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心律:在微电极阵列上测量干细胞衍生的起搏细胞。

Heart rhythm : measuring stem cell-derived pacemaker cells on microelectrode arrays.

作者信息

Kussauer Sophie, Dilk Patrick, Elleisy Moustafa, Michaelis Claudia, Lichtwark Sarina, Rimmbach Christian, David Robert, Jung Julia

机构信息

Department of Cardiac Surgery, Rostock University Medical Centre, Rostock, Germany.

Department of Life, Light, & Matter, University of Rostock, Rostock, Germany.

出版信息

Front Cardiovasc Med. 2024 Feb 21;11:1200786. doi: 10.3389/fcvm.2024.1200786. eCollection 2024.

Abstract

BACKGROUND

Cardiac arrhythmias have markedly increased in recent decades, highlighting the urgent need for appropriate test systems to evaluate the efficacy and safety of new pharmaceuticals and the potential side effects of established drugs.

METHODS

The Microelectrode Array (MEA) system may be a suitable option, as it provides both real-time and non-invasive monitoring of cellular networks of spontaneously active cells. However, there is currently no commercially available cell source to apply this technology in the context of the cardiac conduction system (CCS). In response to this problem, our group has previously developed a protocol for the generation of pure functional cardiac pacemaker cells from mouse embryonic stem cells (ESCs). In addition, we compared the hanging drop method, which was previously utilized, with spherical plate-derived embryoid bodies (EBs) and the pacemaker cells that are differentiated from these.

RESULTS

We described the application of these pacemaker cells on the MEA platform, which required a number of crucial optimization steps in terms of coating, dissociation, and cell density. As a result, we were able to generate a monolayer of pure pacemaker cells on an MEA surface that is viable and electromechanically active for weeks. Furthermore, we introduced spherical plates as a convenient and scalable method to be applied for the production of induced sinoatrial bodies.

CONCLUSION

We provide a tool to transfer modeling and analysis of cardiac rhythm diseases to the cell culture dish. Our system allows answering CCS-related queries within a cellular network, both under baseline conditions and post-drug exposure in a reliable and affordable manner. Ultimately, our approach may provide valuable guidance not only for cardiac pacemaker cells but also for the generation of an MEA test platform using other sensitive non-proliferating cell types.

摘要

背景

近几十年来,心律失常的发生率显著增加,这凸显了迫切需要合适的测试系统来评估新药物的疗效和安全性以及现有药物的潜在副作用。

方法

微电极阵列(MEA)系统可能是一个合适的选择,因为它可以对自发活动细胞的细胞网络进行实时和非侵入性监测。然而,目前尚无商业可用的细胞来源可在心脏传导系统(CCS)的背景下应用该技术。针对这一问题,我们团队此前已开发出一种从小鼠胚胎干细胞(ESC)生成纯功能性心脏起搏器细胞的方案。此外,我们将先前使用的悬滴法与球形板衍生的胚状体(EB)以及从这些胚状体分化而来的起搏器细胞进行了比较。

结果

我们描述了这些起搏器细胞在MEA平台上的应用,这在包被、解离和细胞密度方面需要一些关键的优化步骤。结果,我们能够在MEA表面生成一层纯起搏器细胞单层,这些细胞在数周内保持存活且具有机电活性。此外,我们引入了球形板作为一种方便且可扩展的方法,用于诱导窦房结样结构的产生。

结论

我们提供了一种将心律失常疾病的建模和分析转移到细胞培养皿中的工具。我们的系统能够以可靠且经济的方式在细胞网络中回答与CCS相关的问题,无论是在基线条件下还是药物暴露后。最终,我们的方法不仅可能为心脏起搏器细胞提供有价值的指导,还可能为使用其他敏感的非增殖细胞类型生成MEA测试平台提供指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8edd/10915086/b6fe36c330f2/fcvm-11-1200786-g001.jpg

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