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Changes in embryonic cell fate produced by expression of an endodermal transcription factor, Xsox17
1Department of Biological Sciences, University of Warwick, CV4 7AL, Coventry, UK.
Abstract:
Many molecules induce the ectopic expression of tissue-specific genes in Xenopus embryos. Conversely, interfering with their activity disrupts patterns of gene expression, implicating them in normal development. Does this mean that they control cell fate (i.e. position, as well as differentiation)? Xsox17alpha and beta can induce ectopic expression of endodermal markers; inhibiting their function suppresses expression of endodermal marker genes in the developing gut (Cell 91 (1997) 397). Here we show the effect of these manipulations on cell lineage. Expressing Xsox17 in a cells normally fated to become ectoderm causes their descendants either to relocate into the embryonic gut or to die at a late developmental stage. Conversely, disrupting Xsox17 activity in cells normally fated to be endodermal causes them to enter mesodermal and ectodermal lineages.
Insights
Xenopus Sox17 (Xsox17) proteins are crucial for endodermal development. Manipulating Xsox17 in embryonic cells alters their fate, causing them to become endoderm, mesoderm, ectoderm, or leading to cell death, revealing its role in cell fate determination.
Area of Science:
- Developmental biology
- Molecular biology
- Xenopus embryology
Background:
- Tissue-specific gene expression in Xenopus embryos is induced by various molecules.
- Interfering with these molecules disrupts gene expression patterns, suggesting a role in normal development.
- Xenopus Sox17alpha and beta (Xsox17) induce endodermal markers and are necessary for gut development.
Purpose of the Study:
- To investigate the effect of Xsox17 manipulations on cell lineage in Xenopus embryos.
- To determine if Xsox17 controls cell fate, including position and differentiation.
Main Methods:
- Expressing Xsox17 in ectoderm-destined cells.
- Disrupting Xsox17 activity in endoderm-destined cells.
- Tracking cell lineage and fate following these manipulations.
Main Results:
- Ectopic Xsox17 expression in ectoderm-fated cells caused their descendants to migrate into the gut or undergo late-stage cell death.
- Disrupting Xsox17 in endoderm-fated cells resulted in their differentiation into mesodermal and ectodermal lineages.
- These findings demonstrate a direct impact of Xsox17 on cell fate determination and lineage progression.
Conclusions:
- Xenopus Sox17 plays a critical role in specifying endodermal cell fate.
- Xsox17 influences cell positioning, differentiation, and survival during embryonic development.
- The study provides evidence that Xsox17 acts as a key regulator of cell fate decisions in Xenopus embryos.