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Cholinergic differentiation triggered by blocking cell proliferation and treatment with all-trans-retinoic acid
M A Malik1, C E Greenwood, J K Blusztajn
1Department of Nutritional Sciences, Faculty of Medicine, University of Toronto, FitzGerald Building, 150 College Street, Toronto, M5S 3E2, Ontario, Canada.
Abstract:
This study determined whether the effect of all-trans-retinoic acid (t-RA) on markers of cholinergic differentiation in a murine septal cell line, SN56.B5.G4, differed depending upon the cell's proliferative status. To develop a model of non-proliferating cells, aphidicolin, a DNA alpha-polymerase inhibitor, was used. Cessation of proliferation by aphidicolin increased intracellular choline and acetylcholine (ACh) levels in the absence of change to choline acetyltransferase (ChAT) activity and mRNA and vesicular ACh transporter (VAChT) mRNA. Importantly, the response to t-RA differed depending upon proliferative status. Consistent with previous reports, t-RA increased ChAT and VAChT mRNA, ChAT activity and intracellular ACh levels in proliferating SN56 cells with no effect on intracellular choline levels. When cells were treated with t-RA while undergoing proliferative arrest, an additive effect of combined treatment was observed on ACh levels; nevertheless, this was only accompanied by an increase in choline levels, VAChT and ChAT mRNAs, but not ChAT activity. Indeed, aphidicolin treatment completely suppressed the t-RA-induced increase in ChAT activity observed in proliferating cells. To explore the response to t-RA in post-mitotic cells, a sequential treatment of aphidicolin and t-RA was employed. t-RA treatment was ineffective in increasing ACh and choline levels, over and above that observed with the aphidicolin treatment alone. Comparable to the combined treatment, sequential treatment lead to an increase in ChAT mRNA without any increase in ChAT activity. In conclusion, both the magnitude and the mechanism(s) of action whereby t-RA enhances the cholinergic phenotype of SN56 cells is dependent upon the cell's proliferative status.
Insights
All-trans-retinoic acid (t-RA) impacts cholinergic differentiation markers differently based on cell proliferation status. Non-proliferating cells show altered responses to t-RA, affecting acetylcholine (ACh) and choline levels.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Cholinergic differentiation is crucial for neuronal function.
- All-trans-retinoic acid (t-RA) is known to influence neuronal development.
- The role of cell proliferation status in t-RA's effect on cholinergic markers is not fully understood.
Purpose of the Study:
- To investigate how cell proliferative status affects the response of cholinergic differentiation markers to t-RA.
- To compare the effects of t-RA on proliferating versus non-proliferating murine septal cells (SN56.B5.G4).
Main Methods:
- Utilized aphidicolin, a DNA alpha-polymerase inhibitor, to induce proliferative arrest in SN56.B5.G4 cells.
- Assessed intracellular choline and acetylcholine (ACh) levels, choline acetyltransferase (ChAT) activity and mRNA, and vesicular ACh transporter (VAChT) mRNA.
- Compared the effects of t-RA on proliferating cells, cells in proliferative arrest, and sequentially treated cells.
Main Results:
- Aphidicolin-induced proliferation cessation increased intracellular choline and ACh levels without altering ChAT activity or VAChT mRNA.
- In proliferating cells, t-RA increased ChAT mRNA, ChAT activity, and intracellular ACh.
- In non-proliferating cells, t-RA increased choline levels and ChAT mRNA but not ChAT activity, and suppressed the t-RA-induced increase in ChAT activity seen in proliferating cells.
Conclusions:
- The effect of t-RA on cholinergic phenotype markers is significantly dependent on the cell's proliferative status.
- Both the magnitude and mechanism of t-RA's action vary between proliferating and non-proliferating states.
- These findings highlight the importance of considering cell cycle dynamics in retinoic acid signaling pathways in neuronal differentiation.
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