[HTML][HTML] Distal vessel stiffening is an early and pivotal mechanobiological regulator of vascular remodeling and pulmonary hypertension

F Liu, CM Haeger, PB Dieffenbach, D Sicard… - JCI insight, 2016 - ncbi.nlm.nih.gov
F Liu, CM Haeger, PB Dieffenbach, D Sicard, I Chrobak, AMF Coronata, MMS Velandia…
JCI insight, 2016ncbi.nlm.nih.gov
Pulmonary arterial (PA) stiffness is associated with increased mortality in patients with
pulmonary hypertension (PH); however, the role of PA stiffening in the pathogenesis of PH
remains elusive. Here, we show that distal vascular matrix stiffening is an early
mechanobiological regulator of experimental PH. We identify cyclooxygenase-2 (COX-2)
suppression and corresponding reduction in prostaglandin production as pivotal regulators
of stiffness-dependent vascular cell activation. Atomic force microscopy microindentation …
Abstract
Pulmonary arterial (PA) stiffness is associated with increased mortality in patients with pulmonary hypertension (PH); however, the role of PA stiffening in the pathogenesis of PH remains elusive. Here, we show that distal vascular matrix stiffening is an early mechanobiological regulator of experimental PH. We identify cyclooxygenase-2 (COX-2) suppression and corresponding reduction in prostaglandin production as pivotal regulators of stiffness-dependent vascular cell activation. Atomic force microscopy microindentation demonstrated early PA stiffening in experimental PH and human lung tissue. Pulmonary artery smooth muscle cells (PASMC) grown on substrates with the stiffness of remodeled PAs showed increased proliferation, decreased apoptosis, exaggerated contraction, enhanced matrix deposition, and reduced COX-2–derived prostanoid production compared with cells grown on substrates approximating normal PA stiffness. Treatment with a prostaglandin I 2 analog abrogated monocrotaline-induced PA stiffening and attenuated stiffness-dependent increases in proliferation, matrix deposition, and contraction in PASMC. Our results suggest a pivotal role for early PA stiffening in PH and demonstrate the therapeutic potential of interrupting mechanobiological feedback amplification of vascular remodeling in experimental PH.
ncbi.nlm.nih.gov