Suchbegriffe: CARDIAC ELECTROPHYSIOLOGY, . Treffer: 26
Fassina, D; M, Costa, C; Bishop, M; Plank, G; Whitaker, J; Harding, SE; Niederer, SA
Assessing the arrhythmogenic risk of engineered heart tissue patches through in silico application on infarcted ventricle models.
Comput Biol Med. 2023; 154: 106550
Doi: 10.1016/j.compbiomed.2023.106550
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Nagel, C; Espinosa, CB; Gillette, K; Gsell, MAF; Sanchez, J; Plank, G; DOssel, O; Loewe, A
Comparison of Propagation Models and Forward Calculation Methods on Cellular, Tissue and Organ Scale Atrial Electrophysiology.
IEEE Trans Biomed Eng. 2022; PP:
Doi: 10.1109/TBME.2022.3196144
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Fassina, D; Costa, CM; Longobardi, S; Karabelas, E; Plank, G; Harding, SE; Niederer, SA
Modelling the interaction between stem cells derived cardiomyocytes patches and host myocardium to aid non-arrhythmic engineered heart tissue design.
PLoS Comput Biol. 2022; 18(4):e1010030
Doi: 10.1371/journal.pcbi.1010030
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Gillette, K; Gsell, MAF; Strocchi, M; Grandits, T; Neic, A; Manninger, M; Scherr, D; Roney, CH; Prassl, AJ; Augustin, CM; Vigmond, EJ; Plank, G
A personalized real-time virtual model of whole heart electrophysiology.
Front Physiol. 2022; 13: 907190
Doi: 10.3389/fphys.2022.907190
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Herrera, CR; Grandits, T; Plank, G; Perdikaris, P; Costabal, FS; Pezzuto, S
Physics-informed neural networks to learn cardiac fiber orientation from multiple electroanatomical maps
ENG COMPUT-GERMANY. 2022;
Doi: 10.1007/s00366-022-01709-3
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Mendonca, Costa, C; Gemmell, P; Elliott, MK; Whitaker, J; Campos, FO; Strocchi, M; Neic, A; Gillette, K; Vigmond, E; Plank, G; Razavi, R; O'Neill, M; Rinaldi, CA; Bishop, MJ
Determining anatomical and electrophysiological detail requirements for computational ventricular models of porcine myocardial infarction.
Comput Biol Med. 2022; 141:105061
Doi: 10.1016/j.compbiomed.2021.105061
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Gillette, K; Gsell, MAF; Bouyssier, J; Prassl, AJ; Neic, A; Vigmond, EJ; Plank, G
Automated Framework for the Inclusion of a His-Purkinje System in Cardiac Digital Twins of Ventricular Electrophysiology.
Ann Biomed Eng. 2021; 49(12):3143-3153
Doi: 10.1007/s10439-021-02825-9
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Lubrecht, JM; Grandits, T; Gharaviri, A; Schotten, U; Pock, T; Plank, G; Krause, R; Auricchio, A; Conte, G; Pezzuto, S
Automatic reconstruction of the left atrium activation from sparse intracardiac contact recordings by inverse estimate of fibre structure and anisotropic conduction in a patient-specific model.
Europace. 2021; 23(23 Suppl 1):i63-i70
Doi: 10.1093/europace/euaa392
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Plank, G; Loewe, A; Neic, A; Augustin, C; Huang, YL; Gsell, MAF; Karabelas, E; Nothstein, M; Prassl, AJ; Sánchez, J; Seemann, G; Vigmond, EJ
The openCARP simulation environment for cardiac electrophysiology.
Comput Methods Programs Biomed. 2021; 208:106223
Doi: 10.1016/j.cmpb.2021.106223
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Vigmond, EJ; Neic, A; Blauer, J; Swenson, D; Plank, G
How Electrode Position Affects Selective His Bundle Capture: A Modelling Study.
IEEE Trans Biomed Eng. 2021; 68(11):3410-3416
Doi: 10.1109/TBME.2021.3072334
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Grandits, T; Gillette, K; Neic, A; Bayer, J; Vigmond, E; Pock, T; Plank, G
An Inverse Eikonal Method for Identifying Ventricular Activation Sequences from Epicardial Activation Maps.
J Comput Phys. 2020; 419:
Doi: 10.1016/j.jcp.2020.109700
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Lee, AWC; Nguyen, UC; Razeghi, O; Gould, J; Sidhu, BS; Sieniewicz, B; Behar, J; Mafi-Rad, M; Plank, G; Prinzen, FW; Rinaldi, CA; Vernooy, K; Niederer, S
A rule-based method for predicting the electrical activation of the heart with cardiac resynchronization therapy from non-invasive clinical data.
Med Image Anal. 2019; 57(17-18):197-213
Doi: 10.1016/j.media.2019.06.017
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Costa, CM; Plank, G; Rinaldi, CA; Niederer, SA; Bishop, MJ
Modeling the Electrophysiological Properties of the Infarct Border Zone
FRONT PHYSIOL. 2018; 9: 356
Doi: 10.3389/fphys.2018.00356
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Koyani, CN; Trummer, C; Shrestha, N; Scheruebel, S; Bourgeois, B; Plastira, I; Kickmaier, S; Sourij, H; Rainer, PP; Madl, T; Sattler, W; Pelzmann, B; Malle, E; von Lewinski, D
Saxagliptin but Not Sitagliptin Inhibits CaMKII and PKC via DPP9 Inhibition in Cardiomyocytes.
Front Physiol. 2018; 9:1622-1622
Doi: 10.3389/fphys.2018.01622
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Neic, A; Campos, FO; Prassl, AJ; Niederer, SA; Bishop, MJ; Vigmond, EJ; Plank, G
Efficient computation of electrograms and ECGs in human whole heart simulations using a reaction-eikonal model.
J Comput Phys. 2017; 346(11):191-211
Doi: 10.1016/j.jcp.2017.06.020
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Costa, CM; Silva, PA; dos Santos, RW
Mind the Gap: A Semicontinuum Model for Discrete Electrical Propagation in Cardiac Tissue.
IEEE Trans Biomed Eng. 2016; 63(4):765-774
Doi: 10.1109/TBME.2015.2470256
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Bishop, MJ; Plank, G
Biophotonic Modelling of Cardiac Optical Imaging.
Adv Exp Med Biol. 2015; 859(11 Pt A):367-404
Doi: 10.1007/978-3-319-17641-3_15
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Pascale, P; Shah, AJ; Roten, L; Scherr, D; Komatsu, Y; Ramoul, K; Daly, M; Denis, A; Derval, N; Sacher, F; Hocini, M; Jaïs, P; Haïssaguerre, M
Pulmonary veins to left atrium cycle length gradient predicts procedural and clinical outcomes of persistent atrial fibrillation ablation.
Circ Arrhythm Electrophysiol. 2014; 7(3):473-482
Doi: 10.1161/CIRCEP.113.001264
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Nagaiah, C; Kunisch, K; Plank, G
Optimal control approach to termination of re-entry waves in cardiac electrophysiology.
J Math Biol. 2013; 67(2):359-388
Doi: 10.1007/s00285-012-0557-2
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Plank, G; Prassl, AJ; Augustin, C
Computational Challenges in Building Multi-Scale and Multi-Physics Models of Cardiac Electro-Mechanics.
Biomed Tech (Berl). 2013; 58 Suppl 1(1):
Doi: 10.1515/bmt-2013-4318
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Campos, FO; Prassl, AJ; Seemann, G; Weber dos Santos, R; Plank, G; Hofer, E
Influence of ischemic core muscle fibers on surface depolarization potentials in superfused cardiac tissue preparations: a simulation study.
Med Biol Eng Comput. 2012; 50(5):461-472
Doi: 10.1007/s11517-012-0880-1
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Camara, O; Sermesant, M; Lamata, P; Wang, L; Pop, M; Relan, J; De Craene, M; Delingette, H; Liu, H; Niederer, S; Pashaei, A; Plank, G; Romero, D; Sebastian, R; Wong, KC; Zhang, H; Ayache, N; Frangi, AF; Shi, P; Smith, NP; Wright, GA
Inter-model consistency and complementarity: Learning from ex-vivo imaging and electrophysiological data towards an integrated understanding of cardiac physiology.
Prog Biophys Mol Biol. 2011; 107(1):122-133
Doi: 10.1016/j.pbiomolbio.2011.07.007
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Niederer, S; Mitchell, L; Smith, N; Plank, G
Simulating human cardiac electrophysiology on clinical time-scales.
Front Physiol. 2011; 2(1):14-14
Doi: 10.3389/fphys.2011.00014
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Rocha, BM; Campos, FO; Amorim, RM; Plank, G; dos Santos, RW; Liebmann, M; Haase, G
Accelerating cardiac excitation spread simulations using graphics processing units
CONCURR COMPUT-PRACT EXP. 2011; 23(7): 708-720.
Doi: 10.1002/cpe.1683
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Weber dos Santos, R; Nygren, A; Otaviano Campos, F; Koch, H; Giles, WR
Experimental and theoretical ventricular electrograms and their relation to electrophysiological gradients in the adult rat heart.
Am J Physiol Heart Circ Physiol. 2009; 297(4): H1521-H1534.
Doi: 10.1152/ajpheart.01066.2008
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Baumgartner, D; Scholl-Bürgi, S; Sass, JO; Sperl, W; Schweigmann, U; Stein, JI; Karall, D
Prolonged QTc intervals and decreased left ventricular contractility in patients with propionic acidemia.
J Pediatr. 2007; 150(2):192-197
Doi: 10.1016/j.jpeds.2006.11.043
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