axoCells™ human iPSC-derived ventricular cardiomyocytes (unaffected), male donor, aged 74, ≥1 million cells

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axoCells™ human iPSC-derived ventricular cardiomyocytes (unaffected), male donor, aged 74, ≥1 million cells for cardiovascular research. Ventricular cardiomyocytes made from iPSCs generated from a 74-year-old male donor’s pulmonary fibroblasts.

• Derived from human iPSCs
• Spontaneously beat 3 days post-thaw and assay-ready in just 7 days
• Validated against all 28 CiPA compounds
• Demonstrate functional responses in a range of assay formats including patch clamp, electrophysiology and voltage-sensitive dyes

Price:

$494.00

SKU: ax2508
Specifications

Number of cells ≥1 million cells
Donor Male, 74-year-old
Genetics Healthy control
Associated products ax2518 – axoCells Human iPSC-Derived Atrial Cardiomyocytes (≥1 million cells), ax2530-500 – Cardiomyocyte Maintenance Media (500ml), ax0050 – Fibronectin coating (100 µl), ax2508 – axoCells™ Human iPSC-Derived Ventricular Cardiomyocytes, male donor, ≥1 million cells, ax2550 – Myomax Maturation Media

Description

axoCells™ human iPSC-derived ventricular cardiomyocytes (unaffected), male donor, aged 74, ≥1 million cells for cardiovascular research. Ventricular cardiomyocytes made from iPSCs generated from a 74 year old male donor’s pulmonary fibroblasts.

Key highlights include:
• Spontaneously beat 3 days post-thaw and assay-ready in just 7 days
• Validated against all 28 CiPA compounds
• Demonstrate functional responses in a range of assay formats including patch clamp, electrophysiology and voltage-sensitive dyes

They are frequently used to fuel in vitro cardiotoxicity models to assess drug safety and for cardiac research. They can also be used in co-culture with other cells (including atrial cardiomyocytes).

Please note: The ethical guidelines for the source material used to generate cell line ax7018 do not provide legal consent for, nor permit, sequencing of any derived cells or materials, including the following products: ax0018, ax0078, ax2508, ax2558, ax2518, ax2568, and ax3078.

 

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Additional Information

Phenotypic characterization: beating

Here you can see axoCells™ human iPSC-derived ventricular cardiomyocytes beating spontaneously in a smooth, synchronous monolayer. This demonstrates the high purity of the cell culture. This also demonstrates their optimization for electrophysiology assays, as you can perform spontaneous readings without the need for pacing.

axoCells™ human iPSC-derived ventricular cardiomyocytes beating spontaneously at 0.8Hz prior to cryopreservation. Video obtained using 10x magnification, 90fps.

Phenotypic characterization: ICC

Here you can see axoCellsTM ventricular cardiomyocytes expressing key markers of maturity and chamber-specificity. Expression of chamber-specific markers forms part of our QC for these cells. You can also appreciate the expected morphology with clear banding patterns.

  1. Immunocytochemistry of axoCellsTM ventricular cardiomyocytes stained for myomesin (green) and actin (red). This image illustrates the presence of the M-line within the sarcomere, the contractile unit of cardiomyocytes. Magnification 63x oil objective. Scale bar = 20 µm
  2. Immunocytochemistry of axoCellsTM cardiomyocytes stained for MLC2V (red) and MLC2A (green). Demonstrated is the mixture of ventricular (MLC2V) and atrial (MLC2A) Cardiomyocytes within the culture. Magnification 63x oil objective. Scale bar = 20 µm
  3. Immunocytochemistry of axoCellsTM ventricular cardiomyocytes stained for cardiac alpha-actinin (green) and cardiac troponin T (red). This image illustrates the presence of the sarcomere, the contractile unit of cardiomyocytes. Magnification 40x
  4. Immunocytochemistry of axoCellsTM ventricular cardiomyocytes stained for vimentin (red) and cardiac troponin T (green). Vimentin is a major filament protein in non-muscle cells whilst cardiac troponin T is a sarcomeric protein found in cardiomyocytes.

Functional relevance: patch clamp

Here we show the functional validation of our axoCells ventricular cardiomyocytes against 3 major drug classes: Lidocaine (an Na+ channel blocker), Nifedipine (a Ca2+ channel blocker) and Dofetilide (a hERG channel blocker), measured by patch clamp, which is the “gold standard” electrophysiology method. There is expected response to the major drug classes, validating these cells for use in in vitro cardiac models.

axoCells human iPSC-derived ventricular cardiomyocytes express the core cardiac ion channels INa, ICa,L and IKr. (A) Representative traces of evoked action potentials recorded under control conditions (grey) and in the presence of 100 μM Lidocaine (green), 100 nM Nifedipine (blue) or 50 nM Dofetilide (red), which show expected effects on action potential amplitude and duration. B) Average effect of each compound on spontaneous action potential parameters, presented as percent of control ± SEM, N ≥ 4. Statistical significance calculated by a paired two-tailed Student’s t-test (* p<0.05, ** p<0.01, *** p<0.001).

Functional relevance: CiPA validation

axoCells ventricular cardiomyocytes have been externally validated against all 28 compounds in the CiPA panel, verifying their application for in vitro cardiac safety testing and detection of pro-arrhythmic risk of new compounds.

Here we present data from 2 of these compounds, Dofetilide and Verapamil.

Want to explore the full dataset? Take a look at our CiPA validation application note.

Dofetilide

Effect of increasing concentrations of Dofetilide on axoCells ventricular cardiomyocytes. There is strong hERG block even at the lowest concentrations, demonstrated by APD90 prolongation (well 1) and triangulation (well 7). Example raw trace demonstrates triangulation and APD shortening with eventual quiescence (Q, marker of arrhythmia).

Verapamil

Effect of increasing concentrations of verapamil on axoCells ventricular cardiomyocytes. At low concentrations, this produces hERG block, demonstrated by increased triangulation (well 1,7). At higher concentrations, Ca2+ channel block causes APD shortening (well 15). Example raw trace demonstrates increasing APD shortening with eventual quiescence (Q).

This demonstrates the utility of iPSC models over traditional hERG overexpression models, as verapamil would technically fail on a hERG overexpression model, but is actually perfectly safe: its multi-channel effects cancel out the pro-arrhythmic hERG blockade.

Take me to the full external CiPA validation data

Functional characterization: MEA

We’ve extensively characterized our axoCells ventricular cardiomyocytes using our industry-leading Axion Maestro Pro MEA system, which we also use for our axoServices electrophysiology assays.

Here you can see a physiological waveform at base, and then the expected electrophysiological response to Dofetilide (a commercially available hERG blocker), demonstrating the functional relevance of our axoCells ventricular cardiomyocytes.

Field action potential waveform of axoCells iPSC-derived ventricular cardiomyocytes, demonstrating the effect of Dofetilide (100nM, red) versus control (blue). Dofetilide, a hERG blocker, causes prolonged field potential duration (from 413ms to 514ms) and after-depolarization.

Functional validation in chronic cardiotoxicity model

axoCells ventricular cardiomyocytes have been validated for use in chronic cardiotoxicity models, via continuous 72 hours electrophysiological recordings of response to a commercially-available cardiotoxicity compound, doxorubicin.

72 hour continuous monitoring of axoCells ventricular cardiomyocytes on the Axion Maestro MEA system from day 10 post-thaw onwards. Upon addition of 3 µM doxorubicin (arrow) at 24 hours, chronic cardiotoxicity is observed with a reduction in beat rate, amplitude and beat width (not shown).

Applications

axoCells ventricular cardiomyocytes can be used to measure a variety of cardiac responses on a number of platforms: action potentials and waveform analysis (patch clamp, automated patch clamp, voltage sensitive dyes (VSD), microelectrode arrays (MEA)), contractility/impedence (FLEXcyte, xCELLigence RTCA), calcium responses (Hamamatsu FDSS µCell, Cell Optiq), morphology (immunocytochemistry) and transcriptomics (RNAseq, qPCR). They have also been used to investigate disease states such as septic cardiomyopathy. 

Protocols

Protocols for the culture of ventricular cardiomyocytes on tissue culture plates, xCELLigence RTCA, FLEXCyte system, Cell Optiq, Hamatatsu FDSS µCell and Axion Maestro Pro are available. 

Quality

We maintain or exceed industry-level quality with our ISO:9001-accredited production facility, guided by our rigorous quality control procedures and decades of scientific experience.  

All cells come with a full Certificate of Analysis and are officially certified by HPSCreg®, to ensure ethical and biological conformity for your peace of mind.  

Licenses & Consent

Axol has obtained all relevant licenses for reprogramming donor samples into iPSCs and differentiating these into ventricular cardiomyocytes for commercial use.  

Patient samples used to create these cells have been ethically sourced and consented for research and commercial use. All cells come with a full Certificate of Analysis and are officially certified by HPSCreg®, to ensure ethical and biological conformity for your peace of mind. 

Publications

Sutton et al, 2017 Human Stem Cell-Derived Cardiomyocytes: In Vitro Assays and Screening Platforms for Exploring Ventricular and Atrial Phenotypes, J. Pharm. Tox Methods 88 2 2017 https://doi.org/10.1016/j.vascn.2017.09.243. 

Kanade, P. P., Oyunbaatar, N. E., & Lee, D. W. (2021). Effects of low temperature on electrophysiology and mechanophysiology of human induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs). Micro and Nano Systems Letters, 9(1), 1-7. 

Zhang, Y., Le Friec, A., Sun, D., & Chen, M. (2023). Sinusoidal stretchable fibrous electrodes regulate cardiac contraction. Chemical Engineering Journal, 455, 140555.
Sucharit Ray et al., Membrane repair triggered by cholesterol-dependent cytolysins is activated by mixed lineage kinases and MEK. Sci. Adv. 8, eabl6367 (2022).DOI:10.1126/sciadv.abl6367 

Media & Reagents

Optimized media (Cardiomyocyte Maintenance media ax2530-500) and plate coating (Fibronectin ax0050) for the culture of ventricular cardiomyocytes are available.