CClinicalTrials.gg
RecruitingNCT06053164Updated Jul 9, 2026

Ambulatory Oxygen Therapy for Individuals With Mild-to-moderate Interstitial Lung Disease

A Phase 2 interventional study of Exertional Oxygen and Education and Support in Fibrotic Interstitial Lung Disease, sponsored by University of Alberta. Recruiting at 1 site in Canada. Open to participants aged 18 Years to 85 Years. Per ClinicalTrials.gov, last updated 2026-07-09.

Sponsored by University of Alberta · Phase 2, Interventional, and Treatment

From the registry’s dates

  • Started Jul 2025; still recruiting 1 year 3 months later.
Phase
Phase 2
Study type
Interventional
Enrollment
60
Allocation
Randomized
Ages
18 Years to 85 Years
Sex
All
01

Study summary

The investigators plan to conduct a study to find out if giving portable oxygen therapy (during physical activity) to patients with interstitial lung disease will improve quality of life, exercise tolerance, shortness of breath, and blood vessel function. Oxygen will be provided for a period of 8 weeks. Additionally, the investigators plan to investigate if it is helpful to deliver individualized support when providing oxygen therapy, through check-in phone calls with a respiratory therapist and by providing additional educational material.

Read the detailed description

Brief Summary:

The investigators plan to conduct a study to find out if giving portable oxygen therapy (during physical activity) to patients with interstitial lung disease will improve quality of life, exercise tolerance, shortness of breath, and blood vessel function. Oxygen will be provided for a period of 8 weeks. Additionally, the investigators plan to investigate if it is helpful to deliver individualized support when providing oxygen therapy, through check-in phone calls with a respiratory therapist and by providing additional educational material.

Detailed Description:

BACKGROUND

Interstitial lung disease (ILD) is comprised of a group of pulmonary diseases that are characterized by inflammation and/or lung parenchymal fibrosis. Individuals with ILD may be normoxic at rest; however, underlying impairments in gas exchange can contribute to a reduction in oxygen saturation (SpO2) during exertion. Hypoxemia can cause inflammation and cardiovascular dysfunction, which could lead to cardiac events. A recent study found that 78% of ILD patients had cardiovascular comorbidity, which was predictive of death within this ILD cohort.

Oxygen therapy is used in patients with advanced lung disease with resting hypoxemia; however, there is limited evidence regarding its clinical efficacy. Furthermore, there is little support to describe the benefit of ambulatory oxygen therapy in individuals with lung disease who are normoxemic at rest but become hypoxemic with exertion. Accordingly, thresholds for the prescription of oxygen therapy vary between (and within) health districts and geographical regions, and individuals who might benefit from supplemental oxygen typically do not qualify for funding of oxygen therapy under unclear guidelines. Furthermore, data from studies in patients with chronic obstructive pulmonary disease (COPD) are often extrapolated for use in guiding oxygen therapy in patients with ILD, which is likely inappropriate considering recent research demonstrated that individuals with fibrotic ILD experience greater hypoxemia than those with COPD during the 6-minute walk test (6MWT).

Oxygen therapy may be beneficial in reducing inflammation, oxidative stress, and pulmonary artery pressure, all of which are elevated in ILD. Furthermore, a reduction in dyspnea during exercise with exertional oxygen therapy might increase daily physical activity, exercise tolerance, and reduce overall sedentary time, which would have a positive effect on vascular function. These postulated outcomes, however, are confounded by various practical, psychological, and social challenges associated with use of an oxygen concentrator, as well as challenges with proper titration of oxygen levels (accurately targeting appropriate SpO2) in relation to exertional intensity. Paradoxically, if the flow of oxygen is too high, activation of inflammatory and oxidative pathways may inhibit the benefits related to the alleviation of hypoxemia. Thus, integration of patient-specific disease support tools is essential when initiating oxygen therapy to ensure appropriate oxygenation during exertion.

OBJECTIVE To assess the feasibility of oxygen therapy, education, and support for individuals with fibrotic interstitial lung disease and exertional hypoxemia. As a secondary objective, the effects of exertional oxygen therapy and support on physical activity, vascular function, and health-related quality of life in individuals with fibrotic interstitial lung disease will be investigated.

PRIMARY AND SECONDARY ENDPOINTS

Health related quality of life as assessed by the EQ-5D-5L and the K-BILD Exercise tolerance, assessed by 6MWD while breathing room air Daily physical activity and sedentary time as assessed by a remote monitor. Dyspnea, as measured by the Dyspnea 12 questionnaire Cough using the visual analog scale (VAS) and cough score (measured by Leicester Cough Questionnaire; LCQ) Vascular function, measured by flow mediated dilation (FMD) of the brachial artery Pulmonary artery systolic pressure (PASP) measured by cardiac echocardiography Cardiac systolic and diastolic function assessed by cardiac echocardiography Systemic inflammation

STUDY DESIGN

Single-blind (assessment team) open-label randomized control

TRIAL TREATMENT

Participants will be randomized into one of three arms:

Control:

(Arm 1) 8 Weeks of usual care (n=20)

Treatment:

(Arm 2) 8 Weeks of supplemental oxygen(n=20)

(Arm 3) 8 Weeks of supplemental oxygen plus educational materials and scheduled support (n=20)

All: 2-week baseline prior to intervention and 2-week washout post-intervention to document carry-over effect of intervention.

DURATION

Seven sessions will be completed over a 13-week period.

TIMELINE

Visit 1) Participant enrollment, medical history, standard pulmonary function test (PFT) and 6-minute walk test (6MWT); followed by 1-week for collection of baseline physical activity and SpO2. During this visit, participants will be provided a wrist-worn activity monitor and a finger-worn pulse oximeter. This visit will take approximately 3 hours.

Visit 2) Doppler measurements of systemic vascular function (flow mediated dilation) will be measured at rest while breathing room air. A small sample of venous blood will be taken to analyze inflammatory levels and reactive oxygen species. Participants will fill out questionnaires relating to health-related quality of life, dyspnea, and cough. Finally, participants will perform tests of lung diffusing capacity for carbon monoxide (DLCO) under three different conditions: seated, supine, and during exercise at 40W on a cycle ergometer.

Visit 3) One to three days after Visit 2, participants will return for the second day of pre-intervention baseline testing. An echocardiographic exam will be completed to determine pulmonary artery systolic pressure as well as systolic and diastolic function in the left and right ventricles of the heart. To enhance the Doppler signal during the cardiac ultrasound, agitated saline contrast will be used. Two 6-minute walk tests will then be completed, separated by half an hour. This visit will take approximately 2 hours. Following this day, participants will be randomized into one of three arms for an 8-week intervention.

Eight-week intervention, randomized into one of:

  • No oxygen
  • Exertional oxygen
  • Exertional oxygen + additional support

Visit 4) Repeat Day 2 protocol. Visit 5) Repeat Day 3 protocol.

Two-week washout period

Visit 6) Repeat Day 2 protocol. Visit 7) Repeat Day 3 protocol.

The total duration of time spent for each participant will be approximately 12 hours.

02

Conditions studied

  • Fibrotic Interstitial Lung Disease

Keywords

  • Exertional Oxygen
  • Ambulatory Oxygen
  • Interstitial Lung Disease
03

In context

Lung Diseases, Interstitial

646 studies on the registry are indexed under Lung Diseases, Interstitial; 237 are open to participants now.

This study's planned enrollment of 60 is above the median of 54 across 355 interventional studies indexed under Lung Diseases, Interstitial.

Browse Lung Diseases, Interstitial studies →

Lead sponsor

University of Alberta is the lead sponsor of 800 studies on the registry; 168 are open to participants now.

Counted across the registry records on this site, refreshed daily.

04

Who can participate

Ages eligible
18 Years to 85 Years
Sexes eligible
All
Accepts healthy volunteers
No

Inclusion criteria

  • Individuals with fibrotic ILD (all sub-groups of ILD) who have normal oxygen saturation at rest (SpO2 > 90%) but develop exertional hypoxemia as demonstrated by a SpO2 = 80-89% with activity (measured during 6MWT).

Exclusion criteria

Exclusion Criteria:

  • Use of home oxygen therapy within the previous year for the management of ILD, co-morbid conditions that may require oxygen therapy (such as COPD, cardiovascular disease, or other illnesses), or individuals that require the use of non-invasive ventilation. Additionally, individuals with significant cardiovascular, metabolic, neuromuscular or any other disease that could contribute to dyspnea or abnormal cardiopulmonary responses to exercise will be excluded. Individuals with musculoskeletal injuries that prevent them from completing cycle ergometry exercise trials and ambulation will also be excluded. Individuals with peripheral vascular disease will be excluded from measurement of vascular function (flow mediated dilation).
05

Study design

Phase
Phase 2
Primary purpose
Treatment
Allocation
Randomized
Intervention model
Parallel assignment
Masking
Double (Investigator, Outcomes assessor)
Enrollment
60 participants (estimated)

Study arms

  • No intervention
    Arm 1 - Usual Care

    8 weeks of usual care with no supplemental oxygen provided

  • Experimental
    Arm 2 - Exertional Oxygen

    8 weeks of portable oxygen use (from a concentrator) during exertion

    Drug: Exertional Oxygen

  • Experimental
    Arm 3 - Exertional Oxygen + Support

    8 weeks of portable oxygen use (from a concentrator) during exertion, plus additional phone calls with a respiratory educator and educational material

    Drug: Exertional Oxygen · Behavioral: Education and Support

Interventions

  • DrugExertional Oxygen

    Use of a portable oxygen concentrator for exertional activities lasting \>2 minutes

    Also known as: Supplemental oxygen, ambulatory oxygen

  • BehavioralEducation and Support

    Participants will receive disease-specific educational material (Living Well with Pulmonary Fibrosis: Oxygen), and will have scheduled phone appointments with a certified respiratory educator after 1, 3, and 5 weeks of oxygen therapy in order to address individual barriers to oxygen use and facilitate the optimal use of portable oxygen.

06

What researchers measure

Primary outcomes

  1. Feasibility of investigation

    Number of patients recruited and completing the protocol in each arm

    Time frame: 2 years

  2. Exercise tolerance

    6 minute walk distance

    Time frame: Before and immediately after the intervention

  3. Health Related Quality of Life, (EuroQol-5 Dimension-5 Level; EQ-5D-5L)

    Questionnaire for Health-Related Quality of Life. Possible Range = 5-25; 5 = 11111 (no problems on any dimension); 25 = 55555 (extreme problems on all dimensions)

    Time frame: Before and immediately after the intervention

  4. Health Related Quality of Life, (King's Brief Interstitial Lung Disease Questionnaire; KBILD)

    Health status questionnaire. Domain and total score ranges are 0-100; 100 represents best health status

    Time frame: Before and immediately after the intervention

Secondary outcomes

  1. Dyspnea (Dyspnea-12 Questionnaire)

    Range from 0-36, 0 represents no breathlessness and 36 represents maximal severity

    Time frame: Before and immediately after the intervention

  2. Vascular function

    Flow-mediated dilation

    Time frame: Before and immediately after the intervention

  3. Cough (Leicester cough questionnaire; LCQ)

    Quality of life measure of chronic cough. Range from 3-21, lower score indicating greater impairment of health status due to chronic cough

    Time frame: Before and immediately after the intervention

  4. Pulmonary Artery Pressure

    Echocardiography-derived pulmonary artery systolic pressure

    Time frame: Before and immediately after the intervention

  5. Cardiac Output

    Assessed by echocardiography (L/min)

    Time frame: Before and immediately after the intervention

  6. Systemic Inflammation

    C-Reactive Protein (CRP, venous blood, mg/L)

    Time frame: Before and immediately after the intervention

07

Study locations

1 of 1 sites recruiting
08

References and documents

Publications

  • Khor YH, Holland AE, Goh NSL, Miller BR, Vlahos R, Bozinovski S, Lahham A, Glaspole I, McDonald CF. Ambulatory Oxygen in Fibrotic Interstitial Lung Disease: A Pilot, Randomized, Triple-Blinded, Sham-Controlled Trial. Chest. 2020 Jul;158(1):234-244. doi: 10.1016/j.chest.2020.01.049. Epub 2020 Feb 28. PubMed 32113924 ↗
  • Johannson KA, Pendharkar SR, Mathison K, Fell CD, Guenette JA, Kalluri M, Kolb M, Ryerson CJ. Supplemental Oxygen in Interstitial Lung Disease: An Art in Need of Science. Ann Am Thorac Soc. 2017 Sep;14(9):1373-1377. doi: 10.1513/AnnalsATS.201702-137OI. PubMed 28644693 ↗
  • Visca D, Mori L, Tsipouri V, Fleming S, Firouzi A, Bonini M, Pavitt MJ, Alfieri V, Canu S, Bonifazi M, Boccabella C, De Lauretis A, Stock CJW, Saunders P, Montgomery A, Hogben C, Stockford A, Pittet M, Brown J, Chua F, George PM, Molyneaux PL, Margaritopoulos GA, Kokosi M, Kouranos V, Russell AM, Birring SS, Chetta A, Maher TM, Cullinan P, Hopkinson NS, Banya W, Whitty JA, Adamali H, Spencer LG, Farquhar M, Sestini P, Wells AU, Renzoni EA. Effect of ambulatory oxygen on quality of life for patients with fibrotic lung disease (AmbOx): a prospective, open-label, mixed-method, crossover randomised controlled trial. Lancet Respir Med. 2018 Oct;6(10):759-770. doi: 10.1016/S2213-2600(18)30289-3. Epub 2018 Aug 28. PubMed 30170904 ↗

Individual participant data

Plan to share: No

09

Updates

Tracking since Sep 25, 2026
No changes since tracking began. The registry record was last updated on Jul 9, 2026, before this site started recording changes on Sep 25, 2026. Its history is on ClinicalTrials.gov ↗
10

Registry details

Key details

Study ID
NCT06053164
Lead sponsor
University of Alberta
Collaborators
Alberta Boehringer Ingelheim Collaboration
Responsible party
Sponsor
First posted
Sep 25, 2023
Start date
Jul 1, 2025
Primary completion
Sep 1, 2026 (estimated)
Completion
Sep 1, 2026 (estimated)
Last update
Jul 9, 2026

Study contacts

Matt Rieger, PhD
Contact
mrieger@ualberta.ca
7804928027
Desi Fuhr, MSc
Contact
fuhr@ualberta.ca
780.492.1121
Mike Stickland
principal investigator · University of Alberta

Oversight

Data monitoring committee
Yes
FDA-regulated drug
No
FDA-regulated device
No
View the source record on ClinicalTrials.gov ↗

Interested in this study?

Eligibility is decided by the study team. Share this record with your doctor or contact the team directly.

Contact study team

Follow this study

Get an email when the registry record changes — status, dates, results — or when someone posts here.

Sign in to follow

Discussion

Questions and observations about this study, from anyone following it. Not medical advice, and not a channel to the study team — their contact details are on the registry record.

Sign in to join the discussion. Reading takes no account; posting does. You choose a display name, and a pseudonym is the default.

Nothing here yet. If you are running this trial, taking part in it, or weighing whether to, this is the place to say so.

Start the discussion