Validation of a System Using Aerosol Glycerine to Detect and Localize Intraoperatively Pulmonary Air Leaks (CT0136)
Study Overview
Status
Status
Conditions
Conditions
Intervention / Treatment
Intervention / Treatment
Study Type
Study Type
Enrollment (Estimated)
Enrollment
Phase
Phase
- Not Applicable
Contacts and Locations
Study Contact
Study Contact
- Name: Adeline Jouquan, MSc
- Phone Number: 26214 514-890-8000
- Email: adeline.jouquan.chum@ssss.gouv.qc.ca
Study Contact Backup
- Name: Moishe Liberman, MD
- Phone Number: 26832 514-890-8000
- Email: moishe.liberman@umontreal.ca
Study Locations
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-
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Montreal, Canada, H2X 0A9
- Recruiting
- CHUM
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Contact:
- Moishe Liberman, MD
- Phone Number: 26832 514-890-8000
- Email: moishe.liberman@umontreal.ca
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Participation Criteria
Eligibility Criteria
Eligibility Criteria
Ages Eligible for Study
- Adult
- Older Adult
Accepts Healthy Volunteers
Description
Inclusion Criteria:
- Patients undergoing lung transplant surgery
- Organ donor ineligible to donate lungs
Exclusion Criteria:
- Healthy individuals
Study Plan
How is the study designed?
Design Details
- Primary Purpose: Diagnostic
- Allocation: N/A
- Interventional Model: Single Group Assignment
- Masking: None (Open Label)
Number of Arms
Arms and Interventions
Participant Group / ArmParticipant Group / Arm |
Intervention / TreatmentIntervention / Treatment |
|---|---|
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Experimental: Air Leaks
Lungs from patients undergoing lung transplantation after their removal from the recipient patient with previous informed consent signed before transplantation will be obtained.
To establish a standard protocol to use our system we will use a dark box to validate that our system is able to localize the air leaks and to establish the best way to use the system.
A one centimeter leak will be created on the lung with a scalpel.
A laparoscope will be introduced via a trocar in the dark box and the surgeon will be asked to localize the leaks.
The detection will be recorded via the laparoscope.
The goal will be to perform a standardized protocol to use the system smoothly and efficiently on ex-vivo human lungs.
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A range of different leak will be done with different needle sizes on the lung.
Perform localization on staple lines used surgically during pulmonary surgeries, as they are known to not consistently give an airtight closure.
The lung will be put in the ex-vivo model and ask for a surgeon to localize the leaks with our system.
The needle incisions will be repeat on another lung and ask the same surgeon to localize the leaks with the submersion test.
To perform the submersion test the surgeon will have to submerge the lung in saline solution and to check the presence of air bubbles.
The lung is inflated to pressures of 20 to 40 cm H209.
The precision of both systems will be compared by the minimal incision the minimal incision the surgeon was able to localize.
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What is the study measuring?
Primary Outcome Measures
Primary Outcome Measures
Outcome Measure |
Measure Description |
Time Frame |
|---|---|---|
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Localization efficacy
Time Frame: 48 months
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Puncture the lungs to achieve an average size air leak (1-2 cm) and ask the surgeon to identify the airleak with the localization system.
Register a success if the surgeon has properly localized the air leak and a failure if the surgeon has failed to localize the air leak.
Destinguish the failures in false positive (Air leak detected in a non leaking area of the lung) and false negative (Air leak not detected when present).
Compare that efficacy rate to the efficacy of a similar experiement done with the submersion technique.
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48 months
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Secondary Outcome Measures
Secondary Outcome Measures
Outcome Measure |
Measure Description |
Time Frame |
|---|---|---|
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Duration of localization
Time Frame: 48 months
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Mesure the time required for the surgeon to localize the air leak area by the surgeon.
Compare that time to the submertion test localization.
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48 months
|
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Minimal leak localizable
Time Frame: 48 months
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Puncture the lungs with different needle sizes and ask a surgeon to localize the air leaks on the lung.
Record the smallest hole the surgeon was able to localize with our system.
Then, compare the minimal leak localizable with our system to the minimal leak localizable with the submersion test.
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48 months
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Staple lines airtightness
Time Frame: 48 months
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Staple lines are known to not consistently give an airtight closure.
But the manufacturers of those staple lines do not know why they are failing.
Prove that the system can detect if the staple line is airtight or not, which could be useful for those manufacturers as well as for the clinicians.
As leaks won't be created on every staple line, confirm that there is a leak by creating bubbles with saline at the staple line on the ex-vivo lung.
Ask a surgeon to give the outcome of the airtightness of the staple line (success or failure) and then, compare the outcome to what we obtained with the localisation system.
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48 months
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Collaborators and Investigators
Sponsor
Sponsor
Study record dates
Study Major Dates
Study Start (Actual)
Study Start
Primary Completion (Estimated)
Primary Completion
Study Completion (Estimated)
Study Completion
Study Registration Dates
First Submitted
First Submitted
First Submitted That Met QC Criteria
First Submitted That Met QC Criteria
First Posted (Actual)
First Posted
Study Record Updates
Last Update Posted (Actual)
Last Update Posted
Last Update Submitted That Met QC Criteria
Last Update Submitted That Met QC Criteria
Last Verified
Last Verified
More Information
Terms related to this study
Additional Relevant MeSH Terms
Other Study ID Numbers
Other Study ID Numbers
- 2024-11574
Drug and device information, study documents
Studies a U.S. FDA-regulated drug product
Studies a U.S. FDA-regulated device product
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