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April 7, 2005American Journal of Respiratory and Critical Care Medicine368 citations

Antiproliferative Effects of Phosphodiesterase Type 5 Inhibition in Human Pulmonary Artery Cells

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JWJohn WhartonJSJulian StrangeGMGigi M. O. Møller

Key Points

  • This study aimed to explore the role of phosphodiesterase type 5 in pulmonary arterial smooth muscle cells and its potential for treating pulmonary hypertension.
  • PDE5 expression evaluated using immunohistochemistry and Western blotting in normal and hypertensive lung tissues.
  • Cellular assays performed to measure DNA synthesis, proliferation, and apoptosis in human pulmonary artery smooth muscle cells treated with PDE5 inhibitors and soluble guanylyl cyclase activators.
  • Dual stimulation with soluble guanylyl cyclase and PDE5 inhibition assessed for downstream signaling effects.
  • PDE5 expression was greater in hypertensive lung tissues, with three molecular forms identified.
  • Sildenafil produced a 10-fold increase in intracellular cyclic GMP levels, while co-treatment with soluble guanylyl cyclase activators led to a synergistic effect increasing levels up to 50-fold.
  • Inhibition of PDE5 reduced DNA synthesis and cell proliferation while stimulating apoptosis, indicating important regulatory effects in vascular remodeling.

Abstract

RATIONALE: Phosphodiesterase Type 5 (PDE5) inhibition represents a novel strategy for the treatment of pulmonary hypertension. OBJECTIVES: Our aim was to establish the distribution of PDE5 in the pulmonary vasculature and effects of PDE5 inhibition on pulmonary artery smooth muscle cells (PASMCs). METHODS AND MEASUREMENTS: PDE5 expression was examined by immunohistochemistry and Western blotting, in both normal and hypertensive lung tissues. DNA synthesis, proliferation, PDE activity, and apoptosis were measured in distal human PASMCs treated with soluble guanylyl cyclase activators (nitric oxide donors and BAY41-2272) and sildenafil. MAIN RESULTS: Cells containing PDE5 and alpha-smooth muscle actin occurred throughout the pulmonary vasculature, including obstructive intimal lesions. Three molecular forms of PDE5 were identified and protein expression was greater in hypertensive than control lung tissue. Most cyclic guanosine monophosphate hydrolysis (about 80%) in cultured cells was attributed to PDE5. Sildenafil induced a greater elevation of intracellular cyclic guanosine monophosphate levels compared with nitric oxide donors and BAY41-2272 (about 10-fold versus about 2-fold) and cotreatment had a synergistic effect, increasing cyclic nucleotide levels up to 50-fold. Dual stimulation of soluble guanylyl cyclase and inhibition of PDE5 activities also had significant downstream effects, increasing phosphorylation of vasodilator-stimulated phosphoprotein, reducing DNA synthesis and cell proliferation, and stimulating apoptosis, and these effects were mimicked by cyclic guanosine monophosphate analogs. CONCLUSIONS: Phosphodiesterase Type 5 is the main factor regulating cyclic guanosine monophosphate hydrolysis and downstream signaling in human PASMCs. The antiproliferative effects of this signaling pathway may be significant in the chronic treatment of pulmonary hypertension with PDE5 inhibitors such as sildenafil.

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Cite This Study

Wharton et al. (2005) studied this question.

synapsesocial.com/papers/6a15608f15658026c0824632https://doi.org/10.1164/rccm.200411-1587oc
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