4.2 Article

Hydrocortisone normalizes phosphodiesterase-5 activity in pulmonary artery smooth muscle cells from lambs with persistent pulmonary hypertension of the newborn

期刊

PULMONARY CIRCULATION
卷 4, 期 1, 页码 71-81

出版社

SAGE PUBLICATIONS INC
DOI: 10.1086/674903

关键词

hydrocortisone; PDE5; PPHN; oxidative stress; NF kappa B

资金

  1. Child Health Research Career Development Award of Lurie Children's Hospital
  2. National Institutes of Health [R03 HD060138-01, K08 HL086715, HL109478, HL54705]
  3. Northwestern University Flow Cytometry Facility
  4. Cancer Center Support Grant (National Cancer Institute) [CA060553]

向作者/读者索取更多资源

Phosphodiesterase-5 (PDE5) is the primary phosphodiesterase in the pulmonary vasculature. It degrades cyclic guanosine monophosphate (cGMP) and inhibits cGMP-mediated vasorelaxation. We previously reported that hydrocortisone treatment decreased hyperoxia-induced PDE5 activity and markers of oxidative stress in lambs with persistent pulmonary hypertension of the newborn (PPHN) ventilated with 100% O-2. The objective of our study was to determine the molecular mechanism by which hydrocortisone downregulates PDE5 and oxidative stress in fetal pulmonary artery smooth muscle cells (FPASMCs) from PPHN lambs. PPHN FPASMC were incubated for 24 hours in either 21% or 95% O2. Some cells were treated with 100 nM hydrocortisone and/or +/- 1 mu M helenalin, an inhibitor of nuclear factor. B (NF kappa B), a redox-sensitive transcription factor. Exposure to hyperoxia led to increased PDE5 activity, oxidative stress, and NF.B activity. Pretreatment of PPHN FPASMC with hydrocortisone normalized PDE5 activity, decreased cytosolic oxidative stress, increased expression of extracellular superoxide dismutase and NF kappa B inhibitory protein, and decreased NF kappa B activity. Similarly, treatment with NF kappa B inhibitor, helenalin, decreased PDE5 activity. These data suggest that hyperoxia activates NF kappa B, which in turn induces PDE5 activity in PPHN FPASMC, whereas treatment with hydrocortisone attenuates these changes by blocking reactive oxygen species-induced NF kappa B activity.

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