Abstract
Abstract
Background: Right ventricular (RV) adaptation determines outcomes in pulmonary arterial hypertension (PAH), yet multicellular molecular programs associated with adaptive versus maladaptive RV remodeling in living humans remain incompletely defined. Methods: We collected 32 human RV tissue biopsies from patients with idiopathic PAH, systemic sclerosis-associated PAH (SSc-PAH), systemic sclerosis without pulmonary hypertension, with 24 nonfailing donor RVs serving as controls. We performed single-nucleus RNA sequencing and integrated cell-type specific transcriptional programs with contemporaneously obtained multi-beat pressure-volume loop measurements of RV contractility (Ees, end-systolic elastance) and RV-pulmonary arterial coupling (the ratio of Ees to Ea, the effective arterial load). SSc modification of PAH-associated biology was assessed using interaction terms. Bulk RV proteomic pathway enrichment was performed to assess an orthogonal molecular layer, and exploratory cell-cell communication analyses alongside independent spatial transcriptomic analyses were performed to contextualize key findings. Results: PAH was associated with broad depletion of biosynthetic, trafficking, and mitochondrial programs across cell types. SSc modified the magnitude of many PAH-associated transcriptional programs while largely preserving pathway directionality. Significant multicellular pathway enrichments were associated with RV-pulmonary arterial coupling. Joint analysis of Ees, Ea, and Ees/Ea identified biologic programs associated with different RV responses to varying loading conditions. Preserved coupling was characterized by enriched extracellular matrix, laminin-integrin, receptor tyrosine kinase, mitochondrial, and translational programs involving fibroblast, endothelial, endocardial, and cardiomyocyte compartments. Cell-cell communication analyses predicted coordinated stromal-vascular signaling networks involving laminin-integrin and endothelial-to-mural signaling in preserved coupling. Proteomic and spatial analyses supported recurrent multicellular themes. Conclusions: RV adaptation in PAH is associated with distinct, coordinated multicellular programs that vary with load and contractile response. RV-PA coupling in PAH is associated with multicellular remodeling that extends beyond cardiomyocytes and reflects organized vascular-stromal support architecture. These findings identify extracellular matrix, laminin-integrin signaling, mitochondrial, and translational programs as associated with adaptive RV remodeling in PAH.