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Apelin analog treatment reverses severe pulmonary arterial hypertension and right ventricular heart failure
Jennie Vu, Pavel Zhabyeyev, Kemar J. Brown, Joshua Gorham, Daniel M. DeLaughter, Huachen Chen, Thilina U. Jayawardena, Ander Vergara, Maria Alexiou, Anjalee Wijewardane, Conrad Fischer, Charlotte Avet, Abby Ewasiuk, Faqi Wang, Mark C. Chappell, Yuri Kim, Michel Bouvier, John C. Vederas, Christine E. Seidman, Jonathan G. Seidman, Gavin Y. Oudit
Jennie Vu, Pavel Zhabyeyev, Kemar J. Brown, Joshua Gorham, Daniel M. DeLaughter, Huachen Chen, Thilina U. Jayawardena, Ander Vergara, Maria Alexiou, Anjalee Wijewardane, Conrad Fischer, Charlotte Avet, Abby Ewasiuk, Faqi Wang, Mark C. Chappell, Yuri Kim, Michel Bouvier, John C. Vederas, Christine E. Seidman, Jonathan G. Seidman, Gavin Y. Oudit
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Research Article Cardiology Pulmonology Vascular biology

Apelin analog treatment reverses severe pulmonary arterial hypertension and right ventricular heart failure

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Abstract

Pulmonary arterial hypertension (PAH) is a progressive vascular syndrome characterized by aberrant signaling, severe pulmonary artery remodeling, and right ventricular (RV) failure, a major driver of morbidity and mortality. Dysregulation of the apelinergic pathway has been implicated in pulmonary vascular remodeling in PAH. Using a sugen-hypoxia rat model of PAH, we assessed the ability of a potentially novel apelin analog, resistant to native peptidase degradation, to reverse the pathological hallmarks of PAH and RV dysfunction. Apelin analog therapy corrected the vascular lesions in the lungs and nearly normalized pulmonary arterial pressures. Early cardiorenal syndrome, RV dilation, and dysfunction, as well as RV cardiomyocyte and fibroblast activation induced by pressure overload, were also reversed by apelin analog treatment. Single-nucleus RNA-seq of the lungs and RV revealed apelin-analog treatment activated several protective pathways, including rebalancing protective bone morphogenetic protein receptor type 2 (BMPR2) signaling to counteract excessive pathogenic TGF-β receptor 2 (TGFBR2) activity in PAH. These findings highlight the therapeutic potential of exogenous apelin in reversing pulmonary vascular and cardiac pathologies in PAH and support further investigation to evaluate the clinical benefits of apelin analog treatment in patients with PAH and RV failure.

Authors

Jennie Vu, Pavel Zhabyeyev, Kemar J. Brown, Joshua Gorham, Daniel M. DeLaughter, Huachen Chen, Thilina U. Jayawardena, Ander Vergara, Maria Alexiou, Anjalee Wijewardane, Conrad Fischer, Charlotte Avet, Abby Ewasiuk, Faqi Wang, Mark C. Chappell, Yuri Kim, Michel Bouvier, John C. Vederas, Christine E. Seidman, Jonathan G. Seidman, Gavin Y. Oudit

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Figure 15

Apelin analog treatment normalizes fibroblast activation and myeloid cell states in the pressure-overloaded right ventricle in pulmonary arterial hypertension.

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Apelin analog treatment normalizes fibroblast activation and myeloid cel...
(A) Dot plot of the selected genes showing average expression — purple (low), yellow (mid), and red (high) — and fraction of cell expressing (size of the dot) for vFB1.0, vFB2.0, vFB2.1, and vFB3 cell states. (B) Representative images and quantification of immunofluorescence staining for activated fibroblasts (vFB2.1) in the RV based on costaining for periostin (POSTN, red) and platelet derived grown factor receptor α (PDGFRα; green). Scale bar: 30 µm. (C) Dot plot of the selected genes showing average expression — purple (low), yellow (mid), and red (high) — and fraction of cell expressing (size of the dot) for γ-δ T cells and monocytes (MC1, MC2, and MC3). (D) Representative images and quantification of immuno-fluorescence staining for myeloid marker CD163 (red); WGA (green) and DAPI (blue). Scale bar: 30 µm. CTRL, control rats; PAH-P, PAH rats treated with placebo; PAH-A, PAH rats treated with apelin analog. PO, pressure overload; FA, focal adhesion; FB act., fibroblast activation; ECM, extracellular matrix components; TGF-β, transforming growth factor β pathway; BMP, bone morphogenic protein; cA/cG, cAMP/cGMP production; PDEs, phosphodiesterases. n = 5–8 tissue sections. Data are shown as mean ± SD. Comparisons are done with 1-way ANOVA Tukey’s post hoc analysis for multiple comparisons. **P < 0.01. snRNA-seq data: n = 4 animals per treatment condition.

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