- -

Optical imaging of voltage and calcium in isolated hearts: Linking spatiotemporal heterogeneities and ventricular fibrillation initiation

RiuNet: Repositorio Institucional de la Universidad Politécnica de Valencia

Compartir/Enviar a

Citas

Estadísticas

  • Estadisticas de Uso

Optical imaging of voltage and calcium in isolated hearts: Linking spatiotemporal heterogeneities and ventricular fibrillation initiation

Mostrar el registro completo del ítem

Hernández-Romero, I.; Guillem Sánchez, MS.; Figuera, C.; Atienza, F.; Fernández-Avilés, F.; Martínez Climent, BA. (2019). Optical imaging of voltage and calcium in isolated hearts: Linking spatiotemporal heterogeneities and ventricular fibrillation initiation. PLoS ONE. 14(5):1-15. https://doi.org/10.1371/journal.pone.0215951

Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/162604

Ficheros en el ítem

Metadatos del ítem

Título: Optical imaging of voltage and calcium in isolated hearts: Linking spatiotemporal heterogeneities and ventricular fibrillation initiation
Autor: Hernández-Romero, Ismael Guillem Sánchez, María Salud Figuera, Carlos Atienza, Felipe Fernández-Avilés, Francisco Martínez Climent, Batiste Andreu
Entidad UPV: Universitat Politècnica de València. Departamento de Ingeniería Electrónica - Departament d'Enginyeria Electrònica
Universitat Politècnica de València. Instituto Universitario de Telecomunicación y Aplicaciones Multimedia - Institut Universitari de Telecomunicacions i Aplicacions Multimèdia
Fecha difusión:
Resumen:
[EN] Background Alternans have been associated with the development of ventricular fibrillation and its control has been proposed as antiarrhythmic strategy. However, cardiac arrhythmias are a spatiotemporal phenomenon ...[+]
Derechos de uso: Reconocimiento (by)
Fuente:
PLoS ONE. (issn: 1932-6203 )
DOI: 10.1371/journal.pone.0215951
Editorial:
Public Library of Science
Versión del editor: https://doi.org/10.1371/journal.pone.0215951
Código del Proyecto:
info:eu-repo/grantAgreement/MINECO//PI14%2F00857/ES/Caracterización No-invasiva de los Mecanismos de Mantenimiento de la Fibrilación Auricular. Estudio PERSONALIZE-AF/
...[+]
info:eu-repo/grantAgreement/MINECO//PI14%2F00857/ES/Caracterización No-invasiva de los Mecanismos de Mantenimiento de la Fibrilación Auricular. Estudio PERSONALIZE-AF/
info:eu-repo/grantAgreement/GVA//APOSTD%2F2017
info:eu-repo/grantAgreement/GVA//APOSTD%2F2018%2F032/
info:eu-repo/grantAgreement/MINECO//TEC2013-46067-R/ES/ESTIMACION NO INVASIVA DE LA ACTIVIDAD ELECTRICA CARDIACA MEDIANTE OPTIMIZACION CONVEXA/
info:eu-repo/grantAgreement/MINECO//DTS16%2F00160/ES/Guiado en Tiempo Real de la Ablación de la Fibrilación Auricular mediante Cartografía Eléctrica Global (CORIFY)/
info:eu-repo/grantAgreement/MINECO//PI16%2F01123/ES/Regeneración Cardiaca de Infarto Crónico Porcino mediante Inyecciónes Intramiocardiacas de Células Progenitoras Embebidas en Hidrogeles de Matriz Decelularizada/
info:eu-repo/grantAgreement/MINECO//IJCI-2014-22178/ES/IJCI-2014-22178/
info:eu-repo/grantAgreement/ISCIII//PI17%2F01059/ES/Estratificación y tratamiento de la fibrilación auricular basada en los mecanismos de perpetuación de la arritmia/STRATIFY-AF/
info:eu-repo/grantAgreement/GVA//GV%2F2018%2F103/
info:eu-repo/grantAgreement/ISCIII//PI17%2F01106/ES/Estratificación y tratamiento de la fibrilación auricular basada en los mecanismos de perpetuación de la arritmia/
[-]
Agradecimientos:
This work was funded in part by the CIBERCV (Centro de Investigacion Biomedica en Red Enfermedades Cardiovasculares), Instituto de Salud Carlos III (PI14/00857, PI16/01123, DTS16/0160, PI17/01059, PI17/01106 and IJCI-2014-22178); ...[+]
Tipo: Artículo

References

Hayashi, M., Shimizu, W., & Albert, C. M. (2015). The Spectrum of Epidemiology Underlying Sudden Cardiac Death. Circulation Research, 116(12), 1887-1906. doi:10.1161/circresaha.116.304521

Karma, A. (1994). Electrical alternans and spiral wave breakup in cardiac tissue. Chaos: An Interdisciplinary Journal of Nonlinear Science, 4(3), 461-472. doi:10.1063/1.166024

Weiss, J. N., Garfinkel, A., Karagueuzian, H. S., Qu, Z., & Chen, P.-S. (1999). Chaos and the Transition to Ventricular Fibrillation. Circulation, 99(21), 2819-2826. doi:10.1161/01.cir.99.21.2819 [+]
Hayashi, M., Shimizu, W., & Albert, C. M. (2015). The Spectrum of Epidemiology Underlying Sudden Cardiac Death. Circulation Research, 116(12), 1887-1906. doi:10.1161/circresaha.116.304521

Karma, A. (1994). Electrical alternans and spiral wave breakup in cardiac tissue. Chaos: An Interdisciplinary Journal of Nonlinear Science, 4(3), 461-472. doi:10.1063/1.166024

Weiss, J. N., Garfinkel, A., Karagueuzian, H. S., Qu, Z., & Chen, P.-S. (1999). Chaos and the Transition to Ventricular Fibrillation. Circulation, 99(21), 2819-2826. doi:10.1161/01.cir.99.21.2819

Hayashi, H., Shiferaw, Y., Sato, D., Nihei, M., Lin, S.-F., Chen, P.-S., … Qu, Z. (2007). Dynamic Origin of Spatially Discordant Alternans in Cardiac Tissue. Biophysical Journal, 92(2), 448-460. doi:10.1529/biophysj.106.091009

Pruvot, E. J., Katra, R. P., Rosenbaum, D. S., & Laurita, K. R. (2004). Role of Calcium Cycling Versus Restitution in the Mechanism of Repolarization Alternans. Circulation Research, 94(8), 1083-1090. doi:10.1161/01.res.0000125629.72053.95

Opthof, T., Remme, C. A., Jorge, E., Noriega, F., Wiegerinck, R. F., Tasiam, A., … Cinca, J. (2017). Cardiac activation–repolarization patterns and ion channel expression mapping in intact isolated normal human hearts. Heart Rhythm, 14(2), 265-272. doi:10.1016/j.hrthm.2016.10.010

Wilson, F. N., Macleod, A. G., Barker, P. S., & Johnston, F. D. (1934). The determination and the significance of the areas of the ventricular deflections of the electrocardiogram. American Heart Journal, 10(1), 46-61. doi:10.1016/s0002-8703(34)90303-3

Ashman, R., & Byer, E. (1943). The normal human ventricular gradient. American Heart Journal, 25(1), 16-35. doi:10.1016/s0002-8703(43)90379-5

Pastore, J. M., Girouard, S. D., Laurita, K. R., Akar, F. G., & Rosenbaum, D. S. (1999). Mechanism Linking T-Wave Alternans to the Genesis of Cardiac Fibrillation. Circulation, 99(10), 1385-1394. doi:10.1161/01.cir.99.10.1385

Qu, Z., Garfinkel, A., Chen, P.-S., & Weiss, J. N. (2000). Mechanisms of Discordant Alternans and Induction of Reentry in Simulated Cardiac Tissue. Circulation, 102(14), 1664-1670. doi:10.1161/01.cir.102.14.1664

Mironov, S., Jalife, J., & Tolkacheva, E. G. (2008). Role of Conduction Velocity Restitution and Short-Term Memory in the Development of Action Potential Duration Alternans in Isolated Rabbit Hearts. Circulation, 118(1), 17-25. doi:10.1161/circulationaha.107.737254

Swissa, M., Qu, Z., Ohara, T., Lee, M.-H., Lin, S.-F., Garfinkel, A., … Chen, P.-S. (2002). Action potential duration restitution and ventricular fibrillation due to rapid focal excitation. American Journal of Physiology-Heart and Circulatory Physiology, 282(5), H1915-H1923. doi:10.1152/ajpheart.00867.2001

Hirayama, Y., Saitoh, H., Atarashi, H., & Hayakawa, H. (1993). Electrical and mechanical alternans in canine myocardium in vivo. Dependence on intracellular calcium cycling. Circulation, 88(6), 2894-2902. doi:10.1161/01.cir.88.6.2894

Riccio, M. L., Koller, M. L., & Gilmour, R. F. (1999). Electrical Restitution and Spatiotemporal Organization During Ventricular Fibrillation. Circulation Research, 84(8), 955-963. doi:10.1161/01.res.84.8.955

Jin, Q., Dosdall, D. J., Li, L., Rogers, J. M., Ideker, R. E., & Huang, J. (2014). Verapamil reduces incidence of reentry during ventricular fibrillation in pigs. American Journal of Physiology-Heart and Circulatory Physiology, 307(9), H1361-H1369. doi:10.1152/ajpheart.00256.2014

Lee, P., Yan, P., Ewart, P., Kohl, P., Loew, L. M., & Bollensdorff, C. (2012). Simultaneous measurement and modulation of multiple physiological parameters in the isolated heart using optical techniques. Pflügers Archiv - European Journal of Physiology, 464(4), 403-414. doi:10.1007/s00424-012-1135-6

Wang, K., Lee, P., Mirams, G. R., Sarathchandra, P., Borg, T. K., Gavaghan, D. J., … Bollensdorff, C. (2015). Cardiac tissue slices: preparation, handling, and successful optical mapping. American Journal of Physiology-Heart and Circulatory Physiology, 308(9), H1112-H1125. doi:10.1152/ajpheart.00556.2014

Laughner, J. I., Ng, F. S., Sulkin, M. S., Arthur, R. M., & Efimov, I. R. (2012). Processing and analysis of cardiac optical mapping data obtained with potentiometric dyes. American Journal of Physiology-Heart and Circulatory Physiology, 303(7), H753-H765. doi:10.1152/ajpheart.00404.2012

Gizzi, A., Cherry, E. M., Gilmour, R. F., Luther, S., Filippi, S., & Fenton, F. H. (2013). Effects of Pacing Site and Stimulation History on Alternans Dynamics and the Development of Complex Spatiotemporal Patterns in Cardiac Tissue. Frontiers in Physiology, 4. doi:10.3389/fphys.2013.00071

VISWESWARAN, R., McINTYRE, S. D., RAMKRISHNAN, K., ZHAO, X., & TOLKACHEVA, E. G. (2013). Spatiotemporal Evolution and Prediction of [Ca2+ ]i and APD Alternans in Isolated Rabbit Hearts. Journal of Cardiovascular Electrophysiology, 24(11), 1287-1295. doi:10.1111/jce.12200

Bayly, P. V., KenKnight, B. H., Rogers, J. M., Hillsley, R. E., Ideker, R. E., & Smith, W. M. (1998). Estimation of conduction velocity vector fields from epicardial mapping data. IEEE Transactions on Biomedical Engineering, 45(5), 563-571. doi:10.1109/10.668746

Liberos, A., Bueno-Orovio, A., Rodrigo, M., Ravens, U., Hernandez-Romero, I., Fernandez-Aviles, F., … Climent, A. M. (2016). Balance between sodium and calcium currents underlying chronic atrial fibrillation termination: An in silico intersubject variability study. Heart Rhythm, 13(12), 2358-2365. doi:10.1016/j.hrthm.2016.08.028

Trujillo-Pino, A., Krissian, K., Alemán-Flores, M., & Santana-Cedrés, D. (2013). Accurate subpixel edge location based on partial area effect. Image and Vision Computing, 31(1), 72-90. doi:10.1016/j.imavis.2012.10.005

Krummen, D. E., Ho, G., Villongco, C. T., Hayase, J., & Schricker, A. A. (2016). Ventricular fibrillation: triggers, mechanisms and therapies. Future Cardiology, 12(3), 373-390. doi:10.2217/fca-2016-0001

Garfinkel, A., Kim, Y.-H., Voroshilovsky, O., Qu, Z., Kil, J. R., Lee, M.-H., … Chen, P.-S. (2000). Preventing ventricular fibrillation by flattening cardiac restitution. Proceedings of the National Academy of Sciences, 97(11), 6061-6066. doi:10.1073/pnas.090492697

Nachimuthu, S., Assar, M. D., & Schussler, J. M. (2012). Drug-induced QT interval prolongation: mechanisms and clinical management. Therapeutic Advances in Drug Safety, 3(5), 241-253. doi:10.1177/2042098612454283

Torres, V., Tepper, D., Flowers, D., Wynn, J., Lam, S., Keefe, D., … Somberg, J. C. (1986). QT prolongation and the antiarrhythmic efficacy of amiodarone. Journal of the American College of Cardiology, 7(1), 142-147. doi:10.1016/s0735-1097(86)80272-8

Pueyo, E., Smetana, P., Caminal, P., deLuna, A. B., Malik, M., & Laguna, P. (2004). Characterization of QT Interval Adaptation to RR Interval Changes and Its Use as a Risk-Stratifier of Arrhythmic Mortality in Amiodarone-Treated Survivors of Acute Myocardial Infarction. IEEE Transactions on Biomedical Engineering, 51(9), 1511-1520. doi:10.1109/tbme.2004.828050

Noujaim, S. F., Auerbach, D. S., & Jalife, J. (2007). Ventricular Fibrillation. Circulation Journal, 71(SupplementA), A1-A11. doi:10.1253/circj.71.a1

Choi, B., & Salama, G. (2000). Simultaneous maps of optical action potentials and calcium transients in guinea‐pig hearts: mechanisms underlying concordant alternans. The Journal of Physiology, 529(1), 171-188. doi:10.1111/j.1469-7793.2000.00171.x

Cao, J.-M., Qu, Z., Kim, Y.-H., Wu, T.-J., Garfinkel, A., Weiss, J. N., … Chen, P.-S. (1999). Spatiotemporal Heterogeneity in the Induction of Ventricular Fibrillation by Rapid Pacing. Circulation Research, 84(11), 1318-1331. doi:10.1161/01.res.84.11.1318

De Diego, C., Pai, R. K., Dave, A. S., Lynch, A., Thu, M., Chen, F., … Valderrábano, M. (2008). Spatially discordant alternans in cardiomyocyte monolayers. American Journal of Physiology-Heart and Circulatory Physiology, 294(3), H1417-H1425. doi:10.1152/ajpheart.01233.2007

Aistrup, G. L., Kelly, J. E., Kapur, S., Kowalczyk, M., Sysman-Wolpin, I., Kadish, A. H., & Wasserstrom, J. A. (2006). Pacing-induced Heterogeneities in Intracellular Ca2+Signaling, Cardiac Alternans, and Ventricular Arrhythmias in Intact Rat Heart. Circulation Research, 99(7). doi:10.1161/01.res.0000244087.36230.bf

Chudin, E., Goldhaber, J., Garfinkel, A., Weiss, J., & Kogan, B. (1999). Intracellular Ca2+ Dynamics and the Stability of Ventricular Tachycardia. Biophysical Journal, 77(6), 2930-2941. doi:10.1016/s0006-3495(99)77126-2

Sato, D., Bers, D. M., & Shiferaw, Y. (2013). Formation of Spatially Discordant Alternans Due to Fluctuations and Diffusion of Calcium. PLoS ONE, 8(12), e85365. doi:10.1371/journal.pone.0085365

Zhou, X., Bueno-Orovio, A., Orini, M., Hanson, B., Hayward, M., Taggart, P., … Rodriguez, B. (2016). In Vivo and In Silico Investigation Into Mechanisms of Frequency Dependence of Repolarization Alternans in Human Ventricular Cardiomyocytes. Circulation Research, 118(2), 266-278. doi:10.1161/circresaha.115.307836

Morotti, S., Grandi, E., Summa, A., Ginsburg, K. S., & Bers, D. M. (2012). Theoretical study of L-type Ca2+current inactivation kinetics during action potential repolarization and early afterdepolarizations. The Journal of Physiology, 590(18), 4465-4481. doi:10.1113/jphysiol.2012.231886

Harada, M., Tsuji, Y., Ishiguro, Y. S., Takanari, H., Okuno, Y., Inden, Y., … Kodama, I. (2011). Rate-dependent shortening of action potential duration increases ventricular vulnerability in failing rabbit heart. American Journal of Physiology-Heart and Circulatory Physiology, 300(2), H565-H573. doi:10.1152/ajpheart.00209.2010

Hwang, G.-S., Hayashi, H., Tang, L., Ogawa, M., Hernandez, H., Tan, A. Y., … Chen, P.-S. (2006). Intracellular Calcium and Vulnerability to Fibrillation and Defibrillation in Langendorff-Perfused Rabbit Ventricles. Circulation, 114(24), 2595-2603. doi:10.1161/circulationaha.106.630509

Wang, L., Myles, R. C., De Jesus, N. M., Ohlendorf, A. K. P., Bers, D. M., & Ripplinger, C. M. (2014). Optical Mapping of Sarcoplasmic Reticulum Ca 2+ in the Intact Heart. Circulation Research, 114(9), 1410-1421. doi:10.1161/circresaha.114.302505

Wagner, S., Maier, L. S., & Bers, D. M. (2015). Role of Sodium and Calcium Dysregulation in Tachyarrhythmias in Sudden Cardiac Death. Circulation Research, 116(12), 1956-1970. doi:10.1161/circresaha.116.304678

Chorro, F. J., Cánoves, J., Guerrero, J., Mainar, L., Sanchis, J., Such, L., & López-Merino, V. (2000). Alteration of Ventricular Fibrillation by Flecainide, Verapamil, and Sotalol. Circulation, 101(13), 1606-1615. doi:10.1161/01.cir.101.13.1606

BANVILLE, I., & GRAY, R. A. (2002). Effect of Action Potential Duration and Conduction Velocity Restitution and Their Spatial Dispersion on Alternans and the Stability of Arrhythmias. Journal of Cardiovascular Electrophysiology, 13(11), 1141-1149. doi:10.1046/j.1540-8167.2002.01141.x

Samie, F. H., Mandapati, R., Gray, R. A., Watanabe, Y., Zuur, C., Beaumont, J., & Jalife, J. (2000). A Mechanism of Transition From Ventricular Fibrillation to Tachycardia. Circulation Research, 86(6), 684-691. doi:10.1161/01.res.86.6.684

Ikeda, T., Yoshino, H., Sugi, K., Tanno, K., Shimizu, H., Watanabe, J., … Kato, T. (2006). Predictive Value of Microvolt T-Wave Alternans for Sudden Cardiac Death in Patients With Preserved Cardiac Function After Acute Myocardial Infarction. Journal of the American College of Cardiology, 48(11), 2268-2274. doi:10.1016/j.jacc.2006.06.075

Wiegerinck, R. F., Verkerk, A. O., Belterman, C. N., van Veen, T. A. B., Baartscheer, A., Opthof, T., … Coronel, R. (2006). Larger Cell Size in Rabbits With Heart Failure Increases Myocardial Conduction Velocity and QRS Duration. Circulation, 113(6), 806-813. doi:10.1161/circulationaha.105.565804

[-]

recommendations

 

Este ítem aparece en la(s) siguiente(s) colección(ones)

Mostrar el registro completo del ítem