Literature DB >> 3685654

Exercise-induced changes in functional residual capacity.

M T Sharratt1, K G Henke, E A Aaron, D F Pegelow, J A Dempsey.   

Abstract

We used a helium-rebreathe technique in nine healthy subjects to determine the effects of exercise intensity and duration on end-expiratory lung volume (EELV). The rebreathe functional residual capacity (FRC) technique was shown: (a) to be similar to that measured in the body plethysmograph, at rest; (b) to agree closely with volitionally induced changes in EELV as determined by inductance plethysmography, at rest; (c) to be reproducible within subjects between trials conducted at rest or exercise on different days (r = 0.96, coefficient of variation +/- 3%); (d) to correlate significantly with coincident changes in end-expiratory esophageal pressure from rest to exercise, with increasing exercise intensity and over time at a constant exercise load. Exercise-induced reductions in EELV occurred in all subjects, averaging 0.3 L (-0.1 to -0.7 L) in light exercise and 0.79 L (-0.5 to -1.2 L) in heavy or maximum exercise. This reduction in EELV accounted for slightly more than one-half of the increase in VT during light exercise and slightly less than one-half of the increased VT in heavy exercise. In heavy prolonged exercise lasting 8-15 min, EELV fell in the initial 2 min and was either sustained at this reduced level or fell further with exercise duration to exhaustion. We found that FRC was reduced even in very light exercise when changes in TE and VE from rest were minimal; further reductions in EELV occurred as end-inspiratory lung volume increased and expiratory time shortened with increasing exercise intensity and duration. Based on these types of changes we speculate that active expiration during exercise in humans may be controlled by a combination of locomotor-related feed-forward and lung volume related feed-back mechanisms.

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Year:  1987        PMID: 3685654     DOI: 10.1016/0034-5687(87)90013-2

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


  14 in total

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2.  The effect of supine exercise on the distribution of regional pulmonary blood flow measured using proton MRI.

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3.  Contribution of central and reflex nervous activity to the rapid increase in pulmonary ventilation at the start of muscular exercise in man.

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Journal:  Eur J Appl Physiol Occup Physiol       Date:  1989

4.  Operating lung volumes are affected by exercise mode but not trunk and hip angle during maximal exercise.

Authors:  Joseph W Duke; Jonathon L Stickford; Joshua C Weavil; Robert F Chapman; Joel M Stager; Timothy D Mickleborough
Journal:  Eur J Appl Physiol       Date:  2014-08-02       Impact factor: 3.078

5.  Physiological mechanisms of dyspnea during exercise with external thoracic restriction: role of increased neural respiratory drive.

Authors:  Cassandra T Mendonca; Michele R Schaeffer; Patrick Riley; Dennis Jensen
Journal:  J Appl Physiol (1985)       Date:  2013-12-19

6.  Acute effects of repeated cycling sprints in hypoxia induced by voluntary hypoventilation.

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Review 7.  Evolution and Functional Differentiation of the Diaphragm Muscle of Mammals.

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8.  Respiratory kinematics by optoelectronic plethysmography during exercise in men and women.

Authors:  Ioannis Vogiatzis; Andrea Aliverti; Spyretta Golemati; Olga Georgiadou; Antonella Lomauro; Epaminondas Kosmas; Emmanouil Kastanakis; Charis Roussos
Journal:  Eur J Appl Physiol       Date:  2004-12-01       Impact factor: 3.078

9.  Breathing during prolonged exercise in humans.

Authors:  M C Kearon; E Summers; N L Jones; E J Campbell; K J Killian
Journal:  J Physiol       Date:  1991-10       Impact factor: 5.182

10.  Respiratory Effects of Thoracic Load Carriage Exercise and Inspiratory Muscle Training as a Strategy to Optimize Respiratory Muscle Performance with Load Carriage.

Authors:  Ren-Jay Shei; Robert F Chapman; Allison H Gruber; Timothy D Mickleborough
Journal:  Springer Sci Rev       Date:  2017-12-12
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