Long versus short inspiratory times in neonates receiving mechanical ventilation

C O F Kamlin1, P G Davis

  • 1Department of Neonatology, Royal Women's Hospital, Gratton Street, Carlton, Victoria, 3053, Australia. omar.kamlin@rwh.org.au

Insights

Using a long inspiratory time (IT) in mechanically ventilated newborns with hyaline membrane disease (HMD) increases air leak and mortality risks. Short IT is recommended for infants with poorly compliant lungs.

Area of Science:

  • Neonatal respiratory support
  • Mechanical ventilation in neonates
  • Respiratory distress syndrome

Background:

  • Intermittent positive pressure ventilation (IPPV) for hypoxic respiratory failure in newborns with hyaline membrane disease (HMD) historically led to high mortality and air leaks due to high peak inspiratory pressures (PIP).
  • Conventional ventilator strategies, including inspiratory time (IT), PIP, positive end-expiratory pressure, and flow rates, influence mean airway pressure and oxygenation.
  • Despite advancements in neonatal ventilators to minimize lung injury, rates of bronchopulmonary dysplasia (BPD) remain high, necessitating optimization of IT to reduce harm.

Purpose of the Study:

  • To evaluate whether a prolonged inspiratory time (IT) versus a short IT in mechanically ventilated newborn infants reduces the incidence of death, air leak, and bronchopulmonary dysplasia (BPD).

Main Methods:

  • A systematic review and meta-analysis of randomized and quasi-randomized controlled trials was conducted.
  • Searches included MEDLINE, Cochrane Central Register of Controlled Trials, and abstracts from pediatric research societies.
  • Data from 694 infants across five studies were analyzed using relative risk (RR) and risk difference (RD) with a fixed-effect model.

Main Results:

  • A long IT was associated with a significant increase in air leak (RR 1.56, RD 0.13).
  • No significant difference in the incidence of bronchopulmonary dysplasia (BPD) was observed.
  • A long IT showed a borderline statistically significant increase in mortality before hospital discharge (RR 1.26, RD 0.07).

Conclusions:

  • The findings suggest caution when applying long IT strategies in modern neonatal intensive care, considering advancements like antenatal steroids and surfactant therapy.
  • The increased rates of air leaks and deaths associated with long IT are clinically significant.
  • For neonates with poorly compliant lungs, a short IT is recommended to minimize adverse outcomes.
Abstract

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