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Published on: March 2, 2018
Receptor tyrosine phosphatase PTPγ is a regulator of spinal cord neurogenesis
Hamid Hashemi1, Michael Hurley, Anna Gibson
1UCL Institute of Child Health, University College London, London, UK.
Insights
The orphan receptor protein tyrosine phosphatase gamma (PTPγ) is crucial for spinal cord development. It regulates neural progenitor proliferation, survival, and cell adhesion, impacting neurogenesis and motor neuron migration.
Area of Science:
- Developmental biology
- Neuroscience
- Cell biology
Background:
- Spinal cord development involves precise control of neural progenitor proliferation, migration, and survival.
- The role of orphan receptor protein tyrosine phosphatase gamma (PTPγ) in this process is largely unknown.
Purpose of the Study:
- To investigate the function of PTPγ in the developing chick spinal cord.
- To elucidate PTPγ's role in neurogenesis, neuronal maturation, and progenitor cell behavior.
Main Methods:
- Utilized in ovo gain-of-function and loss-of-function approaches in chick embryos.
- Analyzed PTPγ expression patterns, progenitor proliferation rates, apoptosis, cell adhesion, and signaling pathways (Wnt/β-catenin).
Main Results:
- PTPγ perturbation reduced progenitor proliferation and neuronal precursor numbers, causing neuroepithelial hypoplasia.
- Gain-of-function suppressed Wnt/β-catenin signaling; PTPγ can dephosphorylate β-catenin in vitro.
- Loss-of-function increased apoptosis, impaired cell adhesion, and specifically affected motor neuron precursor migration.
Conclusions:
- PTPγ regulates neurogenesis during a critical window of spinal cord development.
- Molecular targets of PTPγ likely involve Wnt/β-catenin signaling, cell survival, and cell adhesion pathways.
- PTPγ plays a multifaceted role in ensuring proper spinal cord formation.
Abstract:
During spinal cord development the proliferation, migration and survival of neural progenitors and precursors is tightly controlled, generating the fine spatial organisation of the cord. In order to understand better the control of these processes, we have examined the function of an orphan receptor protein tyrosine phosphatase (RPTP) PTPγ, in the developing chick spinal cord. Widespread expression of PTPγ occurs post-embryonic day 3 in the early cord and is consistent with a potential role in either neurogenesis or neuronal maturation. Using gain-of-function and loss-of-function approaches in ovo, we show that PTPγ perturbation significantly reduces progenitor proliferation rates and neuronal precursor numbers, resulting in hypoplasia of the neuroepithelium. PTPγ gain-of-function causes widespread suppression of Wnt/β-catenin-driven TCF signalling. One potential target of PTPγ may therefore be β-catenin itself, since PTPγ can dephosphorylate it in vitro, but alternative targets are also likely. PTPγ loss-of-function is not sufficient to alter TCF signalling. Instead, loss-of-function leads to increased apoptosis and defective cell-cell adhesion in progenitors and precursors. Furthermore, motor neuron precursor migration is specifically defective. PTPγ therefore regulates neurogenesis during a window of spinal cord development, with molecular targets most likely related to Wnt/β-catenin signalling, cell survival and cell adhesion.
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