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Published on: December 12, 2019
Coordination of cell proliferation and cell fate determination by CES-1 snail
Bo Yan1, Nadin Memar, Julia Gallinger
1Center for Integrated Protein Science, Department of Biology II, Ludwig-Maximilians-University, Munich, Planegg-Martinsried, Germany ; Department of Genetics, MCB Graduate Program, Geisel School of Medicine at Dartmouth, Hanover, New Hampshire, United States of America.
Abstract:
The coordination of cell proliferation and cell fate determination is critical during development but the mechanisms through which this is accomplished are unclear. We present evidence that the Snail-related transcription factor CES-1 of Caenorhabditis elegans coordinates these processes in a specific cell lineage. CES-1 can cause loss of cell polarity in the NSM neuroblast. By repressing the transcription of the BH3-only gene egl-1, CES-1 can also suppress apoptosis in the daughters of the NSM neuroblasts. We now demonstrate that CES-1 also affects cell cycle progression in this lineage. Specifically, we found that CES-1 can repress the transcription of the cdc-25.2 gene, which encodes a Cdc25-like phosphatase, thereby enhancing the block in NSM neuroblast division caused by the partial loss of cya-1, which encodes Cyclin A. Our results indicate that CDC-25.2 and CYA-1 control specific cell divisions and that the over-expression of the ces-1 gene leads to incorrect regulation of this functional 'module'. Finally, we provide evidence that dnj-11 MIDA1 not only regulate CES-1 activity in the context of cell polarity and apoptosis but also in the context of cell cycle progression. In mammals, the over-expression of Snail-related genes has been implicated in tumorigenesis. Our findings support the notion that the oncogenic potential of Snail-related transcription factors lies in their capability to, simultaneously, affect cell cycle progression, cell polarity and apoptosis and, hence, the coordination of cell proliferation and cell fate determination.
Insights
The transcription factor CES-1 in C. elegans coordinates cell fate by regulating cell polarity, apoptosis, and cell cycle progression. Overexpression of CES-1 disrupts these processes, similar to Snail-related genes in mammalian tumorigenesis.
Area of Science:
- Developmental Biology
- Cell Biology
- Genetics
Background:
- Coordinating cell proliferation and cell fate is crucial for development.
- Mechanisms underlying this coordination are not fully understood.
Purpose of the Study:
- Investigate the role of the Snail-related transcription factor CES-1 in Caenorhabditis elegans.
- Elucidate how CES-1 coordinates cell proliferation and cell fate determination.
Main Methods:
- Studied the NSM neuroblast lineage in C. elegans.
- Analyzed the effects of CES-1 on cell polarity, apoptosis, and cell cycle progression.
- Investigated the regulation of egl-1, cdc-25.2, and cya-1 genes by CES-1.
Main Results:
- CES-1 represses egl-1 transcription, suppressing apoptosis in neuroblast daughters.
- CES-1 represses cdc-25.2 transcription, affecting cell cycle progression.
- DNJ-11/MIDA1 regulates CES-1 activity in polarity, apoptosis, and cell cycle control.
Conclusions:
- CES-1 coordinates cell proliferation and fate by modulating polarity, apoptosis, and cell cycle.
- Dysregulation of Snail-related factors like CES-1 may contribute to tumorigenesis.
- CDC-25.2 and CYA-1 are key regulators of specific cell divisions influenced by CES-1.
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