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NCT Number: NCT05854654

Air Leak Detection and Treatment

Developing a methodology to detect, quantify and treat air leaks intraoperatively using a bio-adhesive, to thereby reduce postoperative surgical complications, morbidity, and length of stay for patients undergoing pulmonary resection.

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Key information

Conditions

Age range

18 year and older

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

CHUM

Montreal, Quebec, H2X 0A9, Canada

Location status: Recruiting

Location contact

Moishe Liberman, MD

CONTACT

[email protected]

514-890-8000 ext. 26832

About this study

This study aims at establishing a standardized, stable and effective ex-vivo human lung model, applying some changes to settings used in our previous studies both in animal and human models performed in this institution. Multiple procedures will be performed to each model in order to accomplish the objectives of the study. Tissue samples will be taken from the models and images will be performed. This will allow us to determine which configuration is the optimal for obtaining the more effective and stable models that could offer the best quality specimens as well. Lungs from patients undergoing lung transplantation after their removal from the recipient patient with previous informed consent signed before transplantation will be obtained. The organs will be placed in an acrylic box and will be kept at a temperature of 37 Celsius degrees. The lungs will be mechanically ventilated connected by an endotracheal tube size 8 inserted in the bronchus with the balloon inflated and a silk suture providing an hermetic closure proximal to the balloon. Alternatively, and as performed in one of our previous studies, according to the bronchial stump length and diameter, a Penrose drain (1 inch) will be sewn to the mainstem bronchus to simulate the trachea and allow for an endotracheal tube (ET), size 9.0 Fr, to be inserted into and secured with the Penrose drain. Following, a Sheridan® Sher-I-SWIV/FO ™ Double Swivel Connector will be inserted to the tube to allow performing endoscopic and RAB procedures while maintaining ventilation. The mechanical ventilator will be set using positive pressure and high tidal volume to prevent the lungs from collapsing.

A cannula will be placed in the pulmonary artery and secured with a purse-string suture. The lung will be perfused with 37°C solution using a roller pump (Terumo Sarns, Tokyo, Japan) with a flow rate (usually ~0.2 L/min) was adjusted to maintain a pulmonary arterial pressure of 10-12 mmHg to prevent hydrostatic pulmonary edema. The pulmonary veins will not be cannulated, allowing the perfusate to drain passively from the pulmonary veins into the reservoir at the base of the acrylic chamber from where it will be recycled through the pump. Temperatures of the lung tissue, ambient, container, and intravascular will be monitored by thermocouples. The pulmonary arterial pressure will be measured via a pulmonary arterial catheter (Cook, Bloomington, IN) placed in the circuit at the level of the left atrium. Once the model reaches a stable temperature 36°C, the procedures will begin.

This setting will allow us to perform several different endoscopic and RAB procedures in emulated physiologic conditions to complete the study.

In order to reproduce intraoperative air leaks, various manipulations, including stapling and creating lacerations of different depts and lengths on the parenchyma, will be performed on deflated lungs. Following the introduction of a leak, condensed gas will be pushed through the airway to precisely localize the defect. The sealant prepared at room temperature will then be applied in a thin layer to cover the defect and will be left to dry for 5 minutes. The seal will be tested using the condensed gas with the lung still deflated as well as with the water immersion technique after inflating the lung.

The leaks will be quantified using the Thopaz automated drainage system by Medela.

In order to test the long term stability of the matrix, the lung will be ventilated for X minutes. Air leak testing will be repeated at specific intervals during this time.

After all the procedures are finished and specimens obtained, all the lungs will be sent to the CHUM and will be processed following the standard hospital protocol for transplants recipients.

Who can participate

Healthy volunteers accepted: No

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • Patients undergoing lung transplant surgery
  • Organ donor ineligible to donate lungs

Exclusion criteria

  • Healthy individuals

Treatment and study plan

Air Leaks

Diagnostic Test

The organs will be placed in an acrylic box and will be kept at a temperature of 37 Celsius degrees. The lungs will be mechanically ventilated connected by an endotracheal tube size 8 inserted in the bronchus with the balloon inflated and a silk suture providing an hermetic closure proximal to the balloon.

This setting will allow us to perform several different endoscopic and RAB procedures in emulated physiologic conditions to complete the study.

Primary outcomes

  1. Detection and localisation of air leaks in deflated lungs using condensed air through the airway. Changing the size (ml) of air leaks by 80% by the use of a novel bio sealant directly on the lung parenchyma.

    Time frame: 48 months

    The evaluation of different techniques for the detection and localisation of air leaks in deflated lungs.

    The application of the novel bio sealant on staple lines or localized lacerations on the lung parenchyma from instrumentation or other will result in a change in the volume (ml) of air leaks.

Secondary outcomes

  1. Establishing a standardized measure to localize air leaks in a physiological setting.

    Time frame: 48 months

    Based on preliminary findings, a standardized methodology for the localization will be established

  2. Quantify and treat air leaks in a physiological setting

    Time frame: 48 months

    Time to seal air leaks Quantity of air leaks Seal percentage change in output of leak (measured in mL/min)

  3. Quantify and treat air leaks in a physiological setting

    Time frame: 48 months

    Comparison in effectiveness of varying sealing technologies Optimal methods for application of sealant Sealant loss (% of total applied)

Study contacts

Contact information is provided by the study sponsor or research team.

Moishe Liberman, MD

CONTACT

[email protected]

514-890-8000 ext. 26832

Sponsors and collaborators

Lead sponsor

Centre hospitalier de l'Université de Montréal (CHUM)

Other

Registry information

Official study title

Defining Novel Strategies for the Diagnosis and Treatment of Intraoperative Air Leaks: An Ex-Vivo Human Lung Model Study

Acronym: CT0128

Important dates

Study start
2023
Primary completion
2027
Study completion
2027
First posted
May 11, 2023
Registry last updated
Mar 18, 2026

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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