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In Vitro Differentiation of Human Pluripotent Stem Cells into Trophoblastic Cells
Published on: March 16, 2017
Differential BMP signaling controls formation and differentiation of multipotent preplacodal ectoderm progenitors
Alan W Leung1, D Kent Morest, James Y H Li
1Department of Genetics and Developmental Biology, University of Connecticut Health Center, 400 Farmington Avenue, Farmington, CT 06030-6403, USA.
Insights
Researchers generated human preplacodal ectoderm (PPE) cells from stem cells, crucial for developing sensory and endocrine tissues. This breakthrough demonstrates the potential for generating diverse cell types, including sensory neurons, from these engineered PPE cells.
Area of Science:
- Developmental Biology
- Stem Cell Biology
- Human Embryology
Background:
- The preplacodal ectoderm (PPE) is a progenitor pool for diverse sensory and neuroendocrine tissues.
- Formation of PPE involves conserved transcription regulators like Six1, Eya1, and Eya2.
Purpose of the Study:
- To generate and characterize SIX1-positive PPE cells from human embryonic stem (ES) cells.
- To investigate the role of signaling pathways in human PPE development and differentiation.
Main Methods:
- Adherent differentiation of human ES cells.
- Analysis of transcriptional factor expression during differentiation.
- Manipulation of bone morphogenetic protein (BMP) and hedgehog signaling pathways.
Main Results:
- Human ES cell differentiation recapitulated key stages of PPE formation, including competence factor expression.
- Transient BMP signaling is essential for inducing PPE competence and cells.
- Attenuating BMP signaling after competence induction promotes anterior placode precursor formation.
- Further differentiation yielded lens placode, oral ectoderm (pituitary precursor), and sensory neurons.
Conclusions:
- Human ES cells can be differentiated into functional PPE cells.
- BMP and hedgehog signaling pathways are critical for directing human PPE development.
- Human ES-derived PPE cells are multipotent and can generate various sensory and neuroendocrine lineages.
Abstract:
Sensory and endoneurocrine tissues as diverse as the lens, the olfactory epithelium, the inner ear, the cranial sensory ganglia, and the anterior pituitary arise from a common pool of progenitors in the preplacodal ectoderm (PPE). Around late gastrulation, the PPE forms at the border surrounding the anterior neural plate, and expresses a unique set of evolutionarily conserved transcription regulators including Six1, Eya 1 and Eya2. Here, we describe the first report to generate and characterize the SIX1(+) PPE cells from human embryonic stem (ES) cells by adherent differentiation. Before forming PPE cells, differentiating cultures first expressed the non-neural ectoderm specific transcriptional factors TFAP2A, GATA2, GATA3, DLX3, and DLX5, which are crucial in establishing the PPE competence. We demonstrated that bone morphogenetic protein (BMP) activity plays a transient but essential role in inducing expression of these PPE competence factors and eventually the PPE cells. Interestingly, we found that attenuating BMP signaling after establishing the competence state induces anterior placode precursors. By manipulating BMP and hedgehog signaling pathways, we further differentiate these precursors into restricted lineages including the lens placode and the oral ectoderm (pituitary precursor) cells. Finally, we also show that sensory neurons can be generated from human PPE cells, demonstrating the multipotency of the human ES-derived PPE cells.
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