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In Vitro Models of Cardiovascular Disease: Embryoid Bodies, Organoids and Everything in Between
Theodora M Stougiannou1, Konstantinos C Christodoulou1, Dimos Karangelis1
1Department of Cardiothoracic Surgery, Democritus University of Thrace University General Hospital, 68100 Alexandroupolis, Greece.
Insights
Stem cell-derived cardiac organoids and stem cell-based models of embryos (SCME) offer advanced 3D models for studying cardiovascular disease progression. These models effectively recapitulate cardiac tissue development and disease, aiding research into embryonic/fetal tissue injury.
Area of Science:
- Cardiovascular biology and regenerative medicine.
- Stem cell biology and tissue engineering.
- Developmental biology and disease modeling.
Background:
- Cardiovascular diseases impact cardiac function through cardiomyocyte dysfunction or death.
- Stem cell advancements enable the creation of sophisticated 3D cardiac disease models.
- Three-dimensional models like organoids and SCME recapitulate tissue development and function.
Purpose of the Study:
- To review and summarize recent cardiac organoid models.
- To highlight their utility in recapitulating cardiac disease.
- To focus on models relevant to embryonic/fetal tissue injury.
Main Methods:
- Literature review of stem cell-based cardiac models.
- Analysis of organoids and SCME derived from embryoid bodies (EB).
- Focus on models recapitulating 3D form, function, and developmental programs.
Main Results:
- Numerous cardiac organoid and SCME models have been developed.
- These models successfully recreate cardiac tissue and developmental processes.
- They are valuable for studying genetic and acquired cardiovascular diseases.
Conclusions:
- Stem cell-derived cardiac organoids and SCME are powerful tools for cardiovascular research.
- These models facilitate the study of disease mechanisms in cardiac tissues.
- The review emphasizes their application in understanding embryonic/fetal cardiovascular conditions.
Abstract:
Cardiovascular disease comprises a group of disorders affecting or originating within tissues and organs of the cardiovascular system; most, if not all, will eventually result in cardiomyocyte dysfunction or death, negatively impacting cardiac function. Effective models of cardiac disease are thus important for understanding crucial aspects of disease progression, while recent advancements in stem cell biology have allowed for the use of stem cell populations to derive such models. These include three-dimensional (3D) models such as stem cell-based models of embryos (SCME) as well as organoids, many of which are frequently derived from embryoid bodies (EB). Not only can they recapitulate 3D form and function, but the developmental programs governing the self-organization of cell populations into more complex tissues as well. Many different organoids and SCME constructs have been generated in recent years to recreate cardiac tissue and the complex developmental programs that give rise to its cellular composition and unique tissue morphology. It is thus the purpose of this narrative literature review to describe and summarize many of the recently derived cardiac organoid models as well as their use for the recapitulation of genetic and acquired disease. Owing to the cellular composition of the models examined, this review will focus on disease and tissue injury associated with embryonic/fetal tissues.
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