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Enhancing the Engraftment of Human Induced Pluripotent Stem Cell-derived Cardiomyocytes via a Transient Inhibition of Rho Kinase Activity
Published on: July 10, 2019
Rapamycin regulates autophagy and cell adhesion in induced pluripotent stem cells
Areechun Sotthibundhu1,2, Katya McDonagh1, Alexander von Kriegsheim3
1Regenerative Medicine Institute, School of Medicine, National University of Ireland Galway, Galway, Ireland.
Background:
Cellular reprogramming is a stressful process, which requires cells to engulf somatic features and produce and maintain stemness machineries. Autophagy is a process to degrade unwanted proteins and is required for the derivation of induced pluripotent stem cells (iPSCs). However, the role of autophagy during iPSC maintenance remains undefined.
Methods:
Human iPSCs were investigated by microscopy, immunofluorescence, and immunoblotting to detect autophagy machinery. Cells were treated with rapamycin to activate autophagy and with bafilomycin to block autophagy during iPSC maintenance. High concentrations of rapamycin treatment unexpectedly resulted in spontaneous formation of round floating spheres of uniform size, which were analyzed for differentiation into three germ layers. Mass spectrometry was deployed to reveal altered protein expression and pathways associated with rapamycin treatment.
Results:
We demonstrate that human iPSCs express high basal levels of autophagy, including key components of APMKα, ULK1/2, BECLIN-1, ATG13, ATG101, ATG12, ATG3, ATG5, and LC3B. Block of autophagy by bafilomycin induces iPSC death and rapamycin attenuates the bafilomycin effect. Rapamycin treatment upregulates autophagy in iPSCs in a dose/time-dependent manner. High concentration of rapamycin reduces NANOG expression and induces spontaneous formation of round and uniformly sized embryoid bodies (EBs) with accelerated differentiation into three germ layers. Mass spectrometry analysis identifies actin cytoskeleton and adherens junctions as the major targets of rapamycin in mediating iPSC detachment and differentiation.
Conclusions:
High levels of basal autophagy activity are present during iPSC derivation and maintenance. Rapamycin alters expression of actin cytoskeleton and adherens junctions, induces uniform EB formation, and accelerates differentiation. IPSCs are sensitive to enzyme dissociation and require a lengthy differentiation time. The shape and size of EBs also play a role in the heterogeneity of end cell products. This research therefore highlights the potential of rapamycin in producing uniform EBs and in shortening iPSC differentiation duration.
Insights
Autophagy is crucial for induced pluripotent stem cell (iPSC) maintenance, with rapamycin treatment promoting uniform embryoid body formation and faster differentiation. This study reveals rapamycin
Area of Science:
- Stem Cell Biology
- Cellular Metabolism
- Autophagy Research
Background:
- Cellular reprogramming requires stemness maintenance, with autophagy playing a role in induced pluripotent stem cell (iPSC) derivation.
- The specific function of autophagy during the maintenance phase of iPSCs has not been clearly defined.
- Understanding autophagy's role is critical for optimizing iPSC culture and applications.
Purpose of the Study:
- To investigate the role and significance of autophagy in maintaining human induced pluripotent stem cells (iPSCs).
- To explore the effects of modulating autophagy on iPSC characteristics and differentiation potential.
- To identify potential therapeutic strategies for improving iPSC differentiation efficiency.
Main Methods:
- Microscopy, immunofluorescence, and immunoblotting were used to characterize autophagy machinery in human iPSCs.
- Cells were treated with rapamycin (autophagy activator) and bafilomycin (autophagy inhibitor) to assess autophagy modulation.
- Mass spectrometry was employed to analyze protein expression changes and identify pathways affected by rapamycin.
Main Results:
- Human iPSCs exhibit high basal levels of autophagy, involving key proteins like LC3B and ATG proteins.
- Inhibition of autophagy by bafilomycin led to iPSC death, while rapamycin mitigated this effect.
- High-dose rapamycin reduced NANOG expression, induced uniform embryoid body formation, and accelerated differentiation into three germ layers by targeting the actin cytoskeleton and adherens junctions.
Conclusions:
- High basal autophagy activity is essential for both the derivation and maintenance of iPSCs.
- Rapamycin treatment influences iPSC behavior by altering cytoskeletal components, promoting uniform embryoid body formation, and accelerating differentiation.
- This research suggests rapamycin's potential for generating uniform embryoid bodies and reducing iPSC differentiation time, addressing challenges in cell product heterogeneity and culture duration.
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