Measurement of maximal inspiratory pressure in ventilated children

Gopinathannair Harikumar1,2, John Moxham1,3, Anne Greenough1,2

  • 1Division of Asthma, Allergy and Lung Biology, King's College London, London, UK.

Pediatric Pulmonology
|October 11, 2008
PubMed

Insights

Maximal inspiratory pressure (PIMAX) measurement in children is more accurate using a unidirectional valve than airway occlusion. This method yields higher PIMAX values, aiding in better assessment of inspiratory muscle strength.

Area of Science:

  • Pediatric critical care medicine
  • Respiratory physiology

Background:

  • Maximal inspiratory pressure (PIMAX) assesses inspiratory muscle strength in ventilated children.
  • Current PIMAX measurement lacks standardized guidelines.

Purpose of the Study:

  • To compare PIMAX generated via airway occlusion (PIMAX(OCC)) versus a unidirectional valve (PIMAX(UNI)).
  • To evaluate the impact of a unidirectional valve on PIMAX measurements in pediatric patients.

Main Methods:

  • Twenty-two mechanically ventilated children were studied.
  • PIMAX was measured using both airway occlusion and a unidirectional valve in random order.
  • Functional residual capacity (FRC) was measured using helium dilution.

Main Results:

  • PIMAX(UNI) (45.5 cmH2O) was significantly greater than PIMAX(OCC) (30.9 cmH2O) (P < 0.0001).
  • Expired volume during PIMAX(UNI) reduced FRC by 33.1%.
  • No significant differences in respiratory drive, efforts, or time to reach PIMAX were observed between methods.

Conclusions:

  • A unidirectional valve provides higher PIMAX values in children compared to airway occlusion.
  • This technique may offer a more sensitive measure of inspiratory muscle strength.
  • Recommended occlusion duration is 12 seconds or 8 breaths.

Related Concept Videos

Pulmonary Ventilation: Inhalation01:24

Pulmonary Ventilation: Inhalation

Pulmonary ventilation is a vital process that ensures the exchange of oxygen and carbon dioxide in the lungs. It refers to the movement of air into and out of the lungs, enabling the body to obtain oxygen and remove waste carbon dioxide. In this article, we will explore the intricacies of pulmonary ventilation, including its underlying principles, mechanisms, and the interplay of pressures within the respiratory system.
Boyle's law becomes particularly pertinent when examining respiratory...
Mechanical Ventilation I: Indication and Settings01:29

Mechanical Ventilation I: Indication and Settings

Mechanical ventilation is a life-saving technique for managing acute respiratory failure and other respiratory complications. The process involves using a machine known as a ventilator to supply oxygen to the lungs and assist in removing carbon dioxide. It serves as a bridge to long-term mechanical ventilation or a temporary measure until ventilatory support is discontinued. The ventilator can maintain this function for a prolonged period, providing critical support for patients until they can...
Respiratory Capacities01:24

Respiratory Capacities

Respiratory capacities are crucial indicators of lung function, representing the maximum amount of air an individual's respiratory system can handle during various breathing phases.
One key metric is the Inspiratory Capacity (IC), which represents the maximum amount of air that can be inhaled with full effort. IC is calculated by summing the tidal volume and inspiratory reserve volume, typically ranging from 2.4 to 3.6 liters.
The Functional Residual Capacity (FRC) represents the air in the...
Mechanical Ventilation II: Invasive Ventilation01:23

Mechanical Ventilation II: Invasive Ventilation

Ventilators are essential medical equipment used to aid patients with respiratory difficulties. Their primary function is to assist or replace spontaneous breathing by providing mechanical ventilation. There are two general classes of mechanical ventilators: negative-pressure and positive-pressure ventilators.
Negative-Pressure Ventilators
Negative-pressure ventilators create a vacuum around the chest or body to draw air into the lungs, simulating breathing. This method does not require an...
Pressure Relationships in Thoracic Cavity01:24

Pressure Relationships in Thoracic Cavity

Breathing, otherwise known as pulmonary ventilation, is the process of air movement into and out of the lungs. The main mechanisms propelling pulmonary ventilation are atmospheric pressure (Patm), intra-pulmonary (Ppul ) or intra-alveolar pressure (Palv) within the alveoli, and intrapleural pressure (Pip) within the pleural cavity.
Breathing Mechanisms
Both intra-alveolar and intrapleural pressures rely on specific lung properties. The ability to breathe—allowing air to enter the lungs during...
Respiratory Volumes01:15

Respiratory Volumes

Respiratory volumes are crucial metrics, meticulously measured to quantify the air exchanged in and out of the lungs during various phases of the breathing cycle. These precise measurements are vital for assessing lung function, diagnosing respiratory conditions, and monitoring overall respiratory health. Each parameter provides specific insights into the mechanics of breathing and the functional capacity of the lungs.
Tidal Volume (TV) Tidal volume (TV) is the air inhaled or exhaled in a...