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Published on: September 17, 2016
TIMELESS is an important mediator of CK2 effects on circadian clock function in vivo
Rose-Anne Meissner1, Valerie L Kilman, Jui-Ming Lin
1Department of Neurobiology and Physiology, Northwestern University, Evanston, Illinois 60208, USA.
Abstract:
Circadian oscillations in clock components are central to generation of self-sustained 24-h periodicity. In the Drosophila molecular clock, accumulation, phosphorylation, and degradation of PERIOD (PER) and TIMELESS (TIM) proteins govern period length. Yet little is known about the kinases that phosphorylate TIM in vivo. It has been shown previously that the protein kinase CK2 phosphorylates TIM in vitro. Here, we identify a role for CK2 in TIM regulation in vivo. Induction of a dominant-negative CK2alpha, CK2alpha(Tik) (Tik), increases TIM protein and tim transcript levels, reduces oscillation amplitude, and results in persistent cytoplasmic TIM localization. Exposure to light and subsequent TIM degradation results in an increase in the fraction of the transcriptional repressor PER that is nuclear and suppression of per and tim RNA levels. TIM protein, but not tim transcript, levels are elevated in Tik mutants in a per(01) background. In contrast, Tik effects on PER are undetectable in a tim(01) background, suggesting that TIM is required for CK2 effects on PER. To identify potential CK2 target sites, we assayed TIM phosphorylation rhythms in a deletion mutant that removes a conserved serine-rich domain and found that TIM protein does not show robust rhythmic changes in mobility by Western blotting, a hallmark of rhythmic phosphorylation. The period lengthening effects in Tik heterozygotes are reduced in a tim(UL) mutant that disrupts a putative CK2 phosphorylation site. Together, these data indicate that TIM is an important mediator of CK2 effects on circadian rhythms.
Insights
Protein kinase CK2 regulates circadian rhythms in Drosophila by phosphorylating TIMELESS (TIM) protein. CK2 activity is crucial for TIM degradation and oscillation amplitude, impacting the molecular clock.
Area of Science:
- Molecular Biology
- Chronobiology
- Genetics
Background:
- Circadian rhythms are governed by molecular oscillations of clock components.
- In Drosophila, PERIOD (PER) and TIMELESS (TIM) protein dynamics control circadian period length.
- Kinases phosphorylating TIM in vivo remain largely uncharacterized.
Purpose of the Study:
- To investigate the role of protein kinase CK2 in regulating TIM phosphorylation and circadian rhythms in Drosophila.
- To identify the in vivo function of CK2 in the Drosophila molecular clock.
Main Methods:
- Utilized a dominant-negative CK2alpha mutant (CK2alpha(Tik)) to disrupt CK2 activity in vivo.
- Assessed TIM and PER protein and transcript levels, localization, and phosphorylation rhythms.
- Employed genetic crosses with existing per and tim mutants to dissect genetic interactions.
Main Results:
- Disrupting CK2 activity led to increased TIM protein and transcript levels, reduced oscillation amplitude, and persistent cytoplasmic TIM.
- CK2 inhibition affected PER nuclear localization and gene expression, dependent on TIM.
- A mutation in a putative CK2 phosphorylation site on TIM reduced period-lengthening effects of CK2 inhibition.
Conclusions:
- Protein kinase CK2 plays a significant role in regulating TIM protein stability and localization in vivo.
- TIM acts as a key mediator for CK2's influence on Drosophila circadian rhythms.
- CK2-mediated TIM phosphorylation is essential for proper circadian clock function and period length.
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