Literature DB >> 9128904

Ventilation during simulated altitude, normobaric hypoxia and normoxic hypobaria.

J A Loeppky1, M Icenogle, P Scotto, R Robergs, H Hinghofer-Szalkay, R C Roach.   

Abstract

To investigate the possible effect of hypobaria on ventilation (VE) at high altitude, we exposed nine men to three conditions for 10 h in a chamber on separate occasions at least 1 week apart. These three conditions were: altitude (PB = 432, FIO2 = 0.207), normobaric hypoxia (PB = 614, FIO2 = 0.142) and normoxic hypobaria (PB = 434, FIO2 = 0.296). In addition, post-test measurements were made 2 h after returning to ambient conditions at normobaric normoxia (PB = 636, FIO2 = 0.204). In the first hour of exposure VE was increased similarly by altitude and normobaric hypoxia. The was 38% above post-test values and end-tidal CO2 (PET(CO2) was lower by 4 mmHg. After 3, 6 and 9 h, the average VE in normobaric hypoxia was 26% higher than at altitude (p < 0.01), resulting primarily from a decline in VE at altitude. The difference between altitude and normobaric hypoxia was greatest at 3 h (+ 39%). In spite of the higher VE during normobaric hypoxia, the PET(CO2) was higher than at altitude. Changes in VE and PET(CO2) in normoxic hypobaria were minimal relative to normobaric normoxia post-test measurements. One possible explanation for the lower VE at altitude is that CO2 elimination is relatively less at altitude because of a reduction in inspired gas density compared to normobaric hypoxia; this may reduce the work of breathing or alveolar deadspace. The greater VE during the first hour at altitude, relative to subsequent measurements, may be related to the appearance of microbubbles in the pulmonary circulation acting to transiently worsen matching. Results indicate that hypobaria per se effects ventilation under altitude conditions.

Entities:  

Keywords:  NASA Discipline Environmental Health; Non-NASA Center

Mesh:

Substances:

Year:  1997        PMID: 9128904     DOI: 10.1016/s0034-5687(97)02523-1

Source DB:  PubMed          Journal:  Respir Physiol        ISSN: 0034-5687


  19 in total

1.  Comments on Point:Counterpoint: Hypobaric hypoxia induces/does not induce different responses from normobaric hypoxia.

Authors:  Olivier Girard; Michael S Koehle; Martin J MacInnis; Jordan A Guenette; Michael S Koehle; Samuel Verges; Thomas Rupp; Marc Jubeau; Stephane Perrey; Guillaume Y Millet; Robert F Chapman; Benjamin D Levine; Johnny Conkin; James H Wessel; Hugo Nespoulet; Bernard Wuyam; Renaud Tamisier; Samuel Verges; Patrick Levy; Darren P Casey; Bryan J Taylor; Eric M Snyder; Bruce D Johnson; Abigail S Laymon; Jonathon L Stickford; Joshua C Weavil; Jack A Loeppky; Matiram Pun; Kai Schommer; Peter Bartsch; Mary C Vagula; Charles F Nelatury
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2.  Acute high-altitude illness: a clinically orientated review.

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3.  Acute effects of normobaric hypoxia on hand-temperature responses during and after local cold stress.

Authors:  Michail E Keramidas; Roger Kölegård; Igor B Mekjavic; Ola Eiken
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5.  Multiple N-of-1 trials to investigate hypoxia therapy in Parkinson's disease: study rationale and protocol.

Authors:  Jules M Janssen Daalen; Marjan J Meinders; Federica Giardina; Kit C B Roes; Bas C Stunnenberg; Soania Mathur; Philip N Ainslie; Dick H J Thijssen; Bastiaan R Bloem
Journal:  BMC Neurol       Date:  2022-07-14       Impact factor: 2.903

6.  The physiological effects of hypobaric hypoxia versus normobaric hypoxia: a systematic review of crossover trials.

Authors:  Jonny Coppel; Philip Hennis; Edward Gilbert-Kawai; Michael Pw Grocott
Journal:  Extrem Physiol Med       Date:  2015-02-26

Review 7.  Hypoxic Hypoxia and Brain Function in Military Aviation: Basic Physiology and Applied Perspectives.

Authors:  David M Shaw; Gus Cabre; Nicholas Gant
Journal:  Front Physiol       Date:  2021-05-17       Impact factor: 4.566

8.  Prooxidant/Antioxidant Balance in Hypoxia: A Cross-Over Study on Normobaric vs. Hypobaric "Live High-Train Low".

Authors:  Tadej Debevec; Vincent Pialoux; Jonas Saugy; Laurent Schmitt; Roberto Cejuela; Pauline Mury; Sabine Ehrström; Raphael Faiss; Grégoire P Millet
Journal:  PLoS One       Date:  2015-09-14       Impact factor: 3.240

9.  Cycling performance decrement is greater in hypobaric versus normobaric hypoxia.

Authors:  Beth A Beidleman; Charles S Fulco; Janet E Staab; Sean P Andrew; Stephen R Muza
Journal:  Extrem Physiol Med       Date:  2014-04-28

10.  Same Performance Changes after Live High-Train Low in Normobaric vs. Hypobaric Hypoxia.

Authors:  Jonas J Saugy; Laurent Schmitt; Anna Hauser; Guillaume Constantin; Roberto Cejuela; Raphael Faiss; Jon P Wehrlin; Jérémie Rosset; Neil Robinson; Grégoire P Millet
Journal:  Front Physiol       Date:  2016-04-19       Impact factor: 4.566

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