bioRxiv Science⌕ Search

Biology subjects

Chadt, A.

Publications and source records attributed to Chadt, A..

4 recordsLinked to original sources

High-resolution respirometry reveals altered mammalian tissue ketone body oxidation in different cardiometabolic diseases

Background and aimsReduced mitochondrial function has been implicated in metabolic disorders like type 2 diabetes (T2D), obesity, and metabolic dysfunction-associated steatotic liver disease (MASLD), which are tightly linked to insulin resistance and impaired metabolic flexibility. However, the contribution of the ketone bodies (KBs) {beta}-hydroxybutyrate (HBA) and acetoacetate (ACA) as substrates for mitochondrial oxidative phosphorylation (OXPHOS) in these insulin resistant states remains unclear. MethodsTargeted high-resolution respirometry protocols were applied to detect the differential contribution of HBA and ACA to OXPHOS capacity in heart, skeletal muscle, kidney, and liver of distinct human and mouse cohorts with T2D, obesity, and MASLD. ResultsIn humans with T2D, KB-driven mitochondrial OXPHOS capacity was [~]30% lower in the heart (p<0.05) and skeletal muscle (p<0.05) compared to non-diabetic controls. The relative contribution of KB to maximal OXPHOS capacity in T2D was also lower in both the heart ([~]25%, p<0.05) and skeletal muscle ([~]50%, p<0.05). Similarly, in kidney cortex from high-fat diet-induced obese mice, both the absolute and relative contribution of KB to OXPHOS capacity was [~]15% lower (p<0.05). Finally, hepatic HBA-driven mitochondrial OXPHOS capacity was 29% lower (p<0.05) in obese humans with MASLD compared to humans without MASLD. ConclusionsMitochondrial KB-driven OXPHOS capacity is impaired in insulin resistant states in various organs in absolute and relative terms, likely reflecting impaired mitochondrial metabolic flexibility. Our data suggest that KB respirometry can provide a sensitive readout of impaired mitochondrial function in diabetes, obesity, and MASLD.

cell biology↗

A Novel 3D Imaging Approach for Quantification of GLUT4 Levels across the Intact Myocardium

Cellular heterogeneity is a well-accepted feature of tissues, and both transcriptional and metabolic diversity have been revealed by numerous approaches, including optical imaging. However, the high magnification objective lenses needed for high-resolution imaging provides information from only small layers of tissue, which can result in poor cell statistics. There is therefore an unmet need for an imaging modality that can provide detailed molecular and cellular insight within intact tissue samples in 3D. Using GFP-tagged GLUT4 as proof of concept, we present here a novel optical mesoscopy approach that allows precise measurement of the spatial location of GLUT4 within specific anatomical structures across the myocardium in ultrathick sections (5 mm x 5 mm x 3 mm) of intact mouse heart. We reveal distinct GLUT4 distribution patterns across cardiac walls and highlight specific changes in GLUT4 expression levels in response to high fat diet-feeding, and we identify gender-dependent differences in expression patterns. This method is applicable to any target that can be labelled for light microscopy, and to other complex tissues when organ structure needs to be considered simultaneously with cellular detail. SUMMARY STATEMENTHere we present a novel 3D optical mesoscopy approach that allows the study of both GLUT4 protein expression levels and structural distribution within ultrathick sections of intact murine hearts, in response to high fat diet-feeding.

cell biology↗

Crosstalk between thrombospondin-1 and CD36 modulates platelet-RBC interaction limiting thrombosis and abdominal aneurysm formation

Red blood cells (RBCs) contribute to hemostasis and thrombosis by interaction with platelets via the FasL-FasR pathway to induce procoagulant activity and thrombin formation. Here, we identified a novel mechanism of platelet-RBC interaction via the CD36-thrombospondin-1 (TSP-1) signaling pathway, which is important in thrombus formation and the recruitment of RBCs to collagen-adherent platelets. Platelet-released TSP-1 can bind to CD36 at the RBC membrane to enhance procoagulant activity and to increase the activation of integrin IIb{beta}3, which represents an additional ligand for erythroid FasR, suggesting that both mechanisms of platelet-RBC interaction act in concert to propagate thrombus formation. In patients with abdominal aortic aneurysm (AAA), enhanced procoagulant activity of RBCs and platelets is accompanied by elevated exposure of TSP-1 and FasL at the platelet surface and accumulation of TSP-1 in the aortic wall and the intraluminal thrombus, suggesting that platelet-RBC interaction plays an important role in AAA pathology. TSP-1-deficient mice are protected against aortic diameter expansion in an experimental model of AAA, highlighting the crucial role of the CD36-TSP-1 axis in AAA. Thus, interfering with platelet-RBC interaction may be a promising therapeutic approach to reduce pro-coagulant activity and preserve AAA patients from surgery or rupture.

pathology↗

Inhibition of proline-rich-tyrosine kinase 2 restores cardioprotection by remote ischemic preconditioning in type 2 diabetes mellitus

BackgroundEndothelial function and cardioprotection through remote ischemic preconditioning (rIPC) are severely impaired in type 2 diabetes mellitus (T2DM). Proline-rich tyrosine kinase 2 (Pyk2), a downstream target of the insulin receptor, reduces endothelial nitric oxide synthase (eNOS) activity. Therapeutic options to rescue cardioprotection in T2DM and improve outcomes after acute myocardial infarction (AMI) are lacking. We hypothesized that vascular endothelium contributes to rIPC, and that inhibition of Pyk2 restores cardioprotection in T2DM through modulation of eNOS, thus limiting infarct size. MethodsNew Zealand Obese (NZO) mice were used as a polygenic model of T2DM. Effects of Pyk2-inhibition on endothelial function, remote ischemic preconditioning (rIPC), and infarct size (IS) after ischemia/reperfusion (I/R) were compared in NZO, eNOS KO, and C57Bl/6 (Bl6) mice. Plasma derived from mice and individuals with or without T2DM at baseline and after rIPC was transferred to isolated hearts and aortic rings to assess the effects of Pyk2-inhibition on remote tissue protection. ResultsTransfer experiments with plasma drawn from non-diabetic humans and mice exposed to rIPC demonstrate that endothelium-dependent signals for remote tissue protection are conveyed by plasma. Key features reflecting the glucometabolic spectrum in T2DM were detected in NZO mice, including hyperinsulinemia, insulin resistance, obesity, and impaired glucose tolerance. Similar to T2DM patients, these mice also revealed endothelial dysfunction with decreased flow-mediated dilation (FMD), reduced circulating nitrite levels, elevated arterial blood pressure, and larger infarct size after I/R. Pyk2 increased the phosphorylation of eNOS on its inhibitory site (Tyr656). Cardioprotective effects by rIPC were lost in NZO mice. Inhibition of Pyk2 restored endothelial function and rescued endothelium-dependent cardioprotection after rIPC displayed by lower IS and improved LV function post I/R. ConclusionEndothelial function contributing to remote tissue protection is severely impaired in diabetes mellitus. Proline-rich tyrosine kinase 2 is a novel target to rescue cardioprotection through endothelium-dependent remote ischemic preconditioning, advocating its role in limiting infarct size in diabetes mellitus. Clinical perspective What is new?O_LIVascular endothelium contributes to remote tissue protection in ischemic preconditioning, which is severely impaired in diabetes C_LIO_LIProline-rich tyrosine kinase 2 reduces eNOS-activity, causes endothelial dysfunction, and impairs cardioprotection through ischemic preconditioning C_LIO_LIInhibition of proline-rich tyrosine kinase 2 restores eNOS activity, endothelial function, and cardioprotective effects of remote ischemic preconditioning limiting infarct size in an experimental model of diabetes. C_LI What are the clinical implications?O_LIProper endothelial function is cirtical to maintain cardiovascular health. Endothelial dysfunction contributes to impaired remote tissue protection in diabetes. C_LIO_LIThese data demonstrate for the first time that endothelium-dependent cardioprotection in myocardial ischemia/reperfusion through remote ischemic preconditioning can be restored in diabetes. C_LIO_LIProline-rich tyrosine kinase 2 is a novel target to restore endothelium-dependent remote cardioprotection to improve the outcome of diabetic patients with acute myocardial infarction. C_LI

physiology↗