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Published on: January 16, 2013
Dysregulated Smooth Muscle Cell BMPR2-ARRB2 Axis Causes Pulmonary Hypertension
Lingli Wang1,2,3,4, Jan-Renier Moonen1,2,3,4, Aiqin Cao1,2,3,4
1BASE Initiative, Betty Irene Moore Children's Heart Center, Lucile Packard Children's Hospital (L.W., J.R.M., A.C., S.I., M.R.), Stanford University School of Medicine, CA.
Objective:
Mutations in BMPR2 (bone morphogenetic protein receptor 2) are associated with familial and sporadic pulmonary arterial hypertension (PAH). The functional and molecular link between loss of BMPR2 in pulmonary artery smooth muscle cells (PASMC) and PAH pathogenesis warrants further investigation, as most investigations focus on BMPR2 in pulmonary artery endothelial cells. Our goal was to determine whether and how decreased BMPR2 is related to the abnormal phenotype of PASMC in PAH.
Methods:
SMC-specific Bmpr2-/- mice (BKOSMC) were created and compared to controls in room air, after 3 weeks of hypoxia as a second hit, and following 4 weeks of normoxic recovery. Echocardiography, right ventricular systolic pressure, and right ventricular hypertrophy were assessed as indices of pulmonary hypertension. Proliferation, contractility, gene and protein expression of PASMC from BKOSMC mice, human PASMC with BMPR2 reduced by small interference RNA, and PASMC from PAH patients with a BMPR2 mutation were compared to controls, to investigate the phenotype and underlying mechanism.
Results:
BKOSMC mice showed reduced hypoxia-induced vasoconstriction and persistent pulmonary hypertension following recovery from hypoxia, associated with sustained muscularization of distal pulmonary arteries. PASMC from mutant compared to control mice displayed reduced contractility at baseline and in response to angiotensin II, increased proliferation and apoptosis resistance. Human PASMC with reduced BMPR2 by small interference RNA, and PASMC from PAH patients with a BMPR2 mutation showed a similar phenotype related to upregulation of pERK1/2 (phosphorylated extracellular signal related kinase 1/2)-pP38-pSMAD2/3 mediating elevation in ARRB2 (β-arrestin2), pAKT (phosphorylated protein kinase B) inactivation of GSK3-beta, CTNNB1 (β-catenin) nuclear translocation and reduction in RHOA (Ras homolog family member A) and RAC1 (Ras-related C3 botulinum toxin substrate 1). Decreasing ARRB2 in PASMC with reduced BMPR2 restored normal signaling, reversed impaired contractility and attenuated heightened proliferation and in mice with inducible loss of BMPR2 in SMC, decreasing ARRB2 prevented persistent pulmonary hypertension.
Conclusions:
Agents that neutralize the elevated ARRB2 resulting from loss of BMPR2 in PASMC could prevent or reverse the aberrant hypocontractile and hyperproliferative phenotype of these cells in PAH.
Insights
Loss of bone morphogenetic protein receptor 2 (BMPR2) in pulmonary artery smooth muscle cells (PASMC) causes abnormal cell function contributing to pulmonary arterial hypertension (PAH). Targeting ARRB2 can reverse these cellular changes and prevent PAH.
Area of Science:
- Cardiovascular Biology
- Pulmonary Hypertension Pathophysiology
- Molecular Medicine
Background:
- Mutations in bone morphogenetic protein receptor 2 (BMPR2) are linked to pulmonary arterial hypertension (PAH).
- The role of BMPR2 in pulmonary artery smooth muscle cells (PASMC) in PAH pathogenesis is not fully understood, with research often focusing on endothelial cells.
Purpose of the Study:
- To investigate the functional and molecular consequences of BMPR2 deficiency in PASMC.
- To determine the relationship between decreased BMPR2 expression and the abnormal PASMC phenotype observed in PAH.
Main Methods:
- Generation of SMC-specific Bmpr2 knockout (BKO) mice.
- Assessment of pulmonary hypertension indices (echocardiography, RVSP, RVH) in BKO mice under normoxia, hypoxia, and recovery.
- Analysis of PASMC proliferation, contractility, and gene/protein expression from BKO mice, human PASMC with reduced BMPR2, and PAH patient-derived PASMC.
Main Results:
- BKO mice exhibited persistent pulmonary hypertension and sustained distal pulmonary artery muscularization after hypoxia.
- PASMC from mutant models showed reduced contractility, increased proliferation, and apoptosis resistance.
- A signaling pathway involving upregulated ARRB2, altered AKT/GSK3-beta/CTNNB1, and reduced RHOA/RAC1 was identified in PASMC with BMPR2 deficiency.
- Reducing ARRB2 levels restored normal PASMC function and prevented persistent pulmonary hypertension in BKO mice.
Conclusions:
- Loss of BMPR2 in PASMC leads to hypocontractility and hyperproliferation, contributing to PAH.
- Elevated ARRB2 in PASMC is a key mediator of the aberrant phenotype caused by BMPR2 deficiency.
- Targeting ARRB2 presents a potential therapeutic strategy to reverse or prevent PAH-associated PASMC dysfunction.
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