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Markowski, T.

Publications and source records attributed to Markowski, T..

8 recordsLinked to original sources

Multi-Omic Profiling Defines the Renal Mechanisms of Cardiovascular-Kidney-Metabolic Syndrome in Pulmonary Arterial Hypertension

Background: Cardiovascular-kidney-metabolic (CKM) syndrome integrates cardiac, renal, and metabolic abnormalities that drive multi-organ injury. In pulmonary arterial hypertension (PAH), CKM manifests as systemic metabolic derangements, right ventricular dysfunction, and renal compromise. Renal dysfunction strongly predicts mortality in PAH, yet current therapies provide little renal benefit. Moreover, the mechanisms driving PAH nephropathy remain poorly understood, limiting our ability to effectively treat PAH-CKM. Methods: Single-nucleus RNA sequencing identified cell-type-specific transcriptional alterations in autopsy-derived kidneys from control (n=5) and PAH (n=4) patients. Mitochondrial, cytoplasmic, and phosphoproteomic analyses profiled proteomic alterations. AlphaFold 3/ChimeraX modeling defined the predicted structural consequences of altered protein phosphorylation. Histological analysis assessed renal fibrosis, glomerular structure, immune cell infiltration, and nephron segment density. Results: 3 of 4 PAH patients exhibited renal impairment, with a cohort mean estimated glomerular filtration rate of 61 plus or minus 36 mL/min/1.73m squared. snRNA-seq identified a distinct cellular architecture in PAH kidneys, marked by an increase in thick ascending limb, proximal tubule, and immune cell nuclei and depletion of collecting duct nuclei. Transcriptional profiling demonstrated proximal tubule and thick ascending limb cells both upregulated fatty acid oxidation, ferroptosis, and cuproptosis pathways. PAH lymphocytes displayed heightened T87 cell receptor signaling, natural killer cell-mediated cytotoxicity, and Th17 differentiation. Histological analyses demonstrated increased perivascular fibrosis, glomerular T-cell infiltration, and a reduction in glomerular basement membrane density in PAH kidneys. Mitochondrial and cytoplasmic proteomics revealed broad metabolic dysfunction characterized by impaired {beta}-oxidation, TCA cycle activity, amino acid metabolism, transsulfuration, and urea cycle pathways. Phosphoproteomics predicted increased GSK3{beta}, STK, and casein kinase activity in PAH kidneys. Finally, using the totality of our data, we nominated multiple druggable targets that could be evaluated to counteract PAH nephropathy. Conclusions: Integrated multi-omic profiling demonstrates PAH nephropathy is defined by glomerular structural remodeling, proximal nephron ferroptotic and cuproptotic signaling, amino acid metabolic dysregulation, and innate and adaptive leukocyte activation. Future studies intervening on these pathways could lead to the development of novel therapeutics to augment renal function in PAH.

molecular biology↗

Multimodality Molecular Profiling Nominates Targetable Mechanisms in Progressive RV Dysfunction

BackgroundRight ventricular dysfunction (RVD) is a robust predictor of mortality in multiple cardiovascular diseases. Currently, it remains unclear whether the severity of RVD corresponds to distinct cellular and molecular alterations, and this has important implications for defining optimal therapeutic targets. To address this knowledge gap, we performed a multi-omics evaluation of pulmonary artery banded (PAB) pigs with differing degrees of RV compromise. MethodsPAB pigs were stratified into mild and severe RVD groups using an RV ejection fraction cutoff of 35%. RV tissue from control, mild RVD, and severe RVD animals was analyzed using single-nucleus RNA sequencing, mitochondrial and cytoplasmic proteomics, and phosphoproteomics. Histological analyses corroborated multi-omic findings. ResultsCardiac MRI revealed progressive structural and functional alterations in mild and severe RVD pigs. snRNAseq demonstrated that advancing RVD was associated with loss of cardiomyocytes, accumulation of efferocytosis-impaired macrophages, and dysregulated endothelial cells and pericytes. Combined transcriptomic and proteomic analyses showed escalating impairments of complex cardiomyocyte metabolism with worsening RVD. RV microvasculature was compromised with severe RVD as there were alterations in endothelial cell/pericyte genetic regulation, co-localization patterns in RV sections, and ectopic cardiomyocyte HIF1 expression. Analysis of both mitochondrial and global proteostasis revealed greater compromise in mitochondrial proteostasis, including downregulation of mitochondrial proteases, chaperones, and ribosomes. Paradoxically, cytoplasmic ribosomes were upregulated in severe RVD. The predicted kinome and phosphatome were uniquely altered in mild RVD as compared to severe RVD. Finally, integration of multi-omic approaches identified insufficient mitochondrial unfolded protein response, impaired macrophage efferocytosis, and activation of the ribotoxic stress response as potential contributors to severe RVD. ConclusionsOur multi-omic analysis defines the cellular and molecular landscape of progressive RVD and nominates druggable pathways that may promote progressive RV dysfunction. Future studies are needed to determine how targeting these pathways influences RV phenotypes.

physiology↗

Proteomics Defines Shared and Divergent Alterations in the Right Atrium and Right Ventricle in Porcine Right Heart Failure

Right heart failure is due to both right atrial and right ventricular dysfunction. While the two chambers are distinct, the proteomic response to pressure overload is undefined. Here, we used quantitative proteomics to evaluate changes in both chambers in pulmonary artery banded pigs. We found common alterations in oxidative phosphorylation, ribosome regulation, integrin-mediated adhesion, and glycolysis enzymes. However, the right atrium had more pronounced deficits in the TCA cycle and branched chain amino acid metabolism. Thus, these data highlight metabolic pathways that could be evaluated to selectively enhance right atrial function.

biochemistry↗

mRNA and Protein Expression of Fetal Insulin Receptor in Breast Cancer Cell Lines

The insulin receptor (IR) is expressed in breast cancer cells and plays a role in regulating tumor biology. There are two IR isoforms generated from the same gene. Alternate splicing with exclusion or inclusion of exon 11accounts for the two isoforms. The exon 11 excluded isoform (IR-A) is expressed during fetal development while the full-length adult IR (IR-B) is the primary form expressed during adult life. This splice variant results in a 12 amino acid variation in peptide sequence. Breast cancer cells overexpress IR-A with an increased IR-A:IR-B ratio. Most of these data were obtained by examining mRNA expressions. In this work, we examined over 40 breast cancer cell lines and patient tumor samples for mRNA expression of the IR isoforms to show that most cells overexpressed IR-A compared to IR-B. Further we used mass spectrometry to demonstrate IR-A protein expression in the Du4475 cell line which has a high level of IR-A mRNA expression. To our knowledge, this is the first demonstration of IR-A protein expression. Thus, IR-A mRNA and protein expression demonstrate a potential role for this insulin receptor isoform in breast cancer biology.

cancer biology↗

Impaired Lung BCAA Metabolism Promotes Ferroptosis and Resultant Pulmonary Arterial Hypertension-Associated Hepatopathy

BackgroundDysregulated branched chain amino acid (BCAA) homeostasis occurs in pulmonary arterial hypertension (PAH) as BCAA metabolites accumulate and cause metabolic alterations in pulmonary artery smooth muscle cells (PASMC). In other cells, altered BCAA metabolism promotes ferroptosis, a PAH-inducing metabolic pathway. However, the interplay between BCAAs, lung ferroptosis, and PAH is unexplored, as is the impact of PAH severity on liver molecular regulation, a key unknown as recent clinical data highlight the importance of the lung-right heart-liver axis in PAH outcomes. MethodsHuman metabolomic and transcriptomic studies examined BCAA metabolism and ferroptosis pathways. The relationship between BCAAs and ferroptotic-phenotypes in PASMCs was evaluated. Multi-omics and physiological analyses evaluated how modulation of BCAA catabolism impacted preclinical PAH multi-organ physiology. Confocal microscopy and proteomic analyses assessed hepatic alterations in human PAH. ResultsMetabolomic analyses identified alterations in BCAA metabolites across multiple physiological gradients in patients with pulmonary vascular disease. RNA sequencing demonstrated deficits in the BCAA catabolic and ferroptosis pathways in PAH lungs and smooth muscle cells. In vitro, excess BCAAs induced mitochondrial fragmentation, reactive oxygen species generation, and lipid peroxidation in PASMC. Moreover, BCAAs promoted PASMC death, which ferrostatin-1, a ferroptosis antagonist, rescued. BT2, a small-molecule inducer of BCAA catabolism, reduced PAH severity, improved RV function, and enhanced maximal exercise capacity in monocrotaline rats. BT2 blunted pro-ferroptotic changes in lung metabolites and proteins, and combatted peri-vascular complement deposition. In the liver, BT2 blocked mechanical shear stress phenotypes including hepatocyte nuclear expansion and restructured mitochondrial protein regulation and the metabolomic signature. Additionally, a low BCAA diet modestly combatted preclinical PAH severity. Finally, human PAH livers exhibited increased hepatocyte nuclear size and derangements in liver metabolic regulation. ConclusionsImpaired BCAA metabolism promotes PAH via ferroptosis. PAH severity is associated with hepatic pathological shear stress phenotypes and metabolic alterations, which are combatted by a BCAA-targeted therapy. Graphical Abstract/Summary Figure O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=152 SRC="FIGDIR/small/672819v1_ufig1.gif" ALT="Figure 1"> View larger version (55K): org.highwire.dtl.DTLVardef@1649980org.highwire.dtl.DTLVardef@199c40aorg.highwire.dtl.DTLVardef@1586fdorg.highwire.dtl.DTLVardef@15166c1_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗

Proteomic and Metabolomic Profiling Nominates Druggable Targets and Biomarkers forPulmonary Arterial Hypertension-Associated Myopathy and Exercise Intolerance

BackgroundPulmonary arterial hypertension (PAH) is a rare but debilitating condition that causes exercise intolerance and ultimately death. Skeletal muscle derangements contribute to depressed exercise capacity in PAH, but the mechanisms underlying muscle dysfunction including the changes in muscle biology based on fiber type are understudied. MethodsWe evaluated exercise capacity, muscle histopathology, mitochondrial density, mitochondrial proteomics, and metabolomics/lipidomics of quadriceps (predominately fast fibers) and soleus (predominately slow fibers) muscles in the monocrotaline (MCT) rat model of PAH. ResultsMCT rats exhibited impaired exercise capacity. Surprisingly, there were divergent atrophic and metabolic remodeling in the quadriceps and soleus muscles of MCT rats. In the quadriceps, there was a mild atrophic response only in type II fibers. In contrast, both type I and II fibers atrophied in the soleus. Both muscles exhibited fibrotic infiltration, but mitochondrial density was reduced in the quadriceps only. Mitochondrial proteomics and tissue metabolomics/lipidomics profiling demonstrated the two muscles exhibited distinct responses as the quadriceps had impairments in oxidative phosphorylation/fat metabolism and storage of triacylglycerides. However, the soleus showed signs of proteasome deficiencies and alterations in phosphatidylcholine/phosphatidylethanolamine homeostasis. Finally, profiling of metabolites/lipids in the serum identified potential novel biomarkers of exercise intolerance in PAH including the dimethylarginine pathway, cysteine, and triacylglycerides. ConclusionOur data suggests differential cachectic and metabolic responses occur in PAH-induced myopathy. We nominate mitochondrial biogenesis and proteasome activation as potential druggable targets for PAH-myopathy.

systems biology↗

Multi-omic Evaluations Nominate an ER-Mitochondrial Axis and Inflammatory Macrophage as Drivers of Right Atrial Dysfunction

BackgroundRight atrial (RA) dysfunction is an emerging risk factor for poor outcomes in pulmonary arterial hypertension, however the mechanisms underlying compromised RA function are understudied. ObjectivesMulti-omic analyses defined the cellular and molecular mediators associated with RA dysfunction in pulmonary artery banded (PAB) swine. Methods4-week-old castrated male Yorkshire pigs were subjected to PAB and aged six weeks to induce right heart failure. Cardiac MRI evaluated RA size and function. snRNAseq defined the cell-specific alterations in RA tissue. Mitochondrial proteomics and metabolomics analyses examined the metabolic alterations in RA samples. Inducible pluripotent stem cell-derived atrial cardiomyocytes (iPSC-ACM) were treated with tunicamycin to induce endoplasmic reticulum (ER) stress and mitochondrial structure and function were probed. ResultsPAB induced RA dilation/dysfunction and atrial cardiomyocyte hypertrophy. snRNAseq demonstrated PAB altered the cellular composition of the RA defined by increased inflammatory macrophages and an alteration of cardiomyocyte subpopulations. RA cardiomyocytes exhibited ER stress and mitochondrial metabolic enzyme dysregulation. PAB RAs, but not PAB right ventricles, had downregulation of branched chain amino acid degrading enzymes. Metabolomics profiling revealed BCAA and fatty acid metabolism were impaired in the dysfunctional RA. Tunicamycin-induced ER stress disrupted mitochondrial structure/function in iPSC-ACMs. ConclusionsMulti-omic evaluations demonstrate RA dysfunction is characterized by cardiomyocyte metabolic derangements due to ER dysregulation and an accumulation of pro-inflammatory macrophages.

physiology↗

Glycoprotein 130 Antagonism Counteracts Metabolic and Inflammatory Alterations to Enhance Right Ventricle Function in Pulmonary Artery Banded Pigs

BackgroundRight ventricular dysfunction (RVD) is a risk factor for death in multiple cardiovascular diseases, but RV-enhancing therapies are lacking. Inhibition of glycoprotein-130 (GP130) signaling with the small molecule SC144 improves RV function in rodent RVD via anti-inflammatory and metabolic mechanisms. However, SC144s efficacy and molecular effects in a translational large animal model of RVD are unknown. Methods4-week-old castrated male pigs underwent pulmonary artery banding (PAB). After 3 weeks, PAB pigs were randomized into 2 groups (daily injections of SC144 [2.2 mg/kg, PAB-SC144, n=5] or vehicle [PAB-Veh, n=5] for 3 weeks). Five age-matched pigs served as controls. Cardiac MRI quantified RV size/function. Right heart catheterization evaluated hemodynamics. Single-nucleus RNA sequencing delineated cell-type specific changes between experimental groups. Electron microscopy evaluated RV mitochondrial morphology. Phosphoproteomics identified dysregulated RV kinases. Lipidomics and metabolomics quantified lipid species and metabolites in RV tissue. Quantitative proteomics examined RV mitochondrial protein regulation. ResultsSC144 significantly improved RV ejection fraction (Control: 60{+/-}4%, PAB-Veh: 22{+/-}10%, PAB-SC144: 37{+/-}6%) despite similar RV afterload. Single-nucleus RNA sequencing demonstrated PAB-Veh pigs had lower cardiomyocyte and higher macrophage/lymphocyte/pericyte/endothelial cell abundances as compared to control, and many of these changes were blunted by SC144. SC144 combatted the downregulation of cardiomyocyte metabolic genes induced by PAB. Kinome enrichment analysis suggested SC144 counteracted RV mTORC1 activation. Correspondingly, SC144 rebalanced RV autophagy pathway proteins and improved mitochondrial morphology. Integrated lipidomics, metabolomics, and proteomics analyses revealed SC144 restored fatty acid metabolism. Finally, CellChat analysis revealed SC144 restored pericyte-endothelial cell cross-talk. ConclusionGP130 antagonism blunts elevated immune cell abundance, reduces pro-inflammatory gene transcription in macrophages and lymphocytes, rebalances autophagy and preserves fatty acid metabolism in cardiomyocytes, and restores endothelial cell and pericyte communication to improve RV function.

physiology↗