In pulmonary arterial hypertension (PAH), inflammation promotes a fibroproliferative pulmonary vasculopathy. Reductionist studies emphasizing single biochemical reactions suggest a shift toward glycolytic metabolism in PAH; however, key questions remain regarding the metabolic profile of specific cell types within PAH vascular lesions in vivo. We used RNA-Seq to profile the transcriptome of pulmonary artery endothelial cells (PAECs) freshly isolated from an inflammatory vascular injury model of PAH ex vivo, and these data were integrated with information from human gene ontology pathways. Network medicine was then used to map all aa and glucose pathways to the consolidated human interactome, which includes data on 233,957 physical protein-protein interactions. Glucose and proline pathways were significantly close to the human PAH disease module, suggesting that these pathways are functionally relevant to PAH pathobiology. To test this observation in vivo, we used multi-isotope imaging mass spectrometry to map and quantify utilization of glucose and proline in the PAH pulmonary vasculature at subcellular resolution. Our findings suggest that elevated glucose and proline avidity underlie increased biomass in PAECs and the media of fibrosed PAH pulmonary arterioles. Overall, these data show that anabolic utilization of glucose and proline are fundamental to the vascular pathology of PAH.
Bradley M. Wertheim, Rui-Sheng Wang, Christelle Guillermier, Christiane V.R. Hütter, William M. Oldham, Jörg Menche, Matthew L. Steinhauser, Bradley A. Maron
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Scientific Reports | 2025 |
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Nature Communications | 2025 |
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American Journal of Respiratory and Critical Care Medicine | 2025 |
Plasma Multiplatform Metabolomics Towards Evaluation of Gender Differences in Pulmonary Arterial Hypertension—A Pilot Study
Wawrzyniak R, Gaillard T, Biesemans M, Zięba B, Lewicka E, Markuszewski M, Dąbrowska-Kugacka A |
Biomedicines | 2025 |
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bioRxiv | 2025 |
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Circulation | 2024 |
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bioRxiv : the preprint server for biology | 2024 |
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Cell Metabolism | 2024 |
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Guillermier C, Kumar NV, Bracken RC, Alvarez D, O\u2019Keefe J, Gurkar A, Brown JD, Steinhauser ML |
Life Science Alliance | 2024 |
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Wang H, Song TY, Reyes-García J, Wang YX |
Cells | 2024 |
Viewing Pulmonary Arterial Hypertension Pathogenesis and Opportunities for Disease-Modifying Therapy Through the Lens of Biomass.
Steinhauser ML, Maron BA |
JACC. Basic to translational science | 2024 |
Ferroptosis Mediated Inflammation Promotes Pulmonary Hypertension
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Circulation research | 2024 |
Ferroptosis Promotes Pulmonary Hypertension
Vogel NT, Annis J, Prisco SZ, Kazmirczak F, Brittain EL, Prins KW |
2023 | |
Lipidomics for diagnosis and prognosis of pulmonary hypertension
Bordag N, Nagy BM, Zügner E, Ludwig H, Foris V, Nagaraj C, Biasin V, Bodenhofer U, Magnes C, Maron BA, Ulrich S, Lange TJ, Hötzenecker K, Pieber T, Olschewski H, Olschewski A |
2023 | |
Elevated CHCHD4 orchestrates mitochondrial oxidative phosphorylation to disturb hypoxic pulmonary hypertension.
Wang Y, Zeng Z, Zeng Z, Chu G, Shan X |
Journal of Translational Medicine | 2023 |
Human liver single nuclear RNA sequencing implicates BMPR2, GDF15, arginine, and estrogen in portopulmonary hypertension.
Jose A, Elwing JM, Kawut SM, Pauciulo MW, Sherman KE, Nichols WC, Fallon MB, McCormack FX |
Communications biology | 2023 |
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Johnson S, Sommer N, Cox-Flaherty K, Weissmann N, Ventetuolo CE, Maron BA |
American journal of respiratory and critical care medicine | 2023 |