Anthropomorphizing the Mouse Cardiac Action Potential via a Novel Dynamic Clamp Method
Name:
Publisher version
View Source
Access full-text PDFOpen Access
View Source
Check access options
Check access options
Average rating
Cast your vote
You can rate an item by clicking the amount of stars they wish to award to this item.
When enough users have cast their vote on this item, the average rating will also be shown.
Star rating
Your vote was cast
Thank you for your feedback
Thank you for your feedback
Journal title
Biophysical JournalDate Published
2009-11Publication Volume
97Publication Issue
10Publication Begin page
2684Publication End page
2692
Metadata
Show full item recordAbstract
Interspecies differences can limit the translational value of excitable cells isolated from model organisms. It can be difficult to extrapolate from a drug- or mutation-induced phenotype in mice to human pathophysiology because mouse and human cardiac electrodynamics differ greatly. We present a hybrid computational-experimental technique, the cell-type transforming clamp, which is designed to overcome such differences by using a calculated compensatory current to convert the macroscopic electrical behavior of an isolated cell into that of a different cell type. We demonstrate the technique's utility by evaluating drug arrhythmogenicity in murine cardiomyocytes that are transformed to behave like human myocytes. Whereas we use the cell-type transforming clamp in this work to convert between mouse and human electrodynamics, the technique could be adapted to convert between the action potential morphologies of any two cell types of interest.Citation
Ahrens-Nicklas RC, Christini DJ. Anthropomorphizing the mouse cardiac action potential via a novel dynamic clamp method. Biophys J. 2009 Nov 18;97(10):2684-92. doi: 10.1016/j.bpj.2009.09.002. PMID: 19917221; PMCID: PMC2776258.DOI
10.1016/j.bpj.2009.09.002ae974a485f413a2113503eed53cd6c53
10.1016/j.bpj.2009.09.002
Scopus Count
Collections
The following license files are associated with this item:
- Creative Commons
Related articles
- Abnormal sodium current properties contribute to cardiac electrical and contractile dysfunction in a mouse model of myotonic dystrophy type 1.
- Authors: Algalarrondo V, Wahbi K, Sebag F, Gourdon G, Beldjord C, Azibi K, Balse E, Coulombe A, Fischmeister R, Eymard B, Duboc D, Hatem SN
- Issue date: 2015 Apr
- Selective inhibition of physiological late Na(+) current stabilizes ventricular repolarization.
- Authors: El-Bizri N, Li CH, Liu GX, Rajamani S, Belardinelli L
- Issue date: 2018 Feb 1
- Application of optical action potentials in human induced pluripotent stem cells-derived cardiomyocytes to predict drug-induced cardiac arrhythmias.
- Authors: Lu HR, Hortigon-Vinagre MP, Zamora V, Kopljar I, De Bondt A, Gallacher DJ, Smith G
- Issue date: 2017 Sep
- A review of the effects of three cardioactive agents on the electrical activity from embryonic chick heart cell aggregates: TTX, ACh, and E-4031.
- Authors: Clay JR, Kristof AS, Shenasa J, Brochu RM, Shrier A
- Issue date: 1994
- Restricting excessive cardiac action potential and QT prolongation: a vital role for IKs in human ventricular muscle.
- Authors: Jost N, Virág L, Bitay M, Takács J, Lengyel C, Biliczki P, Nagy Z, Bogáts G, Lathrop DA, Papp JG, Varró A
- Issue date: 2005 Sep 6