Lee Peter, Hou Luqia, Alibhai Faisal J, Al-Attar Rasha, Simón-Chica Ana, Redondo-Rodríguez Andrés, Nie Yilin, Mirotsou Maria, Laflamme Michael A, Swaminath Gayathri, Filgueiras-Rama David
Novel Arrhythmogenic Mechanisms Program, Centro Nacional de Investigaciones Cardiovasculares Carlos III (CNIC), Madrid, Spain.
Essel Research and Development Inc., Toronto, ON, Canada.
Front Cardiovasc Med. 2023 May 22;10:1096884. doi: 10.3389/fcvm.2023.1096884. eCollection 2023.
Scalable and high-throughput electrophysiological measurement systems are necessary to accelerate the elucidation of cardiac diseases in drug development. Optical mapping is the primary method of simultaneously measuring several key electrophysiological parameters, such as action potentials, intracellular free calcium and conduction velocity, at high spatiotemporal resolution. This tool has been applied to isolated whole-hearts, whole-hearts in-vivo, tissue-slices and cardiac monolayers/tissue-constructs. Although optical mapping of all of these substrates have contributed to our understanding of ion-channels and fibrillation dynamics, cardiac monolayers/tissue-constructs are scalable macroscopic substrates that are particularly amenable to high-throughput interrogation. Here, we describe and validate a scalable and fully-automated monolayer optical mapping robot that requires no human intervention and with reasonable costs. As a proof-of-principle demonstration, we performed parallelized macroscopic optical mapping of calcium dynamics in the well-established neonatal-rat-ventricular-myocyte monolayer plated on standard 35 mm dishes. Given the advancements in regenerative and personalized medicine, we also performed parallelized macroscopic optical mapping of voltage dynamics in human pluripotent stem cell-derived cardiomyocyte monolayers using a genetically encoded voltage indictor and a commonly-used voltage sensitive dye to demonstrate the versatility of our system.
可扩展且高通量的电生理测量系统对于加速阐明药物研发中的心脏疾病至关重要。光学映射是在高时空分辨率下同时测量几个关键电生理参数(如动作电位、细胞内游离钙和传导速度)的主要方法。该工具已应用于离体全心脏、体内全心脏、组织切片以及心脏单层细胞/组织构建体。尽管对所有这些底物进行光学映射都有助于我们理解离子通道和纤颤动力学,但心脏单层细胞/组织构建体是可扩展的宏观底物,特别适合高通量研究。在此,我们描述并验证了一种无需人工干预且成本合理的可扩展全自动单层光学映射机器人。作为原理验证演示,我们对铺在标准35毫米培养皿上的成熟新生大鼠心室肌细胞单层进行了钙动力学的并行宏观光学映射。鉴于再生医学和个性化医学的进展,我们还使用基因编码电压指示剂和常用电压敏感染料对人多能干细胞衍生的心肌细胞单层进行了电压动力学的并行宏观光学映射,以证明我们系统的多功能性。