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Exogenous hydrogen sulfide (H2S) protects alveolar growth in experimental O2-induced neonatal lung injury
Arul Vadivel1, Rajesh S Alphonse2, Lavinia Ionescu2
1Ottawa Hospital Research Institute, Sprott Center for Stem Cell Research, Regenerative Medicine Program and Children's Hospital of Eastern Ontario, University of Ottawa, Ottawa, Ontario, Canada.
Insights
Hydrogen sulfide (H2S) protects against lung injury and pulmonary hypertension in premature infants. This gasotransmitter may offer a novel therapeutic target for bronchopulmonary dysplasia.
Area of Science:
- Neonatal physiology
- Pulmonary medicine
- Gasotransmitter signaling
Background:
- Bronchopulmonary dysplasia (BPD) is a chronic lung disease in premature infants, characterized by impaired alveolar development and pulmonary hypertension (PHT).
- Current treatments for BPD are limited, highlighting the need for novel therapeutic strategies.
- Hydrogen sulfide (H2S), a gasotransmitter, has shown potential protective effects, including vasodilation and cytoprotection.
Purpose of the Study:
- To investigate the potential of H2S to prevent impaired alveolar growth and PHT in an experimental model of BPD.
- To evaluate the efficacy of a slow-releasing H2S donor, GYY4137, in mitigating O2-induced lung injury.
Main Methods:
- Utilized a rat pup model of hyperoxia-induced lung injury to mimic BPD.
- Administered GYY4137, a novel H2S donor, to assess its protective effects in vitro and in vivo.
- Evaluated alveolar development, pulmonary artery remodeling, right ventricular hypertrophy, and pulmonary artery smooth muscle cell proliferation.
Main Results:
- In vitro, GYY4137 enhanced endothelial cell viability, promoted capillary-like network formation, and reduced reactive oxygen species.
- GYY4137 protected mitochondrial function in alveolar epithelial cells.
- In vivo, GYY4137 preserved alveolar growth, attenuated PHT, and prevented pulmonary artery remodeling and smooth muscle cell proliferation.
Conclusions:
- H2S administration effectively protects against impaired alveolar growth and pulmonary hypertension in a model of O2-induced lung injury.
- H2S demonstrates significant therapeutic potential for alveolar damage and PHT associated with BPD.
- Further research into H2S as a therapeutic target for BPD is warranted.
Background:
Bronchopulmonary dysplasia (BPD), the chronic lung disease of prematurity, remains a major health problem. BPD is characterized by impaired alveolar development and complicated by pulmonary hypertension (PHT). Currently there is no specific treatment for BPD. Hydrogen sulfide (H2S), carbon monoxide and nitric oxide (NO), belong to a class of endogenously synthesized gaseous molecules referred to as gasotransmitters. While inhaled NO is already used for the treatment of neonatal PHT and currently tested for the prevention of BPD, H2S has until recently been regarded exclusively as a toxic gas. Recent evidence suggests that endogenous H2S exerts beneficial biological effects, including cytoprotection and vasodilatation. We hypothesized that H2S preserves normal alveolar development and prevents PHT in experimental BPD.
Methods:
We took advantage of a recently described slow-releasing H2S donor, GYY4137 (morpholin-4-ium-4-methoxyphenyl(morpholino) phosphinodithioate) to study its lung protective potential in vitro and in vivo.
Results:
In vitro, GYY4137 promoted capillary-like network formation, viability and reduced reactive oxygen species in hyperoxia-exposed human pulmonary artery endothelial cells. GYY4137 also protected mitochondrial function in alveolar epithelial cells. In vivo, GYY4137 preserved and restored normal alveolar growth in rat pups exposed from birth for 2 weeks to hyperoxia. GYY4137 also attenuated PHT as determined by improved pulmonary arterial acceleration time on echo-Doppler, pulmonary artery remodeling and right ventricular hypertrophy. GYY4137 also prevented pulmonary artery smooth muscle cell proliferation.
Conclusions:
H2S protects from impaired alveolar growth and PHT in experimental O2-induced lung injury. H2S warrants further investigation as a new therapeutic target for alveolar damage and PHT.
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