AI Article Synopsis

  • Cardiac arrhythmias are primarily caused by changes in cell membrane ionic channels and calcium handling, which affect heart tissue behavior and can lead to conditions like QT prolongation in patients.
  • An innovative optical-mapping technique allows for simultaneous measurement of voltage and calcium signals without interference, helping to analyze heart cell and tissue reactions to treatments or structural changes.
  • Researchers have identified a specific range of excitation wavelengths, called semasbestic, that enable effective recording of heart signals from different dyes without any cross-talk, optimizing the study of heart conditions across multiple species.

Article Abstract

Most cardiac arrhythmias at the whole heart level result from alteration of cell membrane ionic channels and intracellular calcium concentration ([Ca] ) cycling with emerging spatiotemporal behavior through tissue-level coupling. For example, dynamically induced spatial dispersion of action potential duration, QT prolongation, and alternans are clinical markers for arrhythmia susceptibility in regular and heart-failure patients that originate due to changes of the transmembrane voltage ( ) and [Ca] . We present an optical-mapping methodology that permits simultaneous measurements of the - [Ca] signals using a single-camera without cross-talk, allowing quantitative characterization of favorable/adverse cell and tissue dynamical effects occurring from remodeling and/or drugs in heart failure. We demonstrate theoretically and experimentally in six different species the existence of a family of excitation wavelengths, we termed semasbestic, that give no change in signal for one dye, and thus can be used to record signals from another dye, guaranteeing zero cross-talk.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8874316PMC
http://dx.doi.org/10.3389/fphys.2022.812968DOI Listing

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