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1. Unconventional Collective Resonance as Nonlinear Mechanism of Ectopic Activity in Excitable Media

2. ‘Trapped re-entry’ as source of acute focal atrial arrhythmias

4. The Effects of Repetitive Use and Pathological Remodeling on Channelrhodopsin Function in Cardiomyocytes

5. 'Trapped re-entry' as source of acute focal atrial arrhythmias.

6. Optogenetics enables real-time spatiotemporal control over spiral wave dynamics in an excitable cardiac system

10. Trapped re-entry: a dormant source of arrhythmia

15. Paradoxical Onset of Arrhythmic Waves from Depolarized Areas in Cardiac Tissue Due to Curvature-Dependent Instability

16. The Effects of Repetitive Use and Pathological Remodeling on Channelrhodopsin Function in Cardiomyocytes

17. Functional analysis of the engineered cardiac tissue grown on recombinant spidroin fiber meshes.

19. PO-660-01 'TRAPPED REENTRY': A DORMANT SOURCE OF ARRHYTHMIA

20. Dynamic loading of human engineered heart tissue enhances contractile function and drives a desmosome-linked disease phenotype

21. 'Trapped reentry' as a dormant source of acute focal arrhythmia and fractionated atrial electrograms under sinus rhythm

22. 1275First evidence of 'trapped reentry' as dormant source of acute atrial fibrillation and fractionated atrial electrograms under sinus rhythm

23. Dynamic Loading of Human Engineered Heart Tissue Enhances Contractile Function and Drives Desmosome-linked Disease Phenotype

26. Dynamic Loading of Human Engineered Heart Tissue Enhances Contractile Function and Drives Desmosome-linked Disease Phenotype

28. Optogenetics enables real-time spatiotemporal control over spiral wave dynamics in an excitable cardiac system

30. Response by Feola et al to Letter Regarding Article, 'Localized Optogenetic Targeting of Rotors in Atrial Cardiomyocyte Monolayers'

32. Paradoxical onset of arrhythmic waves from depolarized areas in cardiac tissue due to curvature-dependent instability

33. Localized Optogenetic Targeting of Rotors in Atrial Cardiomyocyte Monolayers

34. Excitation wave propagation in a patterned multidomain cardiac tissue

42. Optogenetic manipulation of anatomical re-entry by light-guided generation of a reversible local conduction block

43. Optogenetic Engineering of Atrial Cardiomyocytes

44. Optogenetic Engineering of Atrial Cardiomyocytes

47. Functional analysis of the engineered cardiac tissue grown on recombinant spidroin fiber meshes

49. Arrhythmogenic role of the border between two areas of cardiac cell alignment

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