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Generating Self-Assembling Human Heart Organoids Derived from Pluripotent Stem Cells
Published on: September 15, 2021
Modeling the Effects of Maternal Diabetes on the Developing Human Heart Using Pluripotent Stem Cell-Derived Heart
Yonatan R Lewis-Israeli1,2, Mishref Abdelhamid1,3, Isoken Olomu3
1Division of Developmental and Stem Cell Biology, Institute for Quantitative Health Science and Engineering, Michigan State University, East Lansing, Michigan.
Insights
This study introduces a human stem cell model to investigate how maternal diabetes during pregnancy causes congenital heart defects. The new method uses human heart organoids to better understand these developmental issues in a human system.
Area of Science:
- Developmental Biology
- Stem Cell Biology
- Cardiovascular Research
Background:
- Congenital heart defects (CHD) are the most common birth defects.
- Maternal pregestational diabetes (PGD) significantly increases the risk of CHD.
- Existing models inadequately recapitulate human PGD-induced CHD mechanisms.
Purpose of the Study:
- To develop a human pluripotent stem cell (hPSC)-based model for studying PGD-induced CHD.
- To create physiologically relevant human heart organoids mimicking embryonic development under diabetic conditions.
- To investigate the cellular and developmental impacts of PGD on the human heart.
Main Methods:
- Generation of hPSC-derived embryoid bodies (EBs).
- Three-step Wnt signaling modulation for cardiac differentiation.
- Differentiation of EBs into heart organoids under healthy and PGD-mimicking conditions (high glucose and insulin).
Main Results:
- Successful generation of self-organizing human heart organoids.
- Demonstrated ability to model key features of PGD in a human system.
- Established protocols for immunofluorescence and preparation for further analysis of organoids.
Conclusions:
- hPSC-derived heart organoids provide a valuable platform for studying PGD-induced CHD.
- This model offers a human-relevant system to explore disease mechanisms, overcoming limitations of current models.
- The developed protocol facilitates research into critical developmental processes affected by maternal diabetes.
Abstract:
Congenital heart defects (CHD) constitute the most common type of birth defect in humans. Maternal diabetes during the first trimester of pregnancy (pregestational diabetes, or PGD) is one of the most prominent factors contributing to CHD, and is present in a significant population of female patients with diabetes in reproductive age. PGD is challenging to manage clinically due to the extreme sensitivity of the developing embryo to glucose oscillations, and constitutes a critical health problem for the mother and the fetus. The prevalence of PGD-induced CHD is increasing due to the ongoing diabetes epidemic. While studies using animal models and cells in culture have demonstrated that PGD alters critical cellular and developmental processes, the mechanisms remain obscure, and it is unclear to what extent these models recapitulate PGD-induced CHD in humans. Clinical practice precludes direct studies in developing human embryos, further highlighting the need for physiologically relevant models. To bypass many of these technical and ethical limitations, we describe here a human pluripotent stem cell (hPSC)-based method to generate developmentally relevant self-organizing human heart organoids. By using glucose and insulin to mimic the diabetic environment that the embryo faces in PGD, this system allows modeling critical features of PGD in a human system with relevant physiology, structure, and cell types. The protocol starts with the generation of hPSC-derived embryoid bodies in a 96-well plate, followed by a small molecule-based three-step Wnt activation/inhibition/activation strategy. Organoids are then differentiated under healthy (normal insulin and glucose) and diabetic conditions (high insulin and glucose) over time, allowing for the study of the effects of pregestational diabetes on the developing human heart. We also provide an immunofluorescence protocol for comparing, characterizing, and analyzing the differences between the healthy and diabetic organoids, and comment on additional steps for preparing the organoids for analysis by other techniques after differentiation. © 2022 The Authors. Current Protocols published by Wiley Periodicals LLC. Basic Protocol 1: Generation of hPSC-derived embryoid bodies Basic Protocol 2: Differentiation of EBs into heart organoids under healthy and diabetes-like conditions Basic Protocol 3: Immunofluorescence and organoid preparation for other assays.
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