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Biology subjects

Elvers, M.

Publications and source records attributed to Elvers, M..

6 recordsLinked to original sources

Platelets induce cell apoptosis of cardiac cells via FasL after acute myocardial infarction

Acute myocardial infarction (AMI) is one of the leading causes of death worldwide. Cell apoptosis in the myocardium plays an important role in ischemia and reperfusion (I/R) injury, leading to cardiac damage and dysfunction. Platelets are major players of hemostasis and play a crucial role in vessel occlusion, inflammation and cardiac remodeling after I/R. Here, we studied the impact of platelets on cell apoptosis in the myocardium using a close-chest mouse model of AMI. We found caspase-3 positive resident cardiac cells while leukocytes were negative for caspase-3. Using two different mouse models of thrombocytopenia, we detected a significant reduction of caspase-3 positive cells in the infarct border zone after I/R injury. Further, we identified platelet FasL to induce cell apoptosis via the extrinsic pathway of Fas receptor activation of target cells. Mechanistically, hypoxia triggers platelet adhesion to FasR suggesting that platelet induced apoptosis is elevated after I/R. Platelet-specific FasL knock-out mice showed reduced Bax and BcL-2 expression suggesting that platelets modulate the intrinsic and the extrinsic pathway of apoptosis leading to reduced infarct size after myocardial I/R injury. Therefore, platelet induced cardiac damage needs to be taken into account while optimizing antithrombotic/antiplatelet strategies for patients with AMI.

molecular 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↗

Collagen receptor GPVI-mediated platelet activation and pro-coagulant activity aggravates inflammation and aortic wall remodelling in abdominal aortic aneurysm

Platelets play an important role in cardio- and cerebrovascular diseases. Abdominal aortic aneurysm (AAA) is a highly lethal, atherosclerotic-related disease with characteristic features of progressive dilatation of the abdominal aorta and degradation of the vessel wall accompanied by chronic inflammation. Platelet activation and pro-coagulant activity play a decisive role in the AAA pathology as they might trigger AAA development in both mice and men. The present study investigated the impact of the major platelet collagen receptor glycoprotein (GP)VI in cellular processes underlying AAA initiation and progression. Genetic deletion of GPVI offered protection of mice against aortic diameter expansion in experimental AAA. Mechanistically, GPVI deficiency resulted in decreased inflammation with reduced infiltration of neutrophils and platelets into the aortic wall. Further, remodelling of the aortic wall was improved in absence of GPVI, indicated by reduced MMP2/9 and OPN plasma levels and an enhanced -SMA content within the aortic wall, accompanied by reduced cell apoptosis. As a result, an elevation in intima/media thickness and elastin content were observed in GPVI-deficient PPE mice, coursing a significantly reduced aortic diameter expansion and reduced aneurysm incidence. In AAA patients, enhanced plasma levels of soluble GPVI and fibrin, besides fibrin accumulation within the intraluminal thrombus (ILT) suggested that GPVI might serve as a biomarker and mediator in fibrin-supported stabilization of the ILT. In conclusion, our results emphasize the potential need for a GPVI-targeted anti-platelet therapy to reduce AAA initiation and progression, as well as to protect AAA patients from aortic rupture. Translational perspectiveAbdominal aortic aneurysm (AAA) is an atherosclerotic-related, cardiovascular disease (CVD) with high mortality. The impact of platelets in different cellular processes underlying AAA initiation and progression remains unclear.Therefore, we analysed the role of the major platelet collagen receptor GPVI in the pathogenesis of AAA. Results from platelet depleted mice and patients with AAA revealed a significant contribution of GPVI to the inflammatory response and remodelling process of the aorta. Further, elevated accumulation of fibrin, a recently identified ligand of GPVI in the intraluminal thrombus (ILT) and in the plasma of AAA patients, suggests that GPVI binding to fibrin plays a role in ILT formation and probably stabilization of the abdominal aorta. Furthermore, increased levels of sGPVI suggest that GPVI might serve as a clinical biomarker for AAA. Thus, therapeutic targeting of GPVI-mediated platelet activation might be an effective anti-thrombotic strategy for AAA patients.

cell biology↗

Cryo-EM Structures of Amyloid-β Fibrils from Alzheimer's Disease Mouse Models

The development of novel drugs for Alzheimers disease has proven difficult, with a high failure rate in clinical trials. Typically, transgenic mice displaying amyloid-{beta} peptide brain pathology are used to develop therapeutic options and to test their efficacy in preclinical studies. However, the properties of A{beta} in such mice have not been systematically compared to A{beta} from the patient brains. Here, we determined the structures of nine ex vivo A{beta} fibrils from six different mouse models by cryo-EM. We found novel A{beta} fibril structures in the APP/PS1, ARTE10, and tg-SwDI models, whereas the human familial type II fibril fold was found in the ARTE10, tg-APPSwe, and APP23 models. The tg-APPArcSwe mice showed an A{beta} fibril whose structure resembles the human sporadic type I fibril. These structural elucidations are key to the selection of adequate mouse models for the development of novel plaque-targeting therapeutics and PET imaging tracers. One Sentence SummaryCryo-EM structures of A{beta} fibrils extracted from brains of mouse models used for Alzheimers disease preclinical research are presented.

neuroscience↗

Platelets modulate inflammation and matrix remodeling in abdominal aortic aneurysm

Abdominal aortic aneurysm (AAA) is a highly lethal disease with progressive dilatation of the abdominal aorta accompanied by degradation and remodelling of the vessel wall due to chronic inflammation. Platelets play an important role in cardiovascular diseases but their role in AAA is poorly understood. The present study revealed that platelets play a crucial role in promoting AAA through modulation of inflammation and degradation of the ECM. They are responsible for the up-regulation of SPP1 (osteopontin, OPN) gene expression in macrophages and aortic tissue, which triggers inflammation and remodeling but also platelet adhesion and migration into the abdominal aortic wall and the intraluminal thrombus (ILT). Further, enhanced platelet activation and pro-coagulant activity results in elevated gene expression of various cytokines, Mmp9 and Col1a1 in macrophages and Il-6 and Mmp9 in fibroblasts. Enhanced platelet activation and pro-coagulant activity was also detected in AAA patients. Further, we detected platelets and OPN in the vessel wall and in the ILT of patients who underwent open repair of AAA. Platelet depletion in experimental murine AAA reduced inflammation and ECM remodeling, with reduced elastin fragmentation and aortic diameter expansion. Of note, OPN co-localized with platelets, suggesting a potential role of OPN for the recruitment of platelets into the ILT and the aortic wall. In conclusion, our data strongly supports the potential relevance of anti-platelet therapy to reduce AAA progression and rupture in AAA patients. Translational perspectiveAbdominal aortic aneurysm (AAA) is a severe cardiovascular disease (CVD) with high mortality. Since the role of platelets is unclear, we explored platelet-mediated processes in the pathogenesis of AAA. Results from platelet depleted mice and patients with AAA revealed that platelets modulate inflammatory and stiffness-related gene expression of macrophages and fibroblasts. Further, platelets induce the release of osteopontin important for the recruitment of platelets to the aortic wall and to the intraluminal thrombus (ILT). Consequently, platelet depletion significantly reduced aneurysm growth. Thus, therapeutic targeting of platelet activation might be crucial for the treatment of patients to reduce AAA formation and progression.

molecular biology↗

Platelet pannexin-1 channels modulate inflammation during abdominal aortic aneurysm formation

Abdominal aortic aneurysm (AAA) is a common disease and highly lethal if untreated. The progressive dilatation of the abdominal aorta is accompanied by degradation and remodeling of the vessel wall due to chronic inflammation. Pannexins represent anion-selective channels and play a crucial role in non-vesicular ATP release to amplify paracrine signaling in cells. Thus, pannexins are involved in many (patho-) physiological processes. Recently, Panx1 channels were identified to be significantly involved in AAA formation through endothelial derived Panx1 regulated inflammation and aortic remodeling. In platelets, Panx1 becomes activated following activation of glycoprotein (GP)VI. Since platelets play a role in cardiovascular diseases including AAA, we analyzed the contribution of platelet Panx1 in the progression of AAA. We detected enhanced Panx1 plasma levels in AAA patients. In experimental AAA using the pancreatic porcine elastase (PPE) mouse model, a major contribution of platelet Panx1 channels in platelet activation, pro-coagulant activity of platelets and platelet-mediated inflammation has been detected. In detail, platelets are important for the migration of neutrophils into the aortic wall induced by direct cell interaction and by activation of endothelial cells. Decreased platelet activation and inflammation did not affect ECM remodeling or wall thickness in platelet-specific Panx1 knock-out mice following PPE surgery. Thus, aortic diameter expansion at different time points after elastase infusion of the aortic wall was unaltered in platelet-specific Panx1 deficient mice suggesting that the modulation of inflammation alone does not affect AAA formation and progression. In conclusion, our data strongly supports the role of platelets in inflammatory responses in AAA via Panx1 channels and adds important knowledge about the significance of platelets in AAA pathology important for the establishment of an anti-platelet therapy for AAA patients.

cell biology↗