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Developing 3D Organized Human Cardiac Tissue within a Microfluidic Platform
Published on: June 15, 2021
Transcriptome profiling of 3D co-cultured cardiomyocytes and endothelial cells under oxidative stress using a
Xiaoshan Yue1, Aylin Acun2, Pinar Zorlutuna3
1University of Notre Dame, Department of Aerospace and Mechanical Engineering, Bioengineering Graduate Program, United States.
Insights
Human induced pluripotent stem cell-derived endothelial cells (iECs) protect cardiomyocytes (CMs) from oxidative stress. This biomimetic model reveals iECs stabilize CMs, offering new therapeutic targets for heart attack recovery and reducing reperfusion injury.
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Biomaterials Science
Background:
- Myocardial infarction (MI) is a leading cause of cardiovascular disease, often involving oxidative stress during reperfusion.
- Existing cell culture models lack the biomimicry needed to fully understand cell-cell interactions and protective mechanisms.
- Endothelial cells (ECs) are known to offer protection to cardiomyocytes (CMs), but the underlying crosstalk mechanisms are not well-defined.
Purpose of the Study:
- To investigate the protective effects of endothelial cells on cardiomyocytes under stress conditions using a biomimetic 3D model.
- To identify molecular pathways involved in cardiomyocyte-endothelial cell crosstalk that enhance cell survival after myocardial infarction.
- To validate the in vivo relevance of the engineered model for understanding heart disease pathophysiology.
Main Methods:
- Creation of biomimetic synthetic tissues combining cardiomyocytes (CMs) and human induced pluripotent stem cell-derived ECs (iECs).
- High-throughput RNA-sequencing to analyze gene expression profiles in co-cultured vs. single-cultured cells under oxidative stress.
- Validation of gene expression changes in the engineered model against in vivo rat MI and clinical data.
Main Results:
- Co-cultured CMs and iECs demonstrated improved cell survival compared to single cultures under simulated MI conditions.
- iECs exerted a stabilizing effect on CM gene expression under oxidative stress, unlike single-cultured CMs.
- Key pathways modulated by iECs include mitochondrial complex stabilization, suppressed oxidative phosphorylation, and activation of drug metabolism, Rap1, and adrenergic signaling pathways.
Conclusions:
- Human induced pluripotent stem cell-derived ECs (iECs) provide significant protective effects to cardiomyocytes (CMs) under oxidative stress.
- The biomimetic 3D model effectively recapitulates in vivo responses and aids in identifying protective molecular pathways.
- Targeting identified pathways, such as those involving mitochondrial function and specific signaling cascades, may offer novel therapeutic strategies for reducing cardiac damage post-MI.
Abstract:
Myocardial infarction (MI) is one of the most common among cardiovascular diseases. Endothelial cells (ECs) are considered to have protective effects on cardiomyocytes (CMs) under stress conditions such as MI; however, the paracrine CM-EC crosstalk and the resulting endogenous cellular responses that could contribute to this protective effect are not thoroughly investigated. Here we created biomimetic synthetic tissues containing CMs and human induced pluripotent stem cell (hiPSC)-derived ECs (iECs), which showed improved cell survival compared to single cultures under conditions mimicking the aftermath of MI, and performed high-throughput RNA-sequencing to identify target pathways that could govern CM-iEC crosstalk and the resulting improvement in cell viability. Our results showed that single cultured CMs had different gene expression profiles compared to CMs co-cultured with iECs. More importantly, this gene expression profile was preserved in response to oxidative stress in co-cultured CMs while single cultured CMs showed a significantly different gene expression pattern under stress, suggesting a stabilizing effect of iECs on CMs under oxidative stress conditions. Furthermore, we have validated the in vivo relevance of our engineered model tissues by comparing the changes in the expression levels of several key genes of the encapsulated CMs and iECs with in vivo rat MI model data and clinical data, respectively. We conclude that iECs have protective effects on CMs under oxidative stress through stabilizing mitochondrial complexes, suppressing oxidative phosphorylation pathway and activating pathways such as the drug metabolism-cytochrome P450 pathway, Rap1 signaling pathway, and adrenergic signaling in cardiomyocytes pathway.
Statement Of Significance:
Heart diseases are the leading cause of death worldwide. Oxidative stress is a common unwanted outcome that especially occurs due to the reperfusion following heart attack or heart surgery. Standard methods of in vivo analysis do not allow dissecting various intermingled parameters, while regular 2D cell culture approaches often fail to provide a biomimetic environment for the physiologically relevant cellular phenotypes. In this research, a systematic genome-wide transcriptome profiling was performed on myocardial cells in a biomimetic 3D hydrogel-based synthetic model tissue, for identifying possible target genes and pathways as protecting regulators against oxidative stress. Identification of such pathways would be very valuable for new strategies during heart disease treatment by reducing the cellular damage due to reperfusion injury.
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