Therapeutic potential of soluble guanylate cyclase modulators in neonatal chronic lung disease

Gerry T M Wagenaar1, Pieter S Hiemstra2, Reinoud Gosens3

  • 1Laboratory of Neonatology, Department of Pediatrics, Leiden University Medical Center, Leiden, the Netherlands; g.t.m.wagenaar@lumc.nl.

Insights

Supplemental oxygen harms preterm infant lung development. Stimulating the nitric oxide-soluble guanylate cyclase-cGMP pathway may protect against lung injury and prevent chronic respiratory diseases in survivors.

Area of Science:

  • Neonatal respiratory research
  • Pulmonary medicine
  • Pharmacology

Background:

  • Supplemental oxygen in preterm infants causes abnormal lung development, increasing risks of bronchopulmonary dysplasia, pulmonary hypertension, and asthma.
  • The nitric oxide (NO)-soluble guanylate cyclase (sGC)-cGMP pathway is crucial for lung health but is impaired by oxidative stress in premature infants.
  • Reduced sGC activity is linked to lung pathologies like impaired alveolar maturation and airway hyperresponsiveness.

Purpose of the Study:

  • To investigate the therapeutic potential of sGC modulators for respiratory distress in preterm infants.
  • To explore the role of sGC activation in mitigating hyperoxia-induced lung injury.
  • To evaluate fetal human airway smooth muscle cells (SMCs) as a translational model for neonatal airway diseases.

Main Methods:

  • Utilized fetal human airway SMCs exposed to hyperoxia and normoxia.
  • Measured histamine-induced calcium (Ca2+) responses in SMCs.
  • Assessed the effects of NO-independent sGC stimulation on hyperoxia-induced responses.

Main Results:

  • Hyperoxia significantly increased Ca2+ responses in fetal human airway SMCs.
  • NO-independent sGC activation markedly reduced these elevated responses.
  • Fetal human airway SMCs demonstrated suitability as a model for neonatal airway pathology.

Conclusions:

  • sGC modulators show promise for treating preterm infants with respiratory distress and preventing long-term lung complications.
  • Targeting the NO-sGC-cGMP pathway could improve neonatal lung development and reduce chronic respiratory diseases.
  • Fetal human airway SMCs serve as a valuable translational model for studying neonatal lung injury and developing new therapies.

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