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Respiratory Mechanics Measurement of Ventilated Patients Through Low-frequency Oscillometry Technique

Respiratory Mechanics Measurement of Ventilated Patients Through Low-frequency Oscillometry Technique, an Explorative Study

Status
Recruiting
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT06483529
Enrollment
21
Registered
2024-07-03
Start date
2023-09-18
Completion date
2024-12-31
Last updated
2024-07-03

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Ventilator Lung

Keywords

oscillometry, intensive care unit, intubated patients, compliance, resistance, impedance

Brief summary

Respiratory failure has historically been one of the most important causes for admittance of patients to the critical care unit. This problem was the most important reason during the COVID-19 pandemic. Following the evolution of the physiology of the lung has therefore been the number one concern during these challenging times in the intensive care unit (ICU). Respiratory oscillometry (RO) identifies the lung impedance by applying small pressure oscillations onto the breathing or ventilation. Information about the respiratory mechanics can be extracted out of this impedance, including the resistance (R) and compliance (C) of the lung. The VUB developed a robust, patient safe RO measurement protocol that delivers high quality measurements with the least possible interference with the patient's breathing/ventilation. The technique challenges current state-of-the-art techniques also aiming at identifying R and C of the respiratory system (not exclusively RO). The RO measurement protocol is in line with the technical standards of the ERS (European Respiratory Society) and has been successfully and safely tested on emulators and some parts on test subjects. The clinical investigation aims at a powered equivalence investigation between the RO measurement protocol and a standard of care dynamic compliance estimate on invasive ventilated patients. As secondary objectives, the feasibility of the RO techniques will be investigated during pressure support ventilation and the RO estimates will also be compared with other accepted respiratory mechanics estimation tools. To enable the investigation, a RO algorithm is developed, and a RO measurement extension is implemented in the DemcAir® ventilation system of Demcon. This was a fully tested ventilator that received a CE mark under the previous MDD regulation. However, Demcon, which produces ventilator parts for other commercial partners, removed the label to avoid competition with their partners. The ventilator will only execute the protocol on demand and save the data on an USB stick available in the ventilator. At any time, the RO measurement procedure can be stopped, and the ventilator will return to its initial ventilation. The USB stick is used to transport the data to a separate (VUB) laptop where the data processing is done.

Interventions

DIAGNOSTIC_TESTcompliance measurement

compliance can be measured by analyzing pressure volume curves generated through different methods

Sponsors

Universitair Ziekenhuis Brussel
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
SINGLE_GROUP
Primary purpose
DIAGNOSTIC
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Intervention model description

prospective equivalence study with a two-arm crossover design - explorative pilot study

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

* intubation * Controlled ventilation with an intention to continue controlled ventilation for the following 4 hours. * Richmond agitation sedation scale of -4 or less * Hemodynamically stable patient with either * unchanged vasopressor dose administration for at least 60 minutes before the start of the measurements * no vasopressor need and no vasopressor initiated within 60 minutes of measurements * No planned intervention in the coming 2 hours * Survival for at least 48 hours * Protective ventilation (inspired oxygen concentration≤60%, plateau pressure ≤30 cmH2O , driving pressure≤ 15cmH2O) * PEEP (Positive End Expiratory Pressure) ≤10

Exclusion criteria

* assist ventilation * Ventilator asynchronies * Intermittent spontaneous breathing * nitric oxide therapy * presence of an extra corporeal membrane oxygenation device * Ventilation is not possible within the lower and upper inflection point of the low flow pressure volume curve. * Unstable right heart failure * Unstable lung embolism * Standard of care without Sedline® or invasive arterial catheter * Do not reanimate code of 2, 3 or 4 * Subjects who are healthy, minors, pregnant women, patients in emergency situation * Outside the age range 18 to 84 years

Design outcomes

Primary

MeasureTime frameDescription
complianceTwice a day with at least 4hour interval, during 1 hour, compliance will be measured in every interventional action: ROELEC protocol, SOTA, dynamic P/V curve and low flow P/V curvecompliance of the lung expressed in ml/cmH20

Secondary

MeasureTime frameDescription
resistanceTwice a day with at least 4hour interval, during 1 hour, resistance will be measured in every interventional action: ROELEC protocol, SOTA, dynamic P/V curve and low flow P/V curveresistance of the lung expressed in cmH20/L/sec
impedanceTwice a day with at least 4hour interval, during 1 hour, impedance will be measured in every interventional action: ROELEC protocol, SOTA, dynamic P/V curve and low flow P/V curvelung impedance expressed in Ohm

Countries

Belgium

Contacts

Primary Contactjoop Jonckheer, MD, PhD
joop.jonckheer@uzbrussel.be028012679

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026