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A fully-automated low-cost cardiac monolayer optical mapping robot.
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.
Afiliação
  • Lee P; Novel Arrhythmogenic Mechanisms Program, Centro Nacional de Investigaciones Cardiovasculares Carlos III (CNIC), Madrid, Spain.
  • Hou L; Essel Research and Development Inc., Toronto, ON, Canada.
  • Alibhai FJ; Cardiometabolic Department, Merck & Co., Inc., South San Francisco, CA, United States.
  • Al-Attar R; McEwen Stem Cell Institute, University Health Network, Toronto, ON, Canada.
  • Simón-Chica A; McEwen Stem Cell Institute, University Health Network, Toronto, ON, Canada.
  • Redondo-Rodríguez A; Novel Arrhythmogenic Mechanisms Program, Centro Nacional de Investigaciones Cardiovasculares Carlos III (CNIC), Madrid, Spain.
  • Nie Y; Novel Arrhythmogenic Mechanisms Program, Centro Nacional de Investigaciones Cardiovasculares Carlos III (CNIC), Madrid, Spain.
  • Mirotsou M; Cardiometabolic Department, Merck & Co., Inc., South San Francisco, CA, United States.
  • Laflamme MA; Cardiometabolic Department, Merck & Co., Inc., South San Francisco, CA, United States.
  • Swaminath G; McEwen Stem Cell Institute, University Health Network, Toronto, ON, Canada.
  • Filgueiras-Rama D; Peter Munk Cardiac Centre, University Health Network, Toronto, ON, Canada.
Front Cardiovasc Med ; 10: 1096884, 2023.
Article em En | MEDLINE | ID: mdl-37283579
ABSTRACT
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.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Tipo de estudo: Health_economic_evaluation Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Tipo de estudo: Health_economic_evaluation Idioma: En Ano de publicação: 2023 Tipo de documento: Article