Key factors behind autofluorescence changes caused by ablation of cardiac tissue
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[1] Huda Asfour,et al. A Percutaneous Catheter for In Vivo Hyperspectral Imaging of Cardiac Tissue: Challenges, Solutions and Future Directions , 2020, Cardiovascular Engineering and Technology.
[2] Huda Asfour,et al. Application of unsupervised learning to hyperspectral imaging of cardiac ablation lesions , 2018, Journal of medical imaging.
[3] Huda Asfour,et al. Optimization of wavelength selection for multispectral image acquisition: a case study of atrial ablation lesions. , 2018, Biomedical optics express.
[4] N. Sarvazyan,et al. Hyperspectral imaging for label-free in vivo identification of myocardial scars and sites of radiofrequency ablation lesions. , 2017, Heart rhythm.
[5] N. Sarvazyan,et al. Anatomical and Optical Properties of Atrial Tissue: Search for a Suitable Animal Model , 2017, Cardiovascular Engineering and Technology.
[6] Huda Asfour,et al. Autofluorescence hyperspectral imaging of radiofrequency ablation lesions in porcine cardiac tissue , 2017, Journal of biophotonics.
[7] M. Kay,et al. Enzyme-dependent fluorescence recovery of NADH after photobleaching to assess dehydrogenase activity of isolated perfused hearts , 2017, Scientific Reports.
[8] N. Sarvazyan,et al. Seeing the Invisible: Revealing Atrial Ablation Lesions Using Hyperspectral Imaging Approach , 2016, PloS one.
[9] Bing Yu,et al. Monitoring of tissue optical properties during thermal coagulation of ex vivo tissues , 2016, Lasers in surgery and medicine.
[10] José Angel Cabrera,et al. Anatomical Basis for the Cardiac Interventional Electrophysiologist , 2015, BioMed research international.
[11] G. Bottiroli,et al. Autofluorescence Spectroscopy and Imaging: A Tool for Biomedical Research and Diagnosis , 2014, European journal of histochemistry : EJH.
[12] Daniel A. Gil,et al. Visualization of Epicardial Cryoablation Lesions Using Endogenous Tissue Fluorescence , 2014, Circulation. Arrhythmia and electrophysiology.
[13] David Schwartzman,et al. Morphological and mechanical examination of the atrial 'intima'. , 2013, Europace : European pacing, arrhythmias, and cardiac electrophysiology : journal of the working groups on cardiac pacing, arrhythmias, and cardiac cellular electrophysiology of the European Society of Cardiology.
[14] L. Xu,et al. Numerical study of the influence of water evaporation on radiofrequency ablation , 2013, Biomedical engineering online.
[15] Prashanthan Sanders,et al. Long‐term Outcomes of Catheter Ablation of Atrial Fibrillation: A Systematic Review and Meta‐analysis , 2013, Journal of the American Heart Association.
[16] Alex J. Walsh,et al. The effect of temperature on the autofluorescence of scattering and non‐scattering tissue , 2012, Lasers in surgery and medicine.
[17] Prashanthan Sanders,et al. Catheter ablation of atrial arrhythmias: state of the art , 2012, The Lancet.
[18] Huda Asfour,et al. NADH Fluorescence Imaging of Isolated Biventricular Working Rabbit Hearts , 2012, Journal of visualized experiments : JoVE.
[19] N. Sarvazyan,et al. Use of endogenous NADH fluorescence for real-time in situ visualization of epicardial radiofrequency ablation lesions and gaps. , 2012, American journal of physiology. Heart and circulatory physiology.
[20] V. Santé-Lhoutellier,et al. Use of meat fluorescence emission as a marker of oxidation promoted by cooking. , 2009, Meat science.
[21] F. Schick,et al. Prediction of cell necrosis with sequential temperature mapping after radiofrequency ablation , 2009, Journal of magnetic resonance imaging : JMRI.
[22] Narine Sarvazyan,et al. Locations of ectopic beats coincide with spatial gradients of NADH in a regional model of low-flow reperfusion. , 2008, American journal of physiology. Heart and circulatory physiology.
[23] Narine Sarvazyan,et al. Controlled regional hypoperfusion in Langendorff heart preparations , 2008, Physiological measurement.
[24] F. Sacher,et al. Catheter Ablation of Long‐Lasting Persistent Atrial Fibrillation: Critical Structures for Termination , 2005, Journal of cardiovascular electrophysiology.
[25] John A Viator,et al. Relationship between damaged fraction and reflected spectra of denaturing tissues , 2005, Lasers in surgery and medicine.
[26] Mandeep Bhargava,et al. Radiofrequency ablation vs antiarrhythmic drugs as first-line treatment of symptomatic atrial fibrillation: a randomized trial. , 2005, JAMA.
[27] Elia Biganzoli,et al. Updated Worldwide Survey on the Methods, Efficacy, and Safety of Catheter Ablation for Human Atrial Fibrillation , 2005, Circulation. Arrhythmia and electrophysiology.
[28] Peng Xi,et al. Depth-resolved fluorescence spectroscopy reveals layered structure of tissue. , 2004, Optics express.
[29] D. Fessas,et al. Contribution of the dimeric state to the thermal stability of the flavoprotein D‐amino acid oxidase , 2003, Protein science : a publication of the Protein Society.
[30] J Clémenty,et al. Spontaneous initiation of atrial fibrillation by ectopic beats originating in the pulmonary veins. , 1998, The New England journal of medicine.
[31] Steven L. Jacques,et al. Microscopic correlates of macroscopic optical property changes during thermal coagulation of myocardium , 1990, Photonics West - Lasers and Applications in Science and Engineering.
[32] W. Edwards,et al. Age-related changes in the anatomy of the normal human heart. , 1990, Journal of gerontology.
[33] R. Lannigan,et al. Ultrastructure of the normal atrial endocardium. , 1966, British heart journal.
[34] G. Palade,et al. SPECIFIC GRANULES IN ATRIAL MUSCLE CELLS , 1964, The Journal of cell biology.
[35] W J BOWEN,et al. The absorption spectra and extinction coefficients of myoglobin. , 1949, The Journal of biological chemistry.
[36] H. Pak,et al. The clinical significance of the atrial subendocardial smooth muscle layer and cardiac myofibroblasts in human atrial tissue with valvular atrial fibrillation. , 2013, Cardiovascular pathology : the official journal of the Society for Cardiovascular Pathology.
[37] M. Heinonen,et al. Protein oxidation in muscle foods: a review. , 2011, Molecular nutrition & food research.
[38] B. Chance. Mitochondrial NADH redox state, monitoring discovery and deployment in tissue. , 2004, Methods in enzymology.
[39] M. Vanoni,et al. Identifying and quantitating FAD and FMN in simple and in iron-sulfur-containing flavoproteins. , 1999, Methods in molecular biology.