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Published on: July 17, 2019
Fas-Activated Mitochondrial Apoptosis Culls Stalled Embryonic Stem Cells to Promote Differentiation
Eric S Wang1, Nichole A Reyes1, Collin Melton2
1Department of Pathology, University of California, San Francisco, San Francisco, CA 94143, USA.
Abstract:
The intrinsic (mitochondrial) apoptotic pathway is a conserved cell death program crucial for eliminating superfluous, damaged, or incorrectly specified cells, and the multi-domain pro-death BCL-2 family proteins BAX and BAK are required for its activation. In response to internal damage or developmental signals, BAX and/or BAK permeabilize the mitochondrial outer membrane, resulting in cytochrome c release and activation of effector caspases such as Caspase-3 (Casp3). While the mitochondrial apoptotic pathway plays a critical role during late embryonic development in mammals, its role during early development remains controversial. Here, we show that Bax(-/-)Bak(-/-) murine embryonic stem cells (ESCs) display defects during the exit from pluripotency, both in culture and during teratoma formation. Specifically, we find that when ESCs are stimulated to differentiate, a subpopulation fails to do so and instead upregulates FAS in a p53-dependent manner to trigger Bax/Bak-dependent apoptosis. Blocking this apoptotic pathway prevents the removal of these poorly differentiated cells, resulting in the retention of cells that have not exited pluripotency. Taken together, our results provide further evidence for heterogeneity in the potential of ESCs to successfully differentiate and reveal a novel role for apoptosis in promoting efficient ESC differentiation by culling cells that are slow to exit pluripotency.
Insights
Apoptosis, a programmed cell death, is essential for embryonic stem cell (ESC) differentiation. Bax/Bak-dependent apoptosis removes cells slow to exit pluripotency, ensuring efficient differentiation.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Biology
Background:
- The intrinsic apoptotic pathway, involving BAX and BAK, eliminates damaged cells.
- The role of apoptosis in early mammalian development is debated.
- Embryonic stem cells (ESCs) must exit pluripotency for differentiation.
Purpose of the Study:
- To investigate the role of the intrinsic apoptotic pathway in ESC differentiation.
- To determine if BAX and BAK are required for ESCs to exit pluripotency.
Main Methods:
- Utilized Bax(-/-)Bak(-/-) murine ESCs.
- Stimulated ESC differentiation in vitro and during teratoma formation.
- Analyzed p53-dependent FAS upregulation and apoptosis.
Main Results:
- Bax(-/-)Bak(-/-) ESCs showed defects in exiting pluripotency.
- A subpopulation of differentiating ESCs upregulated FAS, triggering BAX/BAK-dependent apoptosis.
- Inhibition of apoptosis led to the retention of undifferentiated cells.
Conclusions:
- Apoptosis plays a novel role in promoting ESC differentiation.
- The intrinsic apoptotic pathway culls cells slow to exit pluripotency, revealing ESC heterogeneity.
- This process is crucial for efficient differentiation and development.
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