Mechanisms of Exertional Dyspnea in Fibrotic Interstitial Lung Disease
NCT ID: NCT01781793
Last Updated: 2016-10-12
Study Results
The study team has not published outcome measurements, participant flow, or safety data for this trial yet. Check back later for updates.
Basic Information
Get a concise snapshot of the trial, including recruitment status, study phase, enrollment targets, and key timeline milestones.
COMPLETED
NA
20 participants
INTERVENTIONAL
2013-09-30
2016-04-30
Brief Summary
Review the sponsor-provided synopsis that highlights what the study is about and why it is being conducted.
The central hypothesis is that dyspnea in fibrotic ILD is primarily a result of an imbalance between the drive to breathe and the tidal volume response of the respiratory system (i.e., neuromechanical uncoupling) and that experimental reduction of neuromechanical uncoupling via hyperoxic breathing will reduce exertional dyspnea and improve exercise endurance.
Related Clinical Trials
Explore similar clinical trials based on study characteristics and research focus.
Pathophysiological Mechanisms of Dyspnea and Activity-limitation in Mild Chronic Obstructive Pulmonary Disease (COPD)
NCT00975403
The Impact of Pulmonary Rehabilitation on Dyspnea in Chronic Obstructive Pulmonary Disease
NCT01513616
The Effect of Treatment of Emphysema With Endobronchial Valves on the Diaphragm Mobility
NCT06163131
Does Pulmonary Rehabilitation Improve Breathing of COPD Patients
NCT01815970
Cardiopulmonary Exercise Testing in Interstitial Lung Disease
NCT02636452
Detailed Description
Dive into the extended narrative that explains the scientific background, objectives, and procedures in greater depth.
The research question is twofold: (Aim 1) To determine the physiological mechanisms of exertional dyspnea in patients with fibrotic ILD; (Aim 2) To determine the effects of hyperoxia on exertional dyspnea and exercise endurance in patients with fibrotic ILD.
Experimental Overview: Participants with fibrotic ILD and control participants will report to the exercise laboratory on four separate occasions separated by a minimum of 48 hours between visits. On visit 1, participants and control participants will complete medical history screening, chronic activity-related dyspnea questionnaires, anthropometric measurements, pulmonary function assessment, and a symptom limited incremental cycle exercise test for familiarization purposes. On visit 2, participants and control participants will perform pulmonary function testing followed by another incremental cycle exercise test. Detailed physiological and sensory measurements will be obtained on both visits but the primary analysis will be based on visit 2 results. Data from visit 2 will address the Aim 1. Visits 3 and 4 will include pulmonary function testing followed by a constant-load cycle exercise test at 75% of peak incremental work rate while breathing, in randomized order, either room air or hyperoxia (60% oxygen). Participants and control participants breathing hyperoxia on visit 3 will breathe room air on visit 4 and vice versa while being blinded to the gas concentration. A multi-pair electrode catheter that combines two balloons will be inserted into the esophagus and near infrared spectroscopy will be used to measure tissue oxygenation on visits 2, 3 and 4. Data from visits 3 and 4 will address Aim 2.
Measurements:
* Pulmonary Function: simple spirometry, plethysmography, diffusing capacity, maximum respiratory pressures, static compliance and recoil pressure will be performed on visit 1. Pulmonary function testing on visits 2-4 will only include spirometry and plethysmography so that total lung capacity and vital capacity can be obtained for the determination of operating lung volumes.
* Dyspnea Evaluation: Dyspnea intensity and perceived leg discomfort will be evaluated at rest, every minute during exercise, and at peak exercise using the modified 10-point Borg scale on all testing visits. Upon exercise cessation, subjects will be asked to verbalize their main reason(s) for stopping exercise (i.e., breathing discomfort, leg discomfort, combination of breathing and legs, or some other reason) and to select qualitative descriptors of breathlessness using an established questionnaire.
* Cardio-respiratory Responses to Exercise: Standard cardio-respiratory measures, including minute ventilation, oxygen consumption (VO2), carbon dioxide production, partial pressure of end-tidal carbon dioxide, tidal volume (VT), and breathing frequency.
* Operating volumes will be derived from dynamic inspiratory capacity (IC) manoeuvres. Arterial oxygen saturation will be measured using pulse oximetry. Electrocardiography and blood pressure will be monitored for safety purposes.
* Respiratory Mechanics: Diaphragmatic electromyography (EMGdi) will be measured using a multi-pair electrode catheter that combines two balloons for measuring esophageal and gastric pressures. The ratio of EMGdi to EMGdimax will be used as an index of neural respiratory drive. The ratio between VT and vital capacity (VC) will be used to represent the mechanical response of the respiratory system. Normalizing for EMGdimax and VC allows the stimulus intensity to be standardized and compared across individuals. Thus neuromechanical uncoupling of the respiratory system will be determined as the ratio (or interaction) between neural drive and the mechanical response of the respiratory system (EMGdi/EMGdimax : VT/VC).
* The mechanical work of breathing (WOB) will be calculated as the area within ensemble averaged esophageal pressure-volume loops.
Statistical Analysis:
Aim 1: Exercise-response slopes (e.g., Borg/VO2) will be determined. Briefly, the investigators will obtain the slope from a plot of Borg vs. VO2 for each participant's and control participant's incremental exercise test performed on visit 2. The investigators will determine the bivariate association of Borg/VO2 slope with VO2 slopes of neuromechanical uncoupling, drive to breathe, and VT response using Spearman correlation coefficients. The investigators will then force all three predictor variables into a multivariate linear regression model with Borg/VO2 slope as the outcome variable in order to identify the independent association of neuromechanical uncoupling with exertional dyspnea. Variables will be transformed to approximate a normal distribution if necessary and predictor variables reaching statistical significance will be assessed for a linear relationship with the outcome variable.
Aim 2: The investigators will first use a paired t-test to identify changes in dyspnea and exercise time comparing room air breathing to hyperoxia during constant-load exercise tests on visits 3 and 4. Multivariate models will then be developed using the between-test difference in Borg dyspnea scale and exercise time for each individual as the outcome variables. Predictor variables will include the between-test difference in neuromechanical uncoupling and its individual components. Outcome and predictor variables for the dyspnea outcome will be based on the between-test difference of these variables at iso-time (i.e., the maximum time for which the patient exercised for both the room air and hyperoxia tests). Predictor variables for exercise time will be measured at the end of the test.
As exploratory analyses, the investigators will repeat the above multivariate linear regression analyses in the IPF subgroup, and the investigators will add a categorical ILD subgroup variable to these analyses in order to identify other inter-group differences. Additional adjustment for potential confounders (e.g., sex, body mass index, high resolution computed tomography fibrosis score) will be used in these exploratory analyses if the subgroup sample size is sufficient. A p value \< 0.05 will be considered significant for all analyses. Data analysis will be performed using Stata v11.2 (StataCorp, Texas, USA).
Conditions
See the medical conditions and disease areas that this research is targeting or investigating.
Study Design
Understand how the trial is structured, including allocation methods, masking strategies, primary purpose, and other design elements.
RANDOMIZED
CROSSOVER
SUPPORTIVE_CARE
SINGLE
Study Groups
Review each arm or cohort in the study, along with the interventions and objectives associated with them.
Fibrotic ILD Patients, Room Air
Fibrotic ILD patients will breathe room air (21% oxygen) during a constant work rate exercise test
Room air
Humidified room air (21% oxygen) will be inspired
Fibrotic ILD Patients, Hyperoxia
Fibrotic ILD patients will breathe hyperoxia (60% oxygen) during a constant work rate exercise test
Hyperoxia
60% oxygen will be inspired
Interventions
Learn about the drugs, procedures, or behavioral strategies being tested and how they are applied within this trial.
Room air
Humidified room air (21% oxygen) will be inspired
Hyperoxia
60% oxygen will be inspired
Eligibility Criteria
Check the participation requirements, including inclusion and exclusion rules, age limits, and whether healthy volunteers are accepted.
Inclusion Criteria
* Fibrosis on high resolution computed tomography (HRCT): honeycombing, reticulation, or traction bronchiectasis
* Oxygen saturation ≥ 92% by pulse oximetry at rest while breathing room air
Exclusion Criteria
* A significant lung disease other than fibrotic ILD that, based on clinical assessment, could impair your ability to exercise
* Significant emphysema
* Pulmonary hypertension (high blood pressure in your lungs' arteries)
* Prednisone (a corticosteroid medication) in excess of 10mg/day for at least two weeks within three months of the first study visit
* An ulcer or tumor in your esophagus, or a nasal septum deviation
* Had recent nasopharyngeal surgery
* A cardiac pacemaker
* Allergies to latex and sensitivities to local anaesthetics
* Current smokers or smoked more than 20 packs per year in the past
40 Years
80 Years
ALL
No
Sponsors
Meet the organizations funding or collaborating on the study and learn about their roles.
University of British Columbia
OTHER
Responsible Party
Identify the individual or organization who holds primary responsibility for the study information submitted to regulators.
Principal Investigators
Learn about the lead researchers overseeing the trial and their institutional affiliations.
Jordan A Guenette, PhD
Role: PRINCIPAL_INVESTIGATOR
UBC James Hogg Research Centre
Locations
Explore where the study is taking place and check the recruitment status at each participating site.
UBC James Hogg Research Centre, St. Paul's Hospital
Vancouver, British Columbia, Canada
Countries
Review the countries where the study has at least one active or historical site.
References
Explore related publications, articles, or registry entries linked to this study.
Schaeffer MR, Ryerson CJ, Ramsook AH, Molgat-Seon Y, Wilkie SS, Dhillon SS, Mitchell RA, Sheel AW, Khalil N, Camp PG, Guenette JA. Effects of hyperoxia on dyspnoea and exercise endurance in fibrotic interstitial lung disease. Eur Respir J. 2017 May 25;49(5):1602494. doi: 10.1183/13993003.02494-2016. Print 2017 May. No abstract available.
Other Identifiers
Review additional registry numbers or institutional identifiers associated with this trial.
H13-00059
Identifier Type: -
Identifier Source: org_study_id
More Related Trials
Additional clinical trials that may be relevant based on similarity analysis.