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
2018-12Publication Volume
115Publication Issue
11Publication Begin page
2206Publication End page
2217
Metadata
Show full item recordAbstract
iPSC-derived cardiomyocytes (iPSC-CMs) are a potentially advantageous platform for drug screening because they provide a renewable source of human cardiomyocytes. One obstacle to their implementation is their immature electrophysiology, which reduces relevance to adult arrhythmogenesis. To address this, dynamic clamp is used to inject current representing the insufficient potassium current, IK1, thereby producing more adult-like electrophysiology. However, dynamic clamp requires patch clamp and is therefore low throughput and ill-suited for large-scale drug screening. Here, we use optogenetics to generate such a dynamic-clamp current. The optical dynamic clamp (ODC) uses outward-current-generating opsin, ArchT, to mimic IK1, resulting in more adult-like action potential morphology, similar to IK1 injection via classic dynamic clamp. Furthermore, in the presence of an IKr blocker, ODC revealed expected action potential prolongation and reduced spontaneous excitation. The ODC presented here still requires an electrode to measure Vm but provides a first step toward contactless dynamic clamp, which will not only enable high-throughput screening but may also allow control within multicellular iPSC-CM formats to better recapitulate adult in vivo physiology.Citation
Quach B, Krogh-Madsen T, Entcheva E, Christini DJ. Light-Activated Dynamic Clamp Using iPSC-Derived Cardiomyocytes. Biophys J. 2018 Dec 4;115(11):2206-2217. doi: 10.1016/j.bpj.2018.10.018. Epub 2018 Oct 30. PMID: 30447994; PMCID: PMC6289097.DOI
10.1016/j.bpj.2018.10.018ae974a485f413a2113503eed53cd6c53
10.1016/j.bpj.2018.10.018
Scopus Count
Collections
The following license files are associated with this item:
- Creative Commons
Related articles
- Patch-Clamp Recording from Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes: Improving Action Potential Characteristics through Dynamic Clamp.
- Authors: Verkerk AO, Veerman CC, Zegers JG, Mengarelli I, Bezzina CR, Wilders R
- Issue date: 2017 Aug 30
- Single-cell ionic current phenotyping elucidates non-canonical features and predictive potential of cardiomyocytes during automated drug experiments.
- Authors: Clark AP, Wei S, Christini DJ, Krogh-Madsen T
- Issue date: 2024 Oct
- Automated Dynamic Clamp for Simulation of I(K1) in Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes in Real Time Using Patchliner Dynamite(8).
- Authors: Becker N, Horváth A, De Boer T, Fabbri A, Grad C, Fertig N, George M, Obergrussberger A
- Issue date: 2020 Mar
- Syncytium cell growth increases Kir2.1 contribution in human iPSC-cardiomyocytes.
- Authors: Li W, Han JL, Entcheva E
- Issue date: 2020 Nov 1
- The immature electrophysiological phenotype of iPSC-CMs still hampers in vitro drug screening: Special focus on I(K1).
- Authors: Goversen B, van der Heyden MAG, van Veen TAB, de Boer TP
- Issue date: 2018 Mar