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Methodologies for Manipulating Cardiomyocyte Physiology: In Vitro and In Vivo Perspectives

Created on 13 Aug 2026

Authors

Yang, R., Liu, D.-H., Wang, D.-D., Li, S.-M., Liu, P.-P., Li, S.-A., Kang, J.-S.

Abstract

Cardiac tissue is primarily made up of cardiomyocytes, which are regulated by the autonomic nervous system. We have used and developed approaches such as patch clamping and electrical stimulation-combined calcium imaging, computer modeling, optogenetics and chemogenetics combining with video-based Short-Time Fourier transformation (STFT) method to study the physiological activities of cardiomyocytes. The action potential of cardiomyocytes was found to be synchronized with calcium signals, which can be grouped into two categories by STFT. A mathematical model was developed to simulate the changes in electrical activities within cardiomyocytes caused by energy depletion, especially for 2-deoxy-D-glucose (2DG) treatment. Optogenetic and chemogenetics tools, such as ChR2(H134R), OptoXR-b2AR and hM3Dq accelerated beating, while GR, ACR1 and hM4Di inhibited cardiomyocytes' beating. A video-based STFT method was developed to visualize the beating frequency during these manipulations. An in vitro co-culture method was developed to study the relationship between sympathetic neuronal firing and calcium dynamics in cardiomyocytes. In vivo, electrocardiograph (ECG) measurements showed that Clozapine N-oxide (CNO) caused heart rates increasement in cTnT-hM3Dq virus injected mouse. However, it had no impact on cTnT-hM4Di virus injected mouse. This study provides comprehensive methodologies for studying cardiomyocyte physiology and manipulating heart rates in vitro and in vivo.

Preprint server: bioRxiv
The authors list and abstract were imported from bioRxiv on 13 Aug 2026.

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