Respiratory Muscle Endurance in Obesity Hypoventilation Syndrome
Elif Sena Dusgun1, Goksen Kuran Aslan2, Ebru Seker Abanoz3
1Fenerbahce University, Vocational School of Health Sciences, Department of Physiotherapy, Istanbul, Turkey.
Background:
An increase in respiratory work load and resistance to respiration cause a decrease in respiratory muscle endurance (RME) in patients with obesity hypoventilation syndrome (OHS). We aimed to evaluate and compare RME in subjects with OHS and a control group using an incremental load test and compare the RME of subjects with OHS in whom noninvasive ventilation (NIV) was and was not used.
Methods:
Forty subjects with OHS (divided according to body mass index [BMI] as group I: 30-40 kg/m2; and group II: ≥ 40 kg/m2) and 20 subjects with obesity (control group: 30-40 kg/m2) were included in the study. RME was evaluated using the incremental load test, and respiratory muscle strength (RMS) was evaluated using mouth pressure measurements. The 6-min walk test, Epworth Sleepiness Scale (ESS), Pittsburgh Sleep Quality Index (PSQI), Fatigue Severity Scale (FSS), EQ-5D Health-Related Quality of Life Questionnaire (EQ-5D), and the Obesity and Weight-Loss Quality of Life Instrument (OWLQOL) were performed.
Results:
RME and RMS (%) in group I were lower than the control group (P = .001, P = .005, and P = .001, respectively). No significant difference was found between the 3 groups in terms of 6-min walk distance (6MWD) percentage predicted values (P = .98). RME in the NIV user group was higher than the non-user group (P = .006). ESS, total PSQI, and FSS scores in the control group were less than group I (P = .01, P = .009, and P = .005, respectively) and group II (P = .01, P < .001, and P < .001, respectively). The EQ-5D scores of the control group were higher than group II only (P = .005 and P = .005, respectively). There were no differences in OWLQOL between the groups (P = .053).
Conclusions:
RME was low in subjects with OHS but higher in those who used NIV. The incremental load test could be performed easily and safely in a clinic setting.
More Related Videos
Related Concept Videos
Hyperpnea and Hyperventilation
Physical Assessment of the Respiratory Tract II: Inspection
Chest Configuration
The chest configuration...
Respiratory Capacities
One key metric is the Inspiratory Capacity (IC), which represents the maximum amount of air that can be inhaled with full effort. IC is calculated by summing the tidal volume and inspiratory reserve volume, typically ranging from 2.4 to 3.6 liters.
The Functional Residual Capacity (FRC) represents the air in the...
Alterations in Respiration II
In Biot's breathing, the respiratory rate and depth are irregular, alternating between periods of deep gasping and apnea. Common causes...
Acute Respiratory Failure-II
The underlying physiological abnormalities that contribute to hypoxemic respiratory failure include:
Acute Respiratory Failure-III


