Key result
Decreasing the interelectrode distance of high-resolution sensor arrays from 280 µm to 20 µm increased the measured gradient of the local cardiac potential by a factor of two.
Decreasing interelectrode distance to microscopic scales significantly increases the measured local potential gradient, highlighting the discontinuous nature of cardiac excitation spread.
Finer electrode spacing may improve resolution of cardiac signals in preclinical models; leaves open translation to human electroanatomic mapping.
Cardiac excitation spread at a microscopic (<200 /spl mu/m) size scale can be seen as a propagating signal in a discrete electrical network with stochastically distributed electrical discontinuities at the sites of cell to cell connections. In order to test the hypothesis if this discontinuous spatio-temporal process can also be detected as discontinuous distribution of extracellular potentials the authors developed high-resolution sensor arrays in thin-film technique (180 /spl mu/m to 20 /spl mu/m interelectrode spacing) as well as array amplifiers and data acquisition systems. The time course of signals from bipolar recordings (gradients) and from quadrupolar recordings (field magnitude) was compared for different interelectrode distances. All signals were be taken from a set of 25 signals obtained simultaneously by one array recording. The measurements showed that from 280 /spl mu/m down to the smallest possible interelectrode distance of 20 /spl mu/m the measured the gradient of the local potential increased by a factor of two. This local field parameter varied substantially within an area of 200/spl times/200 /spl mu/m/sup 2/.
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Hofer et al. (2002) studied Cardiac excitation spread. High-resolution sensor arrays with varying interelectrode distances vs. Different interelectrode distances was evaluated on Gradient of the local potential. Decreasing the interelectrode distance of high-resolution sensor arrays from 280 µm to 20 µm increased the measured gradient of the local cardiac potential by a factor of two.
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