In nature, macroscopic excitation waves1,2 are found in a diverse range of settings including chemical reactions, metal rust, yeast, amoeba and the heart and brain. In the case of living biological tissue, the spatiotemporal patterns formed by these excitation waves are different in healthy and diseased states2,3. Current electrical and pharmacological methods for wave modulation lack the spatiotemporal precision needed to control these patterns. Optical methods have the potential to overcome these limitations, but to date have only been demonstrated in simple systems, such as the Belousov–Zhabotinsky chemical reaction4. Here, we combine dye-free optical imaging with optogenetic actuation to achieve dynamic control of cardiac excitation wav...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Optical techniques for recording and manipulating cellular electrophysiology have advanced rapidly i...
A) Termination of a spiral wave in a two dimensional domain at light intensity (LI) of 30 μW/mm2 and...
In nature, macroscopic excitation waves1,2 are found in a diverse range of settings including chemic...
Cardiac tissue is an excitable system that can support complex spatiotemporal dynamics, including in...
The control of spatiotemporal dynamics in biological systems is a fundamental problem in nonlinear s...
Detailed understanding of mechanisms and instabilities underlying the onset, perpetuation, and contr...
Current optical methodologies, combined with highly specialized genetic manipulation, have provided ...
Spiral waves occur in various types of excitable media and their dynamics determine the spatial exci...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Propagation of non-linear waves is key to the functioning of diverse biological systems. Such waves ...
The development of new approaches to control cardiac arrhythmias requires a deep understanding of sp...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Optical techniques for recording and manipulating cellular electrophysiology have advanced rapidly i...
A) Termination of a spiral wave in a two dimensional domain at light intensity (LI) of 30 μW/mm2 and...
In nature, macroscopic excitation waves1,2 are found in a diverse range of settings including chemic...
Cardiac tissue is an excitable system that can support complex spatiotemporal dynamics, including in...
The control of spatiotemporal dynamics in biological systems is a fundamental problem in nonlinear s...
Detailed understanding of mechanisms and instabilities underlying the onset, perpetuation, and contr...
Current optical methodologies, combined with highly specialized genetic manipulation, have provided ...
Spiral waves occur in various types of excitable media and their dynamics determine the spatial exci...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Propagation of non-linear waves is key to the functioning of diverse biological systems. Such waves ...
The development of new approaches to control cardiac arrhythmias requires a deep understanding of sp...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Complex spatiotemporal non-linearity as observed during cardiac arrhythmia strongly correlates with ...
Optical techniques for recording and manipulating cellular electrophysiology have advanced rapidly i...
A) Termination of a spiral wave in a two dimensional domain at light intensity (LI) of 30 μW/mm2 and...