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Published on: October 23, 2018
A two-pore channel protein required for regulating mTORC1 activity on starvation
Fu-Sheng Chang1, Yuntao Wang1, Phillip Dmitriev1
1Department of Biochemistry, University of Oxford, South Parks Road, Oxford, OX1 3QU, UK.
Background:
Two-pore channels (TPCs) release Ca2+ from acidic intracellular stores and are implicated in a number of diseases, but their role in development is unclear. The social amoeba Dictyostelium discoideum proliferates as single cells that aggregate to form a multicellular organism on starvation. Starvation is sensed by the mTORC1 complex which, like TPC proteins, is found on acidic vesicles. Here, we address the role of TPCs in development and under starvation.
Results:
We report that disruption of the gene encoding the single Dictyostelium TPC protein, TPC2, leads to a delay in early development and prolonged growth in culture with delayed expression of early developmental genes, although a rapid starvation-induced increase in autophagy is still apparent. Ca2+ signals induced by extracellular cAMP are delayed in developing tpc2- cells, and aggregation shows increased sensitivity to weak bases, consistent with reduced acidity of the vesicles. In mammalian cells, the mTORC1 protein kinase has been proposed to suppress TPC channel opening. Here, we show a reciprocal effect as tpc2- cells show an increased level of phosphorylation of an mTORC1 substrate, 4E-BP1. mTORC1 inhibition reverses the prolonged growth and increases the efficiency of aggregation of tpc2- cells.
Conclusion:
TPC2 is required for efficient growth development transition in Dictyostelium and acts through modulation of mTORC1 activity revealing a novel mode of regulation.
Insights
Two-pore channels (TPCs) are crucial for Dictyostelium development. Disrupting TPC2 delays growth and development by altering mTORC1 activity, revealing a new regulatory pathway.
Area of Science:
- Cell Biology
- Developmental Biology
- Biochemistry
Background:
- Two-pore channels (TPCs) regulate Ca2+ release from acidic intracellular stores.
- TPCs are linked to various diseases, but their developmental roles remain largely unknown.
- Dictyostelium discoideum serves as a model organism to study TPCs in development and starvation response.
Purpose of the Study:
- To investigate the role of TPCs in Dictyostelium development and under starvation conditions.
- To elucidate the relationship between TPCs and the mTORC1 complex during cellular development.
Main Methods:
- Gene disruption of the Dictyostelium TPC2 gene.
- Analysis of developmental timing and gene expression.
- Measurement of Ca2+ signals and vesicle acidity.
- Assessment of mTORC1 substrate phosphorylation (4E-BP1).
Main Results:
- TPC2 disruption caused delayed development and prolonged growth, with altered early gene expression.
- Ca2+ signaling was delayed, and aggregation showed increased sensitivity to weak bases, indicating reduced vesicle acidity.
- TPC2-deficient cells exhibited increased mTORC1 substrate phosphorylation, and mTORC1 inhibition rescued developmental defects.
Conclusions:
- TPC2 is essential for the efficient transition from growth to development in Dictyostelium.
- TPC2 modulates mTORC1 activity, establishing a novel regulatory mechanism in cellular development.
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