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Published on: July 30, 2021
Neural induction requires continued suppression of both Smad1 and Smad2 signals during gastrulation
Chenbei Chang1, Richard M Harland
1Department of Cell Biology, MCLM 360, University of Alabama at Birmingham, Birmingham, AL 35294-0005, USA. cchang@uab.edu
Abstract:
Vertebrate neural induction requires inhibition of bone morphogenetic protein (BMP) signaling in the ectoderm. However, whether inhibition of BMP signaling is sufficient to induce neural tissues in vivo remains controversial. Here we have addressed why inhibition of BMP/Smad1 signaling does not induce neural markers efficiently in Xenopus ventral ectoderm, and show that suppression of both Smad1 and Smad2 signals is sufficient to induce neural markers. Manipulations that inhibit both Smad1 and Smad2 pathways, including a truncated type IIB activin receptor, Smad7 and Ski, induce early neural markers and inhibit epidermal genes in ventral ectoderm; and co-expression of BMP inhibitors with a truncated activin/nodal-specific type IB activin receptor leads to efficient neural induction. Conversely, stimulation of Smad2 signaling in the neural plate at gastrula stages results in inhibition of neural markers, disruption of the neural tube and reduction of head structures, with conversion of neural to neural crest and mesodermal fates. The ability of activated Smad2 to block neural induction declines by the end of gastrulation. Our results indicate that prospective neural cells are poised to respond to Smad2 and Smad1 signals to adopt mesodermal and non-neural ectodermal fates even at gastrula stages, after the conventionally assigned end of mesodermal competence, so that continued suppression of both mesoderm- and epidermis-inducing Smad signals leads to efficient neural induction.
Insights
Inhibition of bone morphogenetic protein (BMP) and Smad2 signaling is sufficient for neural induction in Xenopus. Suppressing these signals prevents epidermal and mesodermal fates, promoting neural development.
Area of Science:
- Developmental Biology
- Molecular Biology
- Cell Signaling
Background:
- Vertebrate neural induction depends on inhibiting bone morphogenetic protein (BMP) signaling.
- The sufficiency of BMP inhibition alone for neural induction in vivo is debated.
Purpose of the Study:
- Investigate why BMP/Smad1 signaling inhibition alone is insufficient for efficient neural induction in Xenopus ventral ectoderm.
- Determine if suppressing both Smad1 and Smad2 signaling can induce neural markers.
Main Methods:
- Utilized Xenopus model system.
- Employed manipulations inhibiting Smad1 and Smad2 pathways, including truncated activin receptors, Smad7, and Ski.
- Co-expressed BMP inhibitors with truncated activin/nodal-specific type IB activin receptor.
- Stimulated Smad2 signaling in gastrula stage neural plate.
Main Results:
- Inhibition of both Smad1 and Smad2 pathways efficiently induced neural markers and suppressed epidermal genes in ventral ectoderm.
- Stimulating Smad2 signaling in the neural plate disrupted neural tube formation and head structures, converting neural to neural crest and mesodermal fates.
- The capacity of activated Smad2 to block neural induction diminished by the end of gastrulation.
Conclusions:
- Continued suppression of both mesoderm- and epidermis-inducing Smad signals (Smad1 and Smad2) is crucial for efficient neural induction.
- Prospective neural cells retain responsiveness to Smad1 and Smad2 signals, influencing cell fate decisions even after the typical window of mesodermal competence.
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