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Galpha-mediated inhibition of developmental signal response
Joseph A Brzostowski1, Cynthia Johnson, Alan R Kimmel
1Laboratory of Cellular and Developmental Biology, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health, Bethesda, MD 20892-8028, USA.
Background:
Seven-transmembrane receptor (7-TMR)-G protein networks are molecular sensors of extracellular signals in all eukarya. These pathways cycle through activated (sensitized) and inhibited (desensitized) states, and, while many of the molecular components for signal activation have been described, inhibitory mechanisms are not well characterized. In Dictyostelium, 7-TM cAMP receptors direct chemotaxis and development but also regulate the periodic synthesis of their own ligand, the chemoattractant/morphogen cAMP. We now demonstrate through loss-of-function/gain-of-function studies that the novel heterotrimeric Galpha9 protein subunit regulates an inhibitory pathway during early Dictyostelium development for the cAMP signal response.
Results:
galpha9 null cells form more cAMP signaling centers, are more resistant to compounds that inhibit cAMP signaling, and complete aggregation sooner and at lower cell densities than wild-type cells. These phentoypes are consistent with the loss of an inhibitory signaling pathway during development of galpha9 null cells. Cells expressing constitutively activated Galpha9 are defective in cAMP signaling center formation and development at low cell density and display an increased sensitivity to cAMP signal inhibition that is characteristic of enhanced suppression of the cAMP signal response. Finally, we demonstrate that galpha9 null cells, which have been codeveloped with a majority of wild-type cells, primarily establish cAMP signaling centers and are able to non-autonomously direct wild-type cells to adopt a galpha9 null-like phenotype.
Conclusions:
We suggest that Galpha9 functions in an inhibitory-feedback pathway that regulates cAMP signaling center formation and propagation. Galpha9 may be part of the mechanism that regulates lateral signal inhibition or that modulates receptor desensitization.
Insights
The Galpha9 protein subunit regulates an inhibitory pathway for cAMP signaling in Dictyostelium development. Loss of Galpha9 enhances cAMP signaling, while its activation suppresses it, revealing its role in feedback regulation.
Area of Science:
- Cellular signaling
- Developmental biology
- Molecular mechanisms
Background:
- Seven-transmembrane receptor (7-TMR)-G protein networks are crucial for sensing extracellular signals and regulating cellular processes.
- While signal activation pathways are well-studied, inhibitory mechanisms in these networks remain less characterized.
- In Dictyostelium, cAMP receptors mediate chemotaxis and development, and regulate cAMP synthesis, but inhibitory roles are unclear.
Purpose of the Study:
- To investigate the role of the Galpha9 protein subunit in regulating cAMP signal response during early Dictyostelium development.
- To elucidate the function of Galpha9 in inhibitory pathways governing cAMP signaling and development.
Main Methods:
- Loss-of-function and gain-of-function studies were employed using Dictyostelium mutants.
- Phenotypic analysis of galpha9 null cells and cells expressing constitutively activated Galpha9.
- Co-development experiments involving galpha9 null and wild-type cells.
Main Results:
- Galpha9 null cells exhibit increased cAMP signaling centers, resistance to inhibitors, and accelerated aggregation at lower cell densities.
- Cells with constitutively activated Galpha9 show defects in signaling center formation and increased sensitivity to cAMP signal inhibition.
- Galpha9 null cells preferentially establish cAMP signaling centers and non-autonomously influence wild-type cells.
Conclusions:
- Galpha9 functions within an inhibitory feedback pathway that controls cAMP signaling center formation and propagation.
- Galpha9 is implicated in regulating lateral signal inhibition or modulating receptor desensitization during Dictyostelium development.