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Methner, C.

Publications and source records attributed to Methner, C..

3 recordsLinked to original sources

Deletion of GPR39 Prevents Pulmonary Arterial Hypertension by Attenuating Hypoxia-Induced Aberrant Signaling

Pulmonary arterial hypertension (PAH) is a devastating disease with poor outcome affecting relatively young subjects. The arachidonic acid (AA) metabolite, 15-hydroxyeicosatetraenoic acid (15-HETE), has been implicated in the pathogenesis of hypoxia-induced PAH. We tested the hypothesis that genetic deletion of GPR39, the target receptor for 15-HETE, will attenuate PAH. We subjected wild-type (WT) and GPR39 KO to 4 weeks of hypoxia versus normoxia, after which right ventricular and systemic hemodynamics were measured. Immunohistochemistry of lung was performed for pulmonary arteriolar thickness as well as capillary and pericyte density. Lung tissue was also analyzed for AA and 15-HETE levels as well as signaling events (mRNA and protein levels) downtream of GPR39 activation. Unlike WT mice, GPR39 KO mice did not develop PAH. They also exhibited markedly less pulmonary ateriolar remodeling and greater pulmonary capillary density. mRNA expression of genes in the Gq, Gsand G12/13 pathways were upregulated in the WT mice while GPR39 KO hypoxic showed no change in these genes. WT and not GPR39 KO hypoxic mice exhibited enhanced AKT phosphorylation. Downstream of the phosphatidylinositol 3-kinase-AKT pathway, endothelial nitric oxide synthetase was upregulated in both WT hypoxia and GPR39 KO hypoxia mice, while sonic hedgehog was upregulated only in WT hypoxia mice. We conclude that hypoxia-induced aberrant signaling is markedly attenuated with genetic deletion of GPR39, which is associated with less pulmonary arteriolar remodeling and greater capillary density, thus preventing PAH. These results suggest that pharmacological inhibition of GPR39 may offer a novel treatment for PAH.

physiology↗

Selective Pharmacological Blockade of GPR39 Markedly Reduces No Reflow and Infarct Volumes in a Rat Model of Acute Myocardial Infarction

Our aim was to determine whether selective pharmacological blockade of GPR39 by the novel drug, VC108, reduces no reflow (NRV) and infarct (INV) volumes during acute myocardial infarction (AMI). Immuocytochemistry and qPCR of isolated rat cardiac cells as well as immunohistochemistry and western blot of rat myocardium was performed for presence of GPR39. Rats underwent 1 h of coronary occlusion and 1 h of reperfusion. Groups 1 and 2 animals received drug/vehicle prior to or during coronary occlusion. Groups 3 and 4 received drug/vehicle 5 min prior to or 30 min after reperfusion. Readouts also included tissue pO2, hemodynamics, and wall thickening. In Groups 5 and 6 animals, drug was injected for measurement of plasma and tissue levels. Immunocytochemistry and qPCR of cells and immunohistochemistry and western blot of tissue revealed GPR39 expression in all cardiac cells analyzed as well as entire myocardial tissue. There was marked reduction in NRV and INV in groups 1 and 3 animals where both were measured and in Group 2 where INV was measured. In contrast, Group 4 animals failed to show reduction in NRV and INV with the drug. The reduction in NRV in all animals was associated with higher tissue pO2 in VC108 compared to vehicle treated animals. Similar results were obtained for INV in only in Group 2 animals. In Group 3 animals direct cardiomyocyte effect of VC108 was seen in myocardium as evidenced by reduced necrosis and apoptosis. We conclude that VC108 is very effective in reducing INV and NRV in an AMI model when given before coronary occlusion or just prior to reperfusion (the latter being clinically more relevant) both in male and female rats. This effect is not seen after reperfusion. VC108 acts by blocking GPR39, resulting in vasodilation through pericyte and VSMC relaxation. It also directly protects cardiomyocytes by preventing downstream effects of GPR39 stimulation. New and NoteworthyGPR39 is the receptor for 15-HETE, which is a vasoconstrictor with direct cardiomyocyte detrimental effects. Pharmacological inhibition of GPR39 by a novel inhibitor, VC108, reduces coronary no reflow after acute myocardial infarction by relaxing contracted pericytes surrounding capillaries, whereby increasing oxygen delivery. GPR39 inhibition also reduces necrosis and ferroptosis by interrupting aberrant downstream signaling responsible for cell death. Hence, pharmacological inhibition of GPR39 by VC108 offers a novel treatment of acute myocardial infarction. Graphical AbstractProposed mechanism of action of VC108 when given prior to and during coronary occlusion based on our results. The drug inhibits the action of the vasoconstrictor, 15-HETE, on GPR39. This causes vasodilation by relaxing contracted pericytes and increasing capillary perfusion, resulting in increased tissue pO2 and reduction in no reflow (left side). When tissue pO2 is not associated with necrosis, GPR39 inhibition by VC108 directly affects cardiomyocytes by inhibiting downstream signaling of GPR39 present in cardiomyocytes that can lead to cell injury and death. Hence, less necrosis and apoptosis are noted in VC108 versus vehicle treated animals. Created in https://BioRender.com. O_FIG O_LINKSMALLFIG WIDTH=137 HEIGHT=200 SRC="FIGDIR/small/699339v2_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@1058995org.highwire.dtl.DTLVardef@8bc0ceorg.highwire.dtl.DTLVardef@11f44e0org.highwire.dtl.DTLVardef@1e2e337_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

15-Hydroxyeicosatetraenoic Acid and GPR39 Together Orchestrate Coronary Autoregulation: A Comprehensive Metabolomic Analysis

BackgroundCoronary autoregulation is the ability of the normal heart to maintain constant coronary blood flow (CBF) over a wide range of coronary driving pressures (CDP). Despite being vital for survival, the mechanism of coronary autoregulation is unknown. We hypothesized that GPR39, present in vascular smooth muscle cells, together with its endogenous agonist 15- hydroxyeicosatetraenoic acid (15-HETE) orchestrate coronary autoregulation. MethodsWe created coronary stenoses of varying degrees in open-chest, anesthetized dogs where we measured CBF and CDP. In a subset of animals, coronary venous blood was sampled for eicosanoid, adenosine, endothelin-1, polyunsaturated fatty acids, and prostaglandins levels. Stenoses were recreated during intravenous administration of VC108, a specific GPR39 antagonist and systemic, pulmonary, and coronary hemodynamics measured. ResultsGPR39 was identified in coronary arterioles by immunohistochemistry and in heart tissue by western blot. In-vivo, 15-HETE correlated the best (r2=0.4851, p=0.0144) with CDP over the autoregulatory range using a linear mixed-effects model. Prior to administration of VC108, CBF did not change within the autoregulatory range. VC108 had no effect on systemic and pulmonary hemodynamics but increased CBF (p=0.02 versus vehicle) by decreasing coronary microvascular resistance (p=0.01 versus vehicle), indicating that GPR39 participates in control of normal coronary vascular tone. With VC108, coronary autoregulation was abolished and CBF became CDP dependent (r2=0.9562, p=0.0039). ConclusionGPR39 and its endogenous agonist 15-HETE together orchestrate coronary autoregulation when CDP is reduced. These novel findings provide a mechanism for coronary autoregulation and could direct pharmacological treatment of various coronary syndromes in humans. Clinical Perspectives What is new?The new finding from this study is that the vasoconstrictor, 15- hydroxyeicosatetraenoic acid (15-HETE), acting via the G-protein coupled receptor 39 (GPR39) participates in coronary arteriolar tone, and when perfusion pressure falls because of coronary stenosis, 15-HETE levels decrease causing vasodilation to maintain resting coronary blood flow. What are the Clinical implicationsThis mechanism, termed coronary autoregulation, causes patients with coronary artery disease to remain asymptomatic at rest until coronary stenosis is very severe. Pharmacological inhibition of GPR39 causes selective coronary vasodilation and could be used to treat coronary artery disease.

physiology↗