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Investigating the Function of Coronin A in the Early Starvation Response of Dictyostelium discoideum by Aggregation Assays
Published on: June 18, 2016
An Autocrine Negative Feedback Loop Inhibits Dictyostelium discoideum Proliferation through Pathways Including
Yu Tang1, Ramesh Rijal1, David E Zimmerhanzel1
1Department of Biology, Texas A&M University, College Station, Texas, USA.
Abstract:
Little is known about how eukaryotic cells can sense their number or spatial density and stop proliferating when the local density reaches a set value. We previously found that Dictyostelium discoideum accumulates extracellular polyphosphate to inhibit its proliferation, and this requires the G protein-coupled receptor GrlD and the small GTPase RasC. Here, we show that cells lacking the G protein component Gβ, the Ras guanine nucleotide exchange factor GefA, phosphatase and tensin homolog (PTEN), phospholipase C (PLC), inositol 1,4,5-trisphosphate (IP3) receptor-like protein A (IplA), polyphosphate kinase 1 (Ppk1), or the TOR complex 2 component PiaA have significantly reduced sensitivity to polyphosphate-induced proliferation inhibition. Polyphosphate upregulates IP3, and this requires GrlD, GefA, PTEN, PLC, and PiaA. Polyphosphate also upregulates cytosolic Ca2+, and this requires GrlD, Gβ, GefA, RasC, PLC, IplA, Ppk1, and PiaA. Together, these data suggest that polyphosphate uses signal transduction pathways including IP3/Ca2+ to inhibit the proliferation of D. discoideum. IMPORTANCE Many mammalian tissues such as the liver have the remarkable ability to regulate their size and have their cells stop proliferating when the tissue reaches the correct size. One possible mechanism involves the cells secreting a signal that they all sense, and a high level of the signal tells the cells that there are enough of them and to stop proliferating. Although regulating such mechanisms could be useful to regulate tissue size to control cancer or birth defects, little is known about such systems. Here, we use a microbial system to study such a mechanism, and we find that key elements of the mechanism have similarities to human proteins. This then suggests the possibility that we may eventually be able to regulate the proliferation of selected cell types in humans and animals.
Insights
Dictyostelium discoideum uses extracellular polyphosphate to regulate cell proliferation. This process involves signaling pathways including inositol trisphosphate (IP3) and calcium ions (Ca2+), offering insights into cell density sensing.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- Eukaryotic cells regulate proliferation based on density, but mechanisms are poorly understood.
- Dictyostelium discoideum uses extracellular polyphosphate to inhibit proliferation, requiring GrlD and RasC.
- Understanding cell density sensing is crucial for controlling tissue size and preventing diseases like cancer.
Purpose of the Study:
- To elucidate the signal transduction pathways involved in polyphosphate-mediated proliferation inhibition in Dictyostelium discoideum.
- To identify key molecular components required for sensing extracellular polyphosphate and halting cell division.
Main Methods:
- Investigated the role of various signaling proteins (Gβ, GefA, PTEN, PLC, IplA, Ppk1, PiaA) in polyphosphate response.
- Measured the impact of polyphosphate on inositol trisphosphate (IP3) and cytosolic calcium (Ca2+) levels.
- Analyzed proliferation inhibition in knockout strains of Dictyostelium discoideum.
Main Results:
- Cells lacking Gβ, GefA, PTEN, PLC, IplA, Ppk1, or PiaA showed reduced sensitivity to polyphosphate-induced proliferation inhibition.
- Polyphosphate upregulates IP3, requiring GrlD, GefA, PTEN, PLC, and PiaA.
- Polyphosphate upregulates cytosolic Ca2+, requiring GrlD, Gβ, GefA, RasC, PLC, IplA, Ppk1, and PiaA.
Conclusions:
- Polyphosphate inhibits Dictyostelium discoideum proliferation via signal transduction pathways involving IP3 and Ca2+.
- Identified key signaling molecules in the polyphosphate sensing and proliferation inhibition pathway.
- Findings suggest conserved mechanisms for cell density sensing between Dictyostelium and humans, with potential therapeutic implications.
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