inst Med, Kirtipur, Nepal
来源
JOURNAL OF PHYSIOLOGY-LONDON | 2019年 / 597卷 / 12期
基金
加拿大自然科学与工程研究理事会;
关键词
Hypoxia; Cerebral Blood Flow; Sherpa; Adaptation; High-altitude; TIBETAN PLATEAU; EXTREME ALTITUDE; HYPOXIA; ULTRASOUND; HUMANS; METABOLISM; EXPOSURE; AUTOREGULATION; LOWLANDERS; REACTIVITY;
D O I
10.1113/JP277596
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Key points Sherpa have lived in the Nepal Himalaya for 25-40 thousand years and display positive physiological adaptations to hypoxia. Sherpa have previously been demonstrated to suffer less negative cerebral side effects of ascent to extreme altitude, yet little is known as to whether or not they display differential regulation of oxygen delivery to the brain compared to lowland natives. We demonstrate that Sherpa have lower brain blood flow during ascent to and acclimatization at high altitude compared to lowlanders and that this difference in flow is not attributable to factors such as mean arterial pressure, blood viscosity and pH. The observed lower cerebral oxygen delivery in Sherpa likely represents a positive adaptation that may indicate a cerebral hypometabolic conservation of energy at altitude and/or decreased risk of other cerebral consequences such as vasogenic oedema. Debilitating side effects of hypoxia manifest within the central nervous system; however, high-altitude natives of the Tibetan plateau, the Sherpa, experience negligible cerebral effects compared to lowland natives at extreme altitude. Phenotypical optimization of the oxygen cascade has been demonstrated in the systemic circulation of Tibetans and Sherpa, likely underscoring their adapted capacity to thrive at altitude. Yet, little is known as to how the cerebral circulation of Sherpa may be adapted. To examine potential differences in cerebral oxygen delivery in Sherpa compared to lowlanders we measured arterial blood gases and global cerebral blood flow (duplex ultrasound) during a 9 day ascent to 5050 m. Although cerebral oxygen delivery was maintained during ascent in lowlanders, it was significantly reduced in the Sherpa at 3400 m (-30.3 +/- 21.6%; P < 0.01) and 4371 m (-14.2 +/- 10.7%; P = 0.03). Furthermore, linear mixed effects modelling indicated that independent of differences in mean arterial pressure, pH and blood viscosity, race accounts for an approximately 100 mL min(-1) (similar to 17-34%) lower cerebral blood flow in Sherpa compared to lowlanders across ascent to altitude (P = 0.046). To ascertain the role of chronic hypoxia independent of the ascent, Sherpa who had not recently descended were also examined at 5050 m. In these Sherpa, cerebral oxygen delivery was also lower compared to lowlanders (similar to 22% lower; P < 0.01). We highlight new information about the influence of race and genetic adaptation in the regulation of cerebral oxygen delivery. The lower cerebral oxygen delivery in the Sherpa potentially represents a positive adaptation considering Sherpa endure less deleterious cerebral consequences than lowlanders at altitude.
引用
收藏
页码:2993 / 3008
页数:16
相关论文
共 55 条
[11]   UBC-Nepal expedition: markedly lower cerebral blood flow in high-altitude Sherpa children compared with children residing at sea level [J].
Fluck, Daniela ;
Morris, Laura E. ;
Niroula, Shailesh ;
Tallon, Christine M. ;
Sherpa, Kami T. ;
Stembridge, Mike ;
Ainslie, Philip N. ;
McManus, Ali M. .
JOURNAL OF APPLIED PHYSIOLOGY, 2017, 123 (04) :1003-1010
[12]   Are Himalayan Sherpas better protected against brain damage associated with extreme altitude climbs? [J].
Garrido, E ;
Segura, R ;
Capdevila, A ;
Pujol, J ;
Javierre, C ;
Ventura, JL .
CLINICAL SCIENCE, 1996, 90 (01) :81-85
[13]   CORTICAL ATROPHY AND OTHER BRAIN MAGNETIC-RESONANCE-IMAGING (MRI) CHANGES AFTER EXTREMELY HIGH-ALTITUDE CLIMBS WITHOUT OXYGEN [J].
GARRIDO, E ;
CASTELLO, A ;
VENTURA, JL ;
CAPDEVILA, A ;
RODRIGUEZ, FA .
INTERNATIONAL JOURNAL OF SPORTS MEDICINE, 1993, 14 (04) :232-234
[14]  
Gayeski T E, 1988, Adv Exp Med Biol, V222, P25
[15]   King of the Mountains: Tibetan and Sherpa Physiological Adaptations for Life at High Altitude [J].
Gilbert-Kawai, Edward T. ;
Milledge, James S. ;
Grocott, Michael P. W. ;
Martin, Daniel S. .
PHYSIOLOGY, 2014, 29 (06) :388-402
[16]   Differences between brain mass and body weight scaling to height: potential mechanism of reduced mass-specific resting energy expenditure of taller adults [J].
Heymsfield, Steven B. ;
Chirachariyavej, Thamrong ;
Rhyu, Im Joo ;
Roongpisuthipong, Chulaporn ;
Heo, Moonseong ;
Pietrobelli, Angelo .
JOURNAL OF APPLIED PHYSIOLOGY, 2009, 106 (01) :40-48
[17]   Sherpa brain glucose metabolism and defense adaptations against chronic hypoxia [J].
Hochachka, PW ;
Clark, CM ;
Monge, C ;
Stanley, C ;
Brown, WD ;
Stone, CK ;
NIckles, RJ ;
Holden, JE .
JOURNAL OF APPLIED PHYSIOLOGY, 1996, 81 (03) :1355-1361
[18]   CrossTalk proposal: The middle cerebral artery diameter does change during alterations in arterial blood gases and blood pressure [J].
Hoiland, Ryan L. ;
Ainslie, Philip N. .
JOURNAL OF PHYSIOLOGY-LONDON, 2016, 594 (15) :4073-4075
[19]   Hypoxemia, oxygen content, and the regulation of cerebral blood flow [J].
Hoiland, Ryan L. ;
Bain, Anthony R. ;
Rieger, Mathew G. ;
Bailey, Damian M. ;
Ainslie, Philip N. .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2016, 310 (05) :R398-R413
[20]   Metabolic basis to Sherpa altitude adaptation [J].
Horscroft, James A. ;
Kotwica, Aleksandra O. ;
Laner, Verena ;
West, James A. ;
Hennis, Philip J. ;
Levett, Denny Z. H. ;
Howard, David J. ;
Fernandez, Bernadette O. ;
Burgess, Sarah L. ;
Ament, Zsuzsanna ;
Gilbert-Kawai, Edward T. ;
Vercueil, Andre ;
Landis, Blaine D. ;
Mitchell, Kay ;
Mythen, Monty G. ;
Branco, Cristina ;
Johnson, Randall S. ;
Feelisch, Martin ;
Montgomery, Hugh E. ;
Griffin, Julian L. ;
Grocott, Michael P. W. ;
Gnaiger, Erich ;
Martin, Daniel S. ;
Murray, Andrew J. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (24) :6382-6387