Circulating cellular clusters are associated with thrombotic complications and clinical outcomes in COVID-19
暂无分享,去创建一个
G. Karniadakis | G. Velmahos | G. Frydman | Guansheng Li | H. Kaafarani | R. Rosovsky | Jarone Lee | E. V. Van Cott | He Li | L. Naar | Ting Ye | Ander Dorken-Gallastegi | Ronald G. Tompkins | Xuejin Li | Yao Lee | David Gregory | A. Dorken-Gallastegi
[1] Jonathan A. Cooper,et al. Association of COVID-19 With Major Arterial and Venous Thrombotic Diseases: A Population-Wide Cohort Study of 48 Million Adults in England and Wales , 2022, Circulation.
[2] G. Karniadakis,et al. Multiphysics and multiscale modeling of microthrombosis in COVID-19 , 2022, PLoS Comput. Biol..
[3] Christopher M. Horvat,et al. Therapeutic Anticoagulation with Heparin in Critically Ill Patients with Covid-19 , 2021, The New England journal of medicine.
[4] Christopher M. Horvat,et al. Therapeutic Anticoagulation with Heparin in Noncritically Ill Patients with Covid-19 , 2021, The New England journal of medicine.
[5] Robert A. Campbell,et al. Mechanisms of immunothrombosis in COVID-19 , 2021, Current opinion in hematology.
[6] A. Lee,et al. Immunothrombosis: a COVID‐19 concerto , 2021, British journal of haematology.
[7] Á. Avezum,et al. Therapeutic versus prophylactic anticoagulation for patients admitted to hospital with COVID-19 and elevated D-dimer concentration (ACTION): an open-label, multicentre, randomised, controlled trial , 2021, The Lancet.
[8] Dave L Dixon,et al. Endothelial dysfunction and immunothrombosis as key pathogenic mechanisms in COVID-19 , 2021, Nature Reviews Immunology.
[9] T. van der Poll,et al. Platelets are Hyperactivated but Show Reduced Glycoprotein VI Reactivity in COVID-19 Patients , 2021, Thrombosis and Haemostasis.
[10] S. Orfanos,et al. ICU Admission Levels of Endothelial Biomarkers as Predictors of Mortality in Critically Ill COVID-19 Patients , 2021, Cells.
[11] J. Liao,et al. Platelet-leukocyte aggregates – a predictor for acute kidney injury after cardiac surgery , 2021, Renal Failure.
[12] E. de Jonge,et al. Risk of thrombotic complications in influenza versus COVID‐19 hospitalized patients , 2020, Research and Practice in Thrombosis and Haemostasis.
[13] Chun Jimmie Ye,et al. Global Absence and Targeting of Protective Immune States in Severe COVID-19 , 2020, bioRxiv.
[14] H. Pavenstädt,et al. Microvascular dysfunction in COVID-19: the MYSTIC study , 2020, Angiogenesis.
[15] K. Bosma,et al. Endothelial Injury and Glycocalyx Degradation in Critically Ill Coronavirus Disease 2019 Patients: Implications for Microvascular Platelet Aggregation , 2020, Critical care explorations.
[16] M. Di Nisio,et al. Venous thromboembolism in patients with COVID-19: Systematic review and meta-analysis , 2020, Thrombosis Research.
[17] G. Lippi,et al. Platelets Promote Thromboinflammation in SARS-CoV-2 Pneumonia , 2020, Arteriosclerosis, thrombosis, and vascular biology.
[18] Dimitrios P. Papageorgiou,et al. Quantifying Fibrinogen-Dependent Aggregation of Red Blood Cells in Type 2 Diabetes Mellitus , 2020, Biophysical journal.
[19] C. Righy,et al. Platelet activation and platelet-monocyte aggregate formation trigger tissue factor expression in patients with severe COVID-19 , 2020, Blood.
[20] C. D. Dela Cruz,et al. Endotheliopathy in COVID-19-associated coagulopathy: evidence from a single-centre, cross-sectional study , 2020, The Lancet Haematology.
[21] S. Pittaluga,et al. Megakaryocytes and platelet-fibrin thrombi characterize multi-organ thrombosis at autopsy in COVID-19: A case series , 2020, EClinicalMedicine.
[22] Robert A. Campbell,et al. Platelet gene expression and function in patients with COVID-19 , 2020, Blood.
[23] A. Rosenberg,et al. Lessons Learned to Date on COVID-19 Hyperinflammatory Syndrome: Considerations for Interventions to Mitigate SARS-CoV-2 Viral Infection and Detrimental Hyperinflammation , 2020, Frontiers in Immunology.
[24] M. Fabritius,et al. Neutrophils promote venular thrombosis by shaping the rheological environment for platelet aggregation , 2019, Scientific Reports.
[25] R. Schiffelers,et al. Red Blood Cells: Chasing Interactions , 2019, Front. Physiol..
[26] S. D. De Meyer,et al. Neutrophil Extracellular Traps in Arterial and Venous Thrombosis , 2019, Seminars in Thrombosis and Hemostasis.
[27] D. Talmor,et al. Early Intravascular Events Are Associated with Development of Acute Respiratory Distress Syndrome. A Substudy of the LIPS‐A Clinical Trial , 2018, American journal of respiratory and critical care medicine.
[28] G. Karniadakis,et al. Quantifying Platelet Margination in Diabetic Blood Flow , 2018, bioRxiv.
[29] A. Assinger,et al. Measuring and interpreting platelet-leukocyte aggregates , 2018, Platelets.
[30] Prosenjit Bagchi,et al. Direct Numerical Simulation of Cellular-Scale Blood Flow in 3D Microvascular Networks. , 2017, Biophysical journal.
[31] J. Mcfadyen,et al. Neutrophil macroaggregates promote widespread pulmonary thrombosis after gut ischemia , 2017, Science Translational Medicine.
[32] S. Orfanos,et al. Immunothrombosis in Acute Respiratory Distress Syndrome: Cross Talks between Inflammation and Coagulation , 2016, Respiration.
[33] S. Massberg,et al. Blood coagulation in immunothrombosis-At the frontline of intravascular immunity. , 2016, Seminars in immunology.
[34] George Em Karniadakis,et al. Sub-cellular modeling of platelet transport in blood flow through microchannels with constriction. , 2016, Soft matter.
[35] Y. Otomo,et al. Local hemostasis, immunothrombosis, and systemic disseminated intravascular coagulation in trauma and traumatic shock , 2015, Critical Care.
[36] B. Reglin,et al. Metabolic Control of Microvascular Networks: Oxygen Sensing and Beyond , 2014, Journal of Vascular Research.
[37] E. Pretorius,et al. Erythrocyte–Platelet Interaction in Uncomplicated Pregnancy , 2014, Microscopy and Microanalysis.
[38] L. Jagodzinski,et al. Platelets and Erythrocyte-Bound Platelets Bind Infectious HIV-1 in Plasma of Chronically Infected Patients , 2013, PLoS ONE.
[39] George E Karniadakis,et al. Probing vasoocclusion phenomena in sickle cell anemia via mesoscopic simulations , 2013, Proceedings of the National Academy of Sciences.
[40] B. Engelmann,et al. Thrombosis as an intravascular effector of innate immunity , 2012, Nature Reviews Immunology.
[41] M. Radic,et al. Neutrophil Extracellular Traps: Double-Edged Swords of Innate Immunity , 2012, Journal of Immunology.
[42] G. Karniadakis,et al. Systematic coarse-graining of spectrin-level red blood cell models. , 2010, Computer Methods in Applied Mechanics and Engineering.
[43] Paul Kubes,et al. Intravascular immunity: the host–pathogen encounter in blood vessels , 2009, Nature Reviews Immunology.
[44] N. Williams,et al. Platelet–leucocyte aggregates form in the mesenteric vasculature in patients with ulcerative colitis , 2008, European journal of gastroenterology & hepatology.
[45] B. Nilsson,et al. Complement and coagulation: strangers or partners in crime? , 2007, Trends in immunology.
[46] G. Pamuk,et al. Increased circulating platelet–neutrophil, platelet–monocyte complexes, and platelet activation in patients with ulcerative colitis: A comparative study , 2006, American journal of hematology.
[47] R. Newson. Confidence Intervals for Rank Statistics: Somers’ D and Extensions , 2006 .
[48] A. Pries,et al. Structural adaptation and stability of microvascular networks: theory and simulations. , 1998, American journal of physiology. Heart and circulatory physiology.
[49] C. Alpers,et al. A role for P-selectin in neutrophil and platelet infiltration in immune complex glomerulonephritis. , 1997, Journal of the American Society of Nephrology : JASN.
[50] T. Wun,et al. Platelet activation and platelet-erythrocyte aggregates in patients with sickle cell anemia. , 1997, The Journal of laboratory and clinical medicine.
[51] R. Hochmuth,et al. Role of the membrane cortex in neutrophil deformation in small pipets. , 1994, Biophysical Journal.
[52] E. Elson,et al. Retention of leukocytes in capillaries: role of cell size and deformability. , 1990, Journal of applied physiology.
[53] T F Sherman,et al. On connecting large vessels to small. The meaning of Murray's law , 1981, The Journal of general physiology.
[54] S Chien,et al. Morphometry of human leukocytes. , 1980, Blood.
[55] H. H. Lipowsky,et al. The Distribution of Blood Rheological Parameters in the Microvasculature of Cat Mesentery , 1978, Circulation research.
[56] Sameer Jadhav,et al. A 3-D computational model predicts that cell deformation affects selectin-mediated leukocyte rolling. , 2005, Biophysical journal.
[57] M. J. Broekman,et al. Platelet-erythrocyte interactions enhance IIb 3 integrin receptor activation and P-selectin expression during platelet recruitment: down-regulation by aspirin ex vivo , 2002 .