Intelligent Platelet Morphometry.
暂无分享,去创建一个
K. Goda | Y. Yatomi | Cheng Lei | A. Yasumoto | A. Isozaki | Ting-Hui Xiao | Yuqi Zhou | Tinghui Xiao
[1] P. Insel,et al. Inflammation and thrombosis in COVID-19 pathophysiology: proteinase-activated and purinergic receptors as drivers and candidate therapeutic targets , 2020, Physiological reviews.
[2] S. Pavord,et al. Platelet aggregates, a marker of severe COVID-19 disease , 2020, Journal of Clinical Pathology.
[3] Kristen M. Tecson,et al. Endothelial dysfunction contributes to COVID-19-associated vascular inflammation and coagulopathy. , 2020, Reviews in cardiovascular medicine.
[4] Jane A. Linderbaum,et al. Anticoagulation in COVID-19: A Systematic Review, Meta-analysis, and Rapid Guidance From Mayo Clinic , 2020, Mayo Clinic Proceedings.
[5] Fumihito Arai,et al. Intelligent image-activated cell sorting 2.0. , 2020, Lab on a chip.
[6] J. Weisel,et al. Use of electron microscopy to study platelets and thrombi , 2020, Platelets.
[7] Cheng Lei,et al. Intelligent classification of platelet aggregates by agonist type , 2020, eLife.
[8] Cassandra Willyard. Coronavirus blood-clot mystery intensifies , 2020, Nature.
[9] Sheng Yan,et al. Virtual optofluidic time-stretch quantitative phase imaging , 2020 .
[10] C. Beigelman-Aubry,et al. Pulmonary embolism in patients with COVID-19: Time to change the paradigm of computed tomography , 2020, Thrombosis Research.
[11] D. Gommers,et al. Incidence of thrombotic complications in critically ill ICU patients with COVID-19 , 2020, Thrombosis Research.
[12] Yuanliang Xie,et al. COVID-19 Complicated by Acute Pulmonary Embolism , 2020, Radiology. Cardiothoracic imaging.
[13] K. Yuen,et al. Clinical Characteristics of Coronavirus Disease 2019 in China , 2020, The New England journal of medicine.
[14] C. Ronco,et al. Coronavirus epidemic: preparing for extracorporeal organ support in intensive care , 2020, The Lancet Respiratory Medicine.
[15] M. Hickey,et al. Using imaging to study inflammatory platelet–leukocyte interactions in vivo , 2020, Platelets.
[16] Cheng Lei,et al. Virtual-freezing fluorescence imaging flow cytometry , 2020, Nature Communications.
[17] Sheng Yan,et al. Intelligent frequency-shifted optofluidic time-stretch quantitative phase imaging. , 2020, Optics express.
[18] M. Ranucci,et al. Sensitivity of Viscoelastic Tests to Platelet Function , 2020, Journal of clinical medicine.
[19] S. Jang,et al. Measuring three-dimensional dynamics of platelet activation using 3-D quantitative phase imaging , 2019 .
[20] Ke Yan,et al. Data augmentation using generative adversarial networks (CycleGAN) to improve generalizability in CT segmentation tasks , 2019, Scientific Reports.
[21] Fumihito Arai,et al. A practical guide to intelligent image-activated cell sorting , 2019, Nature Protocols.
[22] N. Mukai,et al. Cold storage conditions modify microRNA expressions for platelet transfusion , 2019, PloS one.
[23] J. Douketis,et al. Deep vein thrombosis: update on diagnosis and management , 2019, The Medical journal of Australia.
[24] O. Öktem,et al. Super-resolution microscopy can identify specific protein distribution patterns in platelets incubated with cancer cells. , 2019, Nanoscale.
[25] K. Shao,et al. Circulating platelet-neutrophil aggregates as risk factor for deep venous thrombosis , 2019, Clinical chemistry and laboratory medicine.
[26] P. Gresele,et al. Platelet function assays in diagnosis: an update , 2019, Expert review of hematology.
[27] Alexander P. Reiner,et al. Platelet Genomics , 2019, Platelets.
[28] M. Schlesinger. Role of platelets and platelet receptors in cancer metastasis , 2018, Journal of Hematology & Oncology.
[29] Yasuyuki Ozeki,et al. High-Speed Imaging Meets Single-Cell Analysis , 2018, Chem.
[30] Fumihito Arai,et al. Intelligent Image-Activated Cell Sorting , 2018, Cell.
[31] Xuefei He,et al. Quantifying Embolism: Label‐Free Volumetric Mapping of Thrombus Structure and Kinesis in a Microfluidic System with Optical Holography , 2018, Advanced Biosystems.
[32] J. Di Paola,et al. Genomics and transcriptomics of megakaryocytes and platelets: Implications for health and disease , 2018, Research and practice in thrombosis and haemostasis.
[33] Makoto Yamada,et al. High-throughput imaging flow cytometry by optofluidic time-stretch microscopy , 2018, Nature Protocols.
[34] Cheng Lei,et al. Optofluidic time-stretch microscopy: recent advances , 2018 .
[35] Yasuyuki Ozeki,et al. Ultrafast confocal fluorescence microscopy beyond the fluorescence lifetime limit , 2018 .
[36] K. Goda,et al. Optofluidic time-stretch quantitative phase microscopy. , 2017, Methods.
[37] D. Lynch,et al. Liquid Chromatography-High Resolution Mass Spectrometry Analysis of Platelet Frataxin as a Protein Biomarker for the Rare Disease Friedreich's Ataxia. , 2018, Analytical chemistry.
[38] S. Ramström,et al. Platelet subpopulations remain despite strong dual agonist stimulation and can be characterised using a novel six-colour flow cytometry protocol , 2018, Scientific Reports.
[39] Cheng Lei,et al. Label-free detection of cellular drug responses by high-throughput bright-field imaging and machine learning , 2017, Scientific Reports.
[40] Fumihito Arai,et al. On-chip cell sorting by high-speed local-flow control using dual membrane pumps. , 2017, Lab on a chip.
[41] Cheng Lei,et al. Label-free detection of aggregated platelets in blood by machine-learning-aided optofluidic time-stretch microscopy. , 2017, Lab on a chip.
[42] W. Tsai,et al. Platelet rich plasma releasate promotes proliferation of skeletal muscle cells in association with upregulation of PCNA, cyclins and cyclin dependent kinases , 2017, Platelets.
[43] P. Nurden,et al. Diagnosis of inherited platelet disorders on a blood smear: a tool to facilitate worldwide diagnosis of platelet disorders , 2017, Journal of thrombosis and haemostasis : JTH.
[44] M. Holinstat. Normal platelet function , 2017, Cancer and Metastasis Reviews.
[45] P. Giorgini,et al. Gender differences in cardiovascular prophylaxis: Focus on antiplatelet treatment , 2017, Pharmacological research.
[46] L. Freeman,et al. Current Status of Ventilation-Perfusion Scintigraphy for Suspected Pulmonary Embolism. , 2017, AJR. American journal of roentgenology.
[47] Sylvain Gigan,et al. Optical microscopy aims deep , 2017, Nature Photonics.
[48] G. Fritsma,et al. Whole Blood Platelet Aggregometry. , 2017, Methods in molecular biology.
[49] M. Bijak,et al. Platelets miRNA as a Prediction Marker of Thrombotic Episodes , 2016, Disease markers.
[50] A. Hvas. Platelet Function in Thrombosis and Hemostasis , 2016, Seminars in Thrombosis & Hemostasis.
[51] A. Michelson,et al. Platelet Physiology , 2016, Seminars in Thrombosis and Hemostasis.
[52] Cheng Lei,et al. Optical time-stretch imaging: Principles and applications , 2016 .
[53] Guy Courbebaisse,et al. Quantitative analysis of platelets aggregates in 3D by digital holographic microscopy. , 2015, Biomedical optics express.
[54] A. Franco,et al. Platelets at the interface of thrombosis, inflammation, and cancer. , 2015, Blood.
[55] A. de Roos,et al. The role of computed tomography in the diagnosis of acute and chronic pulmonary embolism. , 2015, Diagnostic and interventional radiology.
[56] L. Mauri,et al. Extended duration dual antiplatelet therapy and mortality: a systematic review and meta-analysis , 2015, The Lancet.
[57] Braunwald,et al. Twelve or 30 months of dual antiplatelet therapy after drug-eluting stents. , 2014, The New England journal of medicine.
[58] J. Dinardo,et al. TEG and ROTEM: Technology and clinical applications , 2014, American journal of hematology.
[59] Vijay K. Gombar,et al. Quantitative Structure − Activity Relationship Models of Clinical Pharmacokinetics : Clearance and Volume of Distribution , 2013 .
[60] K. Goda,et al. Dispersive Fourier transformation for fast continuous single-shot measurements , 2013, Nature Photonics.
[61] B. Engelmann,et al. Thrombosis as an intravascular effector of innate immunity , 2012, Nature Reviews Immunology.
[62] Owen J T McCarty,et al. Quantification of volume, mass, and density of thrombus formation using brightfield and differential interference contrast microscopy , 2013, Journal of biomedical optics.
[63] Geoffrey E. Hinton,et al. ImageNet classification with deep convolutional neural networks , 2012, Commun. ACM.
[64] W. Kahr,et al. Diagnosis of Platelet Disorders by Electron Microscopy , 2012 .
[65] Deepak L. Bhatt,et al. Prasugrel versus clopidogrel for acute coronary syndromes without revascularization. , 2012, The New England journal of medicine.
[66] Bahram Jalali,et al. High-throughput single-microparticle imaging flow analyzer , 2012, Proceedings of the National Academy of Sciences.
[67] G. Raff,et al. SCCT guidelines on radiation dose and dose-optimization strategies in cardiovascular CT. , 2011, Journal of cardiovascular computed tomography.
[68] B. Jalali,et al. Serial time-encoded amplified imaging for real-time observation of fast dynamic phenomena , 2009, Nature.
[69] G. Davı̀,et al. Platelet activation and atherothrombosis. , 2007, The New England journal of medicine.
[70] Domenico Ribatti,et al. Giulio Bizzozero and the discovery of platelets. , 2007, Leukemia research.
[71] Zahi A Fayad,et al. Atherothrombosis and high-risk plaque: Part II: approaches by noninvasive computed tomographic/magnetic resonance imaging. , 2005, Journal of the American College of Cardiology.
[72] Michael V Sefton,et al. Biomaterial-associated thrombosis: roles of coagulation factors, complement, platelets and leukocytes. , 2004, Biomaterials.
[73] V. Fuster,et al. New understanding, diagnosis, and prognosis of atherothrombosis and the role of imaging. , 2003, The American journal of cardiology.
[74] Zaverio M. Ruggeri,et al. Platelets in atherothrombosis , 2002, Nature Medicine.
[75] Yukio Ozaki,et al. Small aggregates of platelets can be detected sensitively by a flow cytometer equipped with an imaging device: mechanisms of epinephrine-induced aggregation and antiplatelet effects of beraprost. , 2002, Cytometry.
[76] Samar K. Das. Specimen Preparation for Electron Microscopy , 1995 .
[77] S. Harwig,et al. Plasma β-Thromboglobulin, Platelet Factor 4, Fibrinopeptide A, and Other Hemostatic Functions During Improved, Short-Term Glycemic Control in Diabetes Mellitus , 1984, Diabetes Care.