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Assessing Primary Neurogenesis in Xenopus Embryos Using Immunostaining
Published on: April 12, 2016
XNGNR1-dependent neurogenesis mediates early neural cell death
1Department of Genetics and Development, Columbia University, New York NY 10032, USA.
Abstract:
Early neural cell death is programmed cell death occurring within proliferating and undifferentiated neural progenitors. Little is known about the regulation and role of early neural cell death. In Xenopus embryos, primary neurogenesis is disrupted following the inhibition of early neural cell death, indicating that it is required for normal primary neurogenesis. Here we show that early neural cell death is dependent on primary neurogenesis. Overexpression of XSoxD concomitantly reduced N-Tubulin expression and early neural cell death, as seen by reduced TUNEL staining in stage 15 embryos. Conversely, overexpression of XNgnr1 led to ectopic N-Tubulin expression and TUNEL staining. However, XNeuroD overexpression, which induces ectopic N-Tubulin expression downstream of XNgnr1, had no effect on early neural cell death. E1A12S differentially inhibits the differentiation pathway induced by XNGNR1 protein. E1A12S-mediated inhibition of XNGNR1 neurogenic activity resulted in the reduction of N-Tubulin expression and TUNEL staining. Taken together, our data establish that primary neurogenesis induced by XNGNR1 promotes early neural cell death. This indicates that XNgnr1 positively regulates early neural cell death. We propose that early neural cell death might eliminate cells with abnormally high levels of XNGNR1, which can result in pre-mature neuronal differentiation.
Insights
Early neural cell death, crucial for neurogenesis, is promoted by XNgnr1-induced primary neurogenesis. This process may eliminate cells differentiating too early.
Area of Science:
- Developmental biology
- Neuroscience
- Cell biology
Background:
- Early neural cell death, a programmed cell death in neural progenitors, is poorly understood.
- Inhibition of early neural cell death disrupts neurogenesis in Xenopus embryos, highlighting its importance.
Purpose of the Study:
- To investigate the regulation and role of early neural cell death in primary neurogenesis.
- To determine the relationship between primary neurogenesis and early neural cell death.
Main Methods:
- Xenopus embryo manipulation including overexpression of XSoxD, XNgnr1, XNeuroD, and E1A12S.
- Assessment of N-Tubulin expression as a marker for neuronal differentiation.
- TUNEL staining to quantify early neural cell death.
Main Results:
- Overexpression of XSoxD reduced N-Tubulin expression and early neural cell death.
- Overexpression of XNgnr1 increased N-Tubulin expression and TUNEL staining.
- XNeuroD overexpression did not affect early neural cell death, while E1A12S inhibited XNgnr1-induced neurogenesis and cell death.
Conclusions:
- Primary neurogenesis induced by XNgnr1 promotes early neural cell death.
- XNgnr1 positively regulates early neural cell death.
- Early neural cell death may eliminate neural progenitors with excessive XNgnr1, preventing premature differentiation.
