Literature DB >> 25902433

Optogenetic versus Electrical Stimulation of Human Cardiomyocytes: Modeling Insights.

John C Williams1, Emilia Entcheva2.   

Abstract

Optogenetics provides an alternative to electrical stimulation to manipulate membrane voltage, and trigger or modify action potentials (APs) in excitable cells. We compare biophysically and energetically the cellular responses to direct electrical current injection versus optical stimulation mediated by genetically expressed light-sensitive ion channels, e.g., Channelrhodopsin-2 (ChR2). Using a computational model of ChR2(H134R mutant), we show that both stimulation modalities produce similar-in-morphology APs in human cardiomyocytes, and that electrical and optical excitability vary with cell type in a similar fashion. However, whereas the strength-duration curves for electrical excitation in ventricular and atrial cardiomyocytes closely follow the theoretical exponential relationship for an equivalent RC circuit, the respective optical strength-duration curves significantly deviate, exhibiting higher nonlinearity. We trace the origin of this deviation to the waveform of the excitatory current-a nonrectangular self-terminating inward current produced in optical stimulation due to ChR2 kinetics and voltage-dependent rectification. Using a unifying charge measure to compare energy needed for electrical and optical stimulation, we reveal that direct electrical current injection (rectangular pulse) is more efficient at short pulses, whereas voltage-mediated negative feedback leads to self-termination of ChR2 current and renders optical stimulation more efficient for long low-intensity pulses. This applies to cardiomyocytes but not to neuronal cells (with much shorter APs). Furthermore, we demonstrate the cell-specific use of ChR2 current as a unique modulator of intrinsic activity, allowing for optical control of AP duration in atrial and, to a lesser degree, in ventricular myocytes. For self-oscillatory cells, such as Purkinje, constant light at extremely low irradiance can be used for fine control of oscillatory frequency, whereas constant electrical stimulation is not feasible due to electrochemical limitations. Our analysis offers insights for designing future new energy-efficient stimulation strategies in heart or brain.
Copyright © 2015 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2015        PMID: 25902433      PMCID: PMC4407252          DOI: 10.1016/j.bpj.2015.03.032

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  60 in total

Review 1.  A comprehensive concept of optogenetics.

Authors:  Guillaume P Dugué; Walther Akemann; Thomas Knöpfel
Journal:  Prog Brain Res       Date:  2012       Impact factor: 2.453

2.  Computational Optogenetics: A Novel Continuum Framework for the Photoelectrochemistry of Living Systems.

Authors:  Jonathan Wong; Oscar J Abilez; Ellen Kuhl
Journal:  J Mech Phys Solids       Date:  2012-06-01       Impact factor: 5.471

3.  Multimodal fast optical interrogation of neural circuitry.

Authors:  Feng Zhang; Li-Ping Wang; Martin Brauner; Jana F Liewald; Kenneth Kay; Natalie Watzke; Phillip G Wood; Ernst Bamberg; Georg Nagel; Alexander Gottschalk; Karl Deisseroth
Journal:  Nature       Date:  2007-04-05       Impact factor: 49.962

4.  Modeling study of the light stimulation of a neuron cell with channelrhodopsin-2 mutants.

Authors:  Nir Grossman; Konstantin Nikolic; Christofer Toumazou; Patrick Degenaar
Journal:  IEEE Trans Biomed Eng       Date:  2011-02-14       Impact factor: 4.538

5.  Channelrhodopsin-2, a directly light-gated cation-selective membrane channel.

Authors:  Georg Nagel; Tanjef Szellas; Wolfram Huhn; Suneel Kateriya; Nona Adeishvili; Peter Berthold; Doris Ollig; Peter Hegemann; Ernst Bamberg
Journal:  Proc Natl Acad Sci U S A       Date:  2003-11-13       Impact factor: 11.205

6.  Optogenetics.

Authors:  Karl Deisseroth
Journal:  Nat Methods       Date:  2010-12-20       Impact factor: 28.547

7.  A high-light sensitivity optical neural silencer: development and application to optogenetic control of non-human primate cortex.

Authors:  Xue Han; Brian Y Chow; Huihui Zhou; Nathan C Klapoetke; Amy Chuong; Reza Rajimehr; Aimei Yang; Michael V Baratta; Jonathan Winkle; Robert Desimone; Edward S Boyden
Journal:  Front Syst Neurosci       Date:  2011-04-13

8.  Channelrhodopsin2 current during the action potential: "optical AP clamp" and approximation.

Authors:  Emilia Entcheva; John C Williams
Journal:  Sci Rep       Date:  2014-07-25       Impact factor: 4.379

9.  A comprehensive multiscale framework for simulating optogenetics in the heart.

Authors:  Patrick M Boyle; John C Williams; Christina M Ambrosi; Emilia Entcheva; Natalia A Trayanova
Journal:  Nat Commun       Date:  2013       Impact factor: 14.919

10.  Simulating photon scattering effects in structurally detailed ventricular models using a Monte Carlo approach.

Authors:  Martin J Bishop; Gernot Plank
Journal:  Front Physiol       Date:  2014-09-09       Impact factor: 4.566

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  14 in total

Review 1.  Computational modeling of cardiac optogenetics: Methodology overview & review of findings from simulations.

Authors:  Patrick M Boyle; Thomas V Karathanos; Emilia Entcheva; Natalia A Trayanova
Journal:  Comput Biol Med       Date:  2015-05-07       Impact factor: 4.589

Review 2.  Cardiac optogenetics: a decade of enlightenment.

Authors:  Emilia Entcheva; Matthew W Kay
Journal:  Nat Rev Cardiol       Date:  2020-12-18       Impact factor: 32.419

3.  Optogenetic Control of Cardiac Autonomic Neurons in Transgenic Mice.

Authors:  Angel Moreno; Grant Kowalik; David Mendelowitz; Matthew W Kay
Journal:  Methods Mol Biol       Date:  2021

4.  Optogenetic activation of muscle contraction in vivo.

Authors:  Elahe Ganji; C Savio Chan; Christopher W Ward; Megan L Killian
Journal:  Connect Tissue Res       Date:  2020-08-10       Impact factor: 3.417

5.  OptoDyCE as an automated system for high-throughput all-optical dynamic cardiac electrophysiology.

Authors:  Aleksandra Klimas; Christina M Ambrosi; Jinzhu Yu; John C Williams; Harold Bien; Emilia Entcheva
Journal:  Nat Commun       Date:  2016-05-10       Impact factor: 14.919

6.  Optogenetics-enabled assessment of viral gene and cell therapy for restoration of cardiac excitability.

Authors:  Christina M Ambrosi; Patrick M Boyle; Kay Chen; Natalia A Trayanova; Emilia Entcheva
Journal:  Sci Rep       Date:  2015-12-01       Impact factor: 4.379

Review 7.  Light-based Approaches to Cardiac Arrhythmia Research: From Basic Science to Translational Applications.

Authors:  Thomas V Karathanos; Patrick M Boyle; Natalia A Trayanova
Journal:  Clin Med Insights Cardiol       Date:  2016-11-02

8.  Non-invasive red-light optogenetic control of Drosophila cardiac function.

Authors:  Jing Men; Airong Li; Jason Jerwick; Zilong Li; Rudolph E Tanzi; Chao Zhou
Journal:  Commun Biol       Date:  2020-06-29

9.  Double Two-State Opsin Model With Autonomous Parameter Inference.

Authors:  Ruben Schoeters; Thomas Tarnaud; Luc Martens; Wout Joseph; Robrecht Raedt; Emmeric Tanghe
Journal:  Front Comput Neurosci       Date:  2021-06-16       Impact factor: 2.380

Review 10.  Cardiac Meets Skeletal: What's New in Microfluidic Models for Muscle Tissue Engineering.

Authors:  Roberta Visone; Mara Gilardi; Anna Marsano; Marco Rasponi; Simone Bersini; Matteo Moretti
Journal:  Molecules       Date:  2016-08-26       Impact factor: 4.411

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