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Updated: Apr 1, 2026

Isolation of Pulmonary Artery Smooth Muscle Cells from Neonatal Mice
Published on: October 19, 2013
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.
Abstract:
Supplemental oxygen after premature birth results in aberrant airway, alveolar, and pulmonary vascular development with an increased risk for bronchopulmonary dysplasia, and development of wheeze and asthma, pulmonary hypertension, and chronic obstructive pulmonary disease in survivors. Although stimulation of the nitric oxide (NO)-soluble guanylate cyclase (sGC)-cGMP signal transduction pathway has significant beneficial effects on disease development in animal models, so far this could not be translated to the clinic. Oxidative stress reduces the NO-sGC-cGMP pathway by oxidizing heme-bound sGC, resulting in inactivation or degradation of sGC. Reduced sGC activity and/or expression is associated with pathology due to premature birth, oxidative stress-induced lung injury, including impaired alveolar maturation, smooth muscle cell (SMC) proliferation and contraction, impaired airway relaxation and vasodilation, inflammation, pulmonary hypertension, right ventricular hypertrophy, and an aggravated response toward hyperoxia-induced neonatal lung injury. Recently, Britt et al. (10) demonstrated that histamine-induced Ca(2+) responses were significantly elevated in hyperoxia-exposed fetal human airway SMCs compared with normoxic controls and that this hyperoxia-induced increase in the response was strongly reduced by NO-independent stimulation and activation of sGC. These recent studies highlight the therapeutic potential of sGC modulators in the treatment of preterm infants for respiratory distress with supplemental oxygen. Such treatment is aimed at improving aberrant alveolar and vascular development of the neonatal lung and preventing the development of wheezing and asthma in survivors of premature birth. In addition, these studies highlight the suitability of fetal human airway SMCs as a translational model for pathological airway changes in the neonate.
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