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Published on: April 27, 2019
GPR137 Inhibits Cell Proliferation and Promotes Neuronal Differentiation in the Neuro2a Cells
Kensuke Iwasa1, Anzu Yamagishi1, Shinji Yamamoto1
1Department of Pharmacology, Faculty of Medicine, Saitama Medical University, 38 Moro-Hongo, Moroyama-Machi, Iruma-Gun, Saitama, 350-0495, Japan.
Abstract:
The orphan receptor, G protein-coupled receptor 137 (GPR137), is an integral membrane protein involved in several types of cancer. GPR137 is expressed ubiquitously, including in the central nervous system (CNS). We established a GPR137 knockout (KO) neuro2A cell line to analyze GPR137 function in neuronal cells. KO cells were generated by genome editing using clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9 and cultured as single cells by limited dilution. Rescue cells were then constructed to re-express GPR137 in GPR137 KO neuro2A cells using an expression vector with an EF1-alpha promoter. GPR137 KO cells increased cellular proliferation and decreased neurite outgrowth (i.e., a lower level of neuronal differentiation). Furthermore, GPR137 KO cells exhibited increased expression of a cell cycle regulator, cyclin D1, and decreased expression of a neuronal differentiation marker, NeuroD1. Additionally, GPR137 KO cells exhibited lower expression levels of the neurite outgrowth markers STAT3 and GAP43. These phenotypes were all abrogated in the rescue cells. In conclusion, GPR137 deletion increased cellular proliferation and decreased neuronal differentiation, suggesting that GPR137 promotes cell cycle exit and neuronal differentiation in neuro2A cells. Regulation of neuronal differentiation by GPR137 could be vital to constructing neuronal structure during brain development.
Insights
The orphan receptor G protein-coupled receptor 137 (GPR137) deletion in neuro2A cells increased cell proliferation and reduced neuronal differentiation. GPR137 promotes cell cycle exit and neurite outgrowth, vital for brain development.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- G protein-coupled receptor 137 (GPR137) is an orphan receptor and integral membrane protein implicated in cancer.
- GPR137 is widely expressed, including in the central nervous system (CNS).
Purpose of the Study:
- To investigate the function of GPR137 in neuronal cells.
- To analyze the role of GPR137 in cellular proliferation and neuronal differentiation.
Main Methods:
- Established a GPR137 knockout (KO) neuro2A cell line using CRISPR/Cas9 genome editing.
- Generated rescue cells by re-expressing GPR137 in KO cells.
- Analyzed cellular proliferation, neurite outgrowth, and expression of key markers (cyclin D1, NeuroD1, STAT3, GAP43).
Main Results:
- GPR137 KO cells exhibited increased cellular proliferation and decreased neurite outgrowth.
- KO cells showed elevated cyclin D1 and reduced NeuroD1, STAT3, and GAP43 expression.
- Phenotypes were reversed in rescue cells, confirming GPR137's role.
Conclusions:
- GPR137 deletion enhances cellular proliferation and impairs neuronal differentiation in neuro2A cells.
- GPR137 appears to promote cell cycle exit and neuronal differentiation.
- GPR137's regulation of neuronal differentiation is potentially crucial for neuronal structure development during brain development.

