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Regulation of the neuronal fate by DeltaFosB and its downstream target, galectin-1
Tomofumi Miura1, Yoshinori Ohnishi, Hideaki Kurushima
1Division of Neurofunctional Genomics, Department of Immunobiology and Neuroscience, Medical Institute of Bioregulation, Kyushu University, Fukuoka, Japan.
Abstract:
In mammals, the regulation of the cell fate to either proliferate, differentiate, arrest cell growth, or initiate programmed cell death is the most fundamental mechanism for maintaining normal cell function and tissue homeostasis. Under multiple signaling pathways, Jun and Fos family proteins are known to play important roles as components of an AP-1 (activator protein-1) complex, to regulate the transcription of various genes involved in cell proliferation, differentiation and programmed cell death. DeltaFosB, one of the AP-1 subunits encoded by alternatively spliced fosB mRNA, triggers one round of proliferation in quiescent rat embryo cell lines, followed by a different cell fate such as morphological alteration or delayed cell death. As one of the downstream targets of the DeltaFosB in rat3Y1 cell line, we identified rat galectin-1 and its novel variant, galectin-1beta, and demonstrated that the expression of galectin-1 is required for the proliferative activation of quiescent rat1A cells by DeltaFosB, thus indicating that galectin-1 is one of functional targets of DeltaFosB. The expression of DeltaFosB is highly inducible in the adult brain in response to various insults such as ischemic reperfusion injury, seizure induced by electric stimulation or cocaine administration. On the other hand, galectin-1 has also been shown to be involved in the regeneration of damaged axons in the peripheral nerve, as well as in neurite outgrowth or synaptic connectivity in the olfactory system during development. We herein propose that DeltaFosB together with galectin-1, may therefore mediate neuroprotection and neurogenesis in response to brain damage.
Insights
The transcription factor DeltaFosB induces cell proliferation and is linked to galectin-1 expression. This DeltaFosB-galectin-1 pathway may play a role in neuroprotection and neurogenesis following brain damage.
Area of Science:
- Molecular Biology
- Cell Biology
- Neuroscience
Background:
- Cell fate regulation (proliferation, differentiation, apoptosis) is crucial for tissue homeostasis.
- Jun and Fos family proteins form the activator protein-1 (AP-1) complex, regulating genes involved in cell fate.
- DeltaFosB, an AP-1 subunit, influences cell proliferation, differentiation, and cell death.
Purpose of the Study:
- To investigate the downstream targets of DeltaFosB in cell fate regulation.
- To explore the role of DeltaFosB and galectin-1 in the context of brain injury and repair.
Main Methods:
- Identification of DeltaFosB downstream targets in rat embryo cell lines (rat3Y1).
- Analysis of galectin-1 expression and its necessity for DeltaFosB-induced proliferation in rat1A cells.
- Review of existing literature on DeltaFosB and galectin-1 expression in the adult brain and their roles in neural processes.
Main Results:
- DeltaFosB triggers cell proliferation followed by altered cell fate (morphological changes, delayed cell death).
- Rat galectin-1 and its variant galectin-1beta were identified as downstream targets of DeltaFosB.
- Galectin-1 expression is essential for DeltaFosB-mediated proliferation of quiescent cells.
- DeltaFosB is inducible in the brain after insults; galectin-1 is involved in nerve regeneration and neurite outgrowth.
Conclusions:
- Galectin-1 is a functional downstream target of DeltaFosB, mediating proliferative responses.
- The DeltaFosB-galectin-1 axis is proposed to be involved in neuroprotection and neurogenesis after brain damage.
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