Role of Forkhead box F1 in the Pathobiology of Pulmonary Arterial Hypertension
Gomez-Arroyo, J.; Houweling, A. C.; Bogaard, H. J.; Aman, J.; Kitzmiller, J. A.; Porollo, A.; Dooijes, D.; Meijboom, L. J.; Hale, P.; Pauciulo, M. W.; Hong, J.; Zhu, N.; Welch, C.; Shen, Y.; Zacharias, W. J.; McCormack, F. X.; Aldred, M. A.; Weirauch, M. T.; Graf, S. T.; Rhodes, C. J.; Chung, W. K.; Whitsett, J. A.; Martin, L. J.; Kalinichenko, V. K.; Nichols, W. A.
Show abstract
RationaleApproximately 80% of patients with non-familial pulmonary arterial hypertension (PAH) lack identifiable pathogenic genetic variants. While most genetic studies of PAH have focused on predicted loss-of-function variants, recent approaches have identified ultra-rare missense variants associated with the disease. FOXF1 encodes a highly conserved transcription factor, essential for angiogenesis and vasculogenesis in human and mouse lungs. ObjectivesWe identified a rare FOXF1 missense coding variant in two unrelated probands with PAH. FOXF1 is an evolutionarily conserved transcription factor required for lung vascular development and vascular integrity. Our aims were to determine the frequency of FOXF1 variants in larger PAH cohorts compared to the general population, study FOXF1 expression in explanted lung tissue from PAH patients versus control (failed-donor) lungs, and define potential downstream targets linked to PAH development. MethodsThree independent, international, multicenter cohorts were analyzed to evaluate the frequency of FOXF1 rare variants. Various composite prediction models assessed the deleteriousness of individual variants. Bulk RNA sequencing datasets from human explanted lung tissues were compared to failed-donor controls to determine FOXF1 expression. Bioinformatic tools identified putative FOXF1 binding targets, which were orthogonally validated using mouse ChIP-seq datasets. Measurements and Main ResultsSeven novel or ultra-rare missense coding variants were identified across three patient cohorts in different regions of the FOXF1 gene, including the DNA binding domain. FOXF1 expression was dysregulated in PAH lungs, correlating with disease severity. Histological analysis showed heterogeneous FOXF1 expression, with the lowest levels in phenotypically abnormal endothelial cells within complex vascular lesions in PAH samples. A hybrid bioinformatic approach identified FOXF1 downstream targets potentially involved in PAH pathogenesis, including BMPR2. ConclusionsLarge genomic and transcriptomic datasets suggest that decreased FOXF1 expression or predicted dysfunction is associated with PAH.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Single-Cell Imaging Maps Inflammatory Cell Subsets to Pulmonary Arterial Hypertension Vasculopathy 95%
- Ces1 Deficiency Is Associated With Metabolic Reprograming And Endothelial Dysfunction In Pulmonary Arterial Hypertension 94%
- Circulating BMP9 protects the pulmonary endothelium during inflammation-induced lung injury in mice 94%
Similar papers in this journal
- PAI-1 Deficiency Drives Pulmonary Vascular Smooth Muscle Remodeling and Pulmonary Hy-pertension 96%
- Post-transcriptional regulation of IFI16 promotes inflammatory endothelial pathophenotypes observed in pulmonary arterial hypertension 95%
- Endothelial PHD2 deficiency induces apoptosis resistance and inflammation via AKT activation and AIP1 loss independent of HIF2α 94%
Similar papers in this journal
- Essential Role of Protein Kinase R in the Pathogenesis of Pulmonary Veno-occlusive Disease 94%
- Loss of Fas-signaling in pro-fibrotic fibroblasts impairs homeostatic fibrosis resolution and promotes persistent pulmonary fibrosis 93%
- Spatial transcriptomic characterization of COVID-19 pneumonitis identifies immune circuits related to tissue injury 92%
Similar papers in this journal
Similar papers in this journal
- Beta-arrestin-mediated Angiotensin II type 1 Receptor Activation Promotes Pulmonary Vascular Remodeling in Pulmonary Hypertension 94%
- With No Lysine Kinase 1 Promotes Right Ventricular Dysfunction Via Glucotoxicity 93%
- Intermittent Fasting Activates AMP-Kinase to Restructure Right Ventricular Lipid Metabolism and Microtubules in Two Rodent Models of Pulmonary Arterial Hypertension 91%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.