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Atrial-specific hiPSC-derived cardiomyocytes in drug discovery and disease modeling
Mayel Gharanei1, Sanam Shafaattalab1, Sarabjit Sangha1
1Molecular Cardiac Physiology Group, Departments of Biomedical Physiology and Kinesiology and Molecular Biology and Biochemistry, Simon Fraser University, Burnaby, British Columbia V5A 1S6, Canada; hiPSC-CM Research Team, British Columbia Children's Hospital Research Institute, Vancouver, British Columbia V5Z 4H4, Canada.
Insights
Human-induced pluripotent stem cells (hiPSCs) enable atrial-specific cell generation for disease modeling and drug discovery. Research focuses on optimizing these cells for cardiovascular disease studies, despite challenges with immaturity.
Area of Science:
- Cardiovascular Research
- Stem Cell Biology
- Regenerative Medicine
Background:
- Human-induced pluripotent stem cells (hiPSCs) are crucial for studying cardiovascular disease pathophysiology.
- Patient-specific hiPSCs offer potential for regenerative medicine, disease modeling, and drug testing.
- The retinoic acid signaling pathway can direct hiPSC differentiation towards atrial cardiomyocytes.
Purpose of the Study:
- To investigate the application of hiPSCs in modeling atrial-specific diseases.
- To explore the use of hiPSC-derived atrial cells for drug discovery and screening.
- To understand the mechanisms and pathophysiology of atrial fibrillation using hiPSC models.
Main Methods:
- Generation and differentiation of patient-specific hiPSCs into atrial cardiac myocytes (hiPSC-aCMs) and atrial engineered heart tissue (aEHT).
- Utilizing genetic mutation studies to create disease models for inherited atrial conditions.
- Employing hiPSC-aCMs and aEHTs for drug efficacy testing on atrial fibrillation models.
Main Results:
- Successful differentiation of hiPSC-aCMs and aEHTs exhibiting atrial-specific gene expression and electrophysiological profiles.
- Development of disease models providing insights into atrial-specific disease mechanisms.
- Demonstrated utility of hiPSC-aCMs and aEHTs in evaluating atrial-selective pharmacological compounds.
Conclusions:
- hiPSCs are valuable tools for studying atrial fibrillation mechanisms, pathophysiology, and genetic underpinnings.
- hiPSC-derived atrial cells and tissues are effective for drug discovery and screening of atrial-selective therapies.
- Enhancing the maturation of hiPSC-derived cardiomyocytes remains a key challenge and area of ongoing research.
Abstract:
The discovery and application of human-induced pluripotent stem cells (hiPSCs) have been instrumental in the investigation of the pathophysiology of cardiovascular diseases. Patient-specific hiPSCs can now be generated, genome-edited, and subsequently differentiated into various cell types and used for regenerative medicine, disease modeling, drug testing, toxicity screening, and 3D tissue generation. Modulation of the retinoic acid signaling pathway has been shown to direct cardiomyocyte differentiation towards an atrial lineage. A variety of studies have successfully differentiated patient-specific atrial cardiac myocytes (hiPSC-aCM) and atrial engineered heart tissue (aEHT) that express atrial specific genes (e.g., sarcolipin and ANP) and exhibit atrial electrophysiological and contractility profiles. Identification of protocols to differentiate atrial cells from patients with atrial fibrillation and other inherited diseases or creating disease models using genetic mutation studies has shed light on the mechanisms of atrial-specific diseases and identified the efficacy of atrial-selective pharmacological compounds. hiPSC-aCMs and aEHTs can be used in drug discovery and drug screening studies to investigate the efficacy of atrial selective drugs on atrial fibrillation models. Furthermore, hiPSC-aCMs can be effective tools in studying the mechanism, pathophysiology and treatment options of atrial fibrillation and its genetic underpinnings. The main limitation of using hiPSC-CMs is their immature phenotype compared to adult CMs. A wide range of approaches and protocols are used by various laboratories to optimize and enhance CM maturation, including electrical stimulation, culture time, biophysical cues and changes in metabolic factors.
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