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Phosphoproteins associated with cyclic nucleotide stimulation of ciliary motility in Paramecium
1Department of Biochemistry, College of Agricultural and Life Sciences, University of Wisconsin-Madison 53706.
Abstract:
Permeabilized, MgATP-reactivated cells of Paramecium (models) respond to cyclic AMP and cyclic GMP by increasing forward swimming speed. In association with the motile response, cyclic AMP and 8-bromo-cyclic GMP (8-Br-cyclic GMP) stimulated protein phosphorylation. Cyclic AMP addition to permeabilized cells reproducibly stimulated the phosphorylation of 10 proteins, ranging in molecular weight from 15 to 110K (K = 10(3) Mr). 8-Br-cyclic GMP, which selectively activates the cyclic GMP-dependent protein kinase of Paramecium, stimulated the phosphorylation of a subset of the proteins phosphorylated by cyclic AMP. Ca2+ addition caused backward swimming and stimulated the phosphorylation of four substrates, including a 25K target that may also be phosphorylated in response to cyclic nucleotide addition. Ba2+ and Sr2+ also induced backward swimming, but did not cause detectable phosphorylation. To identify ciliary targets of cyclic nucleotide-dependent protein kinase activity, permeabilized cells were deciliated following reactivation of motility with Mg-[gamma-32P]ATP in the presence or absence of cyclic nucleotide. Soluble proteins of the deciliation supernatant were enriched in 15 cyclic AMP-stimulated phosphoproteins, ranging in molecular weight from 15 to 95K. Most of the ciliary substrates were axonemal and could be released by high salt solution. A 29K protein that copurified in sucrose gradients with the 22S dynein, and a high molecular weight protein (greater than 300K) in the 19 S region were phosphorylated when cyclic AMP was added to permeabilized, motile cells. These data suggest that regulation of ciliary motility by cyclic AMP may include phosphorylation of dynein-associated proteins.
Insights
Cyclic AMP and cyclic GMP regulate Paramecium swimming speed by stimulating protein phosphorylation, potentially affecting ciliary dynein proteins. This research explores the molecular mechanisms of motility control in Paramecium.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- Paramecium motility is regulated by intracellular signaling molecules.
- Cyclic nucleotides like cyclic AMP (cAMP) and cyclic GMP (cGMP) are known second messengers in various cellular processes.
Purpose of the Study:
- To investigate the role of cAMP and cGMP in regulating Paramecium motility.
- To identify specific proteins phosphorylated in response to cyclic nucleotides and their potential involvement in ciliary function.
Main Methods:
- Utilized permeabilized, MgATP-reactivated Paramecium cells.
- Stimulated cells with cAMP, 8-bromo-cyclic GMP (8-Br-cGMP), Ca2+, Ba2+, and Sr2+.
- Analyzed protein phosphorylation patterns using radiolabeling (Mg-[gamma-32P]ATP).
- Isolated and analyzed ciliary proteins after deciliation.
Main Results:
- cAMP and 8-Br-cGMP increased forward swimming speed and stimulated phosphorylation of multiple proteins (15-110K).
- Ca2+ induced backward swimming and phosphorylation of specific substrates.
- Identified 15 cAMP-stimulated phosphoproteins in the ciliary fraction, including axonemal proteins.
- Observed phosphorylation of a 29K protein associated with 22S dynein and a high molecular weight protein.
Conclusions:
- Cyclic AMP-mediated regulation of Paramecium ciliary motility likely involves the phosphorylation of dynein-associated proteins.
- Specific ion and cyclic nucleotide signaling pathways modulate Paramecium swimming behavior through protein phosphorylation.
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