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A knockout mutation of a constitutive GPCR in Tetrahymena decreases both G-protein activity and chemoattraction
Thomas J Lampert1, Kevin D Coleman, Todd M Hennessey
1Department of Biological Sciences, University at Buffalo, Amherst, New York, United States of America.
Abstract:
Although G-protein coupled receptors (GPCRs) are a common element in many chemosensory transduction pathways in eukaryotic cells, no GPCR or regulated G-protein activity has yet been shown in any ciliate. To study the possible role for a GPCR in the chemoresponses of the ciliate Tetrahymena, we have generated a number of macronuclear gene knockouts of putative GPCRs found in the Tetrahymena Genome database. One of these knockout mutants, called G6, is a complete knockout of a gene that we call GPCR6 (TTHERM_00925490). Based on sequence comparisons, the Gpcr6p protein belongs to the Rhodopsin Family of GPCRs. Notably, Gpcr6p shares highest amino acid sequence homologies to GPCRs from Paramecium and several plants. One of the phenotypes of the G6 mutant is a decreased responsiveness to the depolarizing ions Ba²⁺ and K⁺, suggesting a decrease in basal excitability (decrease in Ca²⁺ channel activity). The other major phenotype of G6 is a loss of chemoattraction to lysophosphatidic acid (LPA) and proteose peptone (PP), two known chemoattractants in Tetrahymena. Using microsomal [³⁵S]GTPγS binding assays, we found that wild-type (CU427) have a prominent basal G-protein activity. This activity is decreased to the same level by pertussis toxin (a G-protein inhibitor), addition of chemoattractants, or the G6 mutant. Since the basal G-protein activity is decreased by the GPCR6 knockout, it is likely that this gene codes for a constitutively active GPCR in Tetrahymena. We propose that chemoattractants like LPA and PP cause attraction in Tetrahymena by decreasing the basal G-protein stimulating activity of Gpcr6p. This leads to decreased excitability in wild-type and longer runs of smooth forward swimming (less interrupted by direction changes) towards the attractant. Therefore, these attractants may work as inverse agonists through the constitutively active Gpcr6p coupled to a pertussis-sensitive G-protein.
Insights
Researchers identified a G-protein coupled receptor (GPCR) in Tetrahymena, named GPCR6. Knocking out this gene disrupted chemoattraction and reduced G-protein activity, suggesting GPCR6 mediates responses to attractants like lysophosphatidic acid.
Area of Science:
- Cellular and Molecular Biology
- Biochemistry
- Microbiology
Background:
- G-protein coupled receptors (GPCRs) are crucial in eukaryotic chemosensation, but their role in ciliates remained uncharacterized.
- Tetrahymena, a ciliate protozoan, exhibits chemoresponses, yet lacks identified GPCRs or regulated G-protein activity.
Purpose of the Study:
- To investigate the potential role of GPCRs in Tetrahymena chemoresponses.
- To identify and characterize specific GPCRs involved in Tetrahymena's sensory pathways.
Main Methods:
- Generated macronuclear gene knockouts of putative GPCRs in Tetrahymena.
- Created a specific knockout mutant (G6) for the GPCR6 gene (TTHERM_00925490).
- Utilized microsomal [³⁵S]GTPγS binding assays to measure G-protein activity.
Main Results:
- The G6 mutant showed decreased responsiveness to depolarizing ions (Ba²⁺, K⁺), indicating reduced basal excitability.
- G6 mutants lost chemoattraction to lysophosphatidic acid (LPA) and proteose peptone (PP).
- Basal G-protein activity in wild-type Tetrahymena was significantly reduced in G6 mutants and by chemoattractants or pertussis toxin.
Conclusions:
- The GPCR6 gene likely encodes a constitutively active GPCR in Tetrahymena.
- Chemoattractants (LPA, PP) may act as inverse agonists, decreasing GPCR6 activity and leading to attraction.
- This study reveals a novel GPCR-mediated chemosensory pathway in ciliates.
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