Towards Precision Medicine With Human iPSCs for Cardiac Channelopathies

Joseph C Wu1,2, Priyanka Garg1,2, Yoshinori Yoshida3

  • 1From the Stanford Cardiovascular Institute (J.C.W., P.G.).

Circulation Research
|August 30, 2019
PubMed

Related Concept Videos

Fabrication of 3D Cardiac Microtissue Arrays using Human iPSC-Derived Cardiomyocytes, Cardiac Fibroblasts, and Endothelial Cells10:37

Fabrication of 3D Cardiac Microtissue Arrays using Human iPSC-Derived Cardiomyocytes, Cardiac Fibroblasts, and Endothelial Cells

Here, we describe an easy-to-use methodology to generate 3D self-assembled cardiac microtissue arrays composed of pre-differentiated human-induced pluripotent stem cell-derived cardiomyocytes, cardiac fibroblasts, and endothelial cells. This user-friendly and low cell requiring technique to generate cardiac microtissues can be implemented for disease modeling and early stages of drug...
7.3K
Primary Human Nasal Epithelial Cells: Biobanking in the Context of Precision Medicine08:35

Primary Human Nasal Epithelial Cells: Biobanking in the Context of Precision Medicine

Here we describe the isolation, amplification, and differentiation of primary human nasal epithelial (HNE) cells at the air-liquid interface and a biobanking protocol allowing to successfully freeze and then thaw amplified HNE. The protocol analyzes electrophysiological properties of differentiated HNE cells and CFTR-related chloride secretion correction upon different modulator treatments.
3.4K
Generation of a Human iPSC-Based Blood-Brain Barrier Chip10:20

Generation of a Human iPSC-Based Blood-Brain Barrier Chip

The blood-brain barrier (BBB) is a multicellular neurovascular unit tightly regulating brain homeostasis. By combining human iPSCs and organ-on-chip technologies, we have generated a personalized BBB chip, suitable for disease modeling and CNS drug penetrability predictions. A detailed protocol is described for the generation and operation of the BBB...
13.5K
Generation of iPSC-derived Human Brain Organoids to Model Early Neurodevelopmental Disorders07:40

Generation of iPSC-derived Human Brain Organoids to Model Early Neurodevelopmental Disorders

Modeling human brain development has been hindered due to the unprecedented complexity of neural epithelial tissue. Here, a method for the robust generation of brain organoids to delineate early events of human brain development and to model microcephaly in vitro is described.
21.4K
Hybrid Cell Analysis System to Assess Structural and Contractile Changes of Human iPSC-Derived Cardiomyocytes for Preclinical Cardiac Risk Evaluation08:03

Hybrid Cell Analysis System to Assess Structural and Contractile Changes of Human iPSC-Derived Cardiomyocytes for Preclinical Cardiac Risk Evaluation

The analysis of changes in contractile function and cellular integrity of human iPSC-derived cardiomyocytes is of immense importance for nonclinical drug development. A hybrid 96-well cell analysis system addresses both parameters in a real-time and physiological manner for reliable, human-relevant results, necessary for a safe transition into clinical...
2.1K
Culture of Bladder Cancer Organoids as Precision Medicine Tools08:39

Culture of Bladder Cancer Organoids as Precision Medicine Tools

Patient-derived organoids (PDOs) are a powerful tool in translational cancer research, reflecting both the genetic and phenotypic heterogeneity of the disease and response to personalized anti-cancer therapies. Here, a consolidated protocol to generate human primary bladder cancer PDOs in preparation for the evaluation of phenotypic analyses and drug responses is detailed.
5.4K