» Articles » PMID: 24656826

A Novel Mechanism Controlling Resetting Speed of the Circadian Clock to Environmental Stimuli

Overview
Journal Curr Biol
Publisher Cell Press
Specialty Biology
Date 2014 Mar 25
PMID 24656826
Citations 26
Authors
Affiliations
Soon will be listed here.
Abstract

Many aspects of mammalian physiology are driven through the coordinated action of internal circadian clocks. Clock speed (period) and phase (temporal alignment) are fundamental to an organism's ability to synchronize with its environment. In humans, lifestyles that disturb these clocks, such as shift work, increase the incidence of diseases such as cancer and diabetes. Casein kinases 1δ and ε are closely related clock components implicated in period determination. However, CK1δ is so dominant in this regard that it remains unclear what function CK1ε normally serves. Here, we reveal that CK1ε dictates how rapidly the clock is reset by environmental stimuli. Genetic disruption of CK1ε in mice enhances phase resetting of behavioral rhythms to acute light pulses and shifts in light cycle. This impact of CK1ε targeting is recapitulated in isolated brain suprachiasmatic nucleus and peripheral (lung) clocks during NMDA- or temperature-induced phase shift in association with altered PERIOD (PER) protein dynamics. Importantly, accelerated re-entrainment of the circadian system in vivo and in vitro can be achieved in wild-type animals through pharmacological inhibition of CK1ε. These studies therefore reveal a role for CK1ε in stabilizing the circadian clock against phase shift and highlight it as a novel target for minimizing physiological disturbance in shift workers.

Citing Articles

The Deubiquitinase USP2 Modulates Photic Entrainment of the Circadian Clock at the Level of the Suprachiasmatic Nucleus.

Srikanta S, Brown T, Malescot A, Cloutier M, Zhu L, Coutanson C J Neurochem. 2025; 169(2):e70018.

PMID: 39967311 PMC: 11836553. DOI: 10.1111/jnc.70018.


Circadian rhythms of macrophages are altered by the acidic tumor microenvironment.

Knudsen-Clark A, Mwangi D, Cazarin J, Morris K, Baker C, Hablitz L EMBO Rep. 2024; 25(11):5080-5112.

PMID: 39415049 PMC: 11549407. DOI: 10.1038/s44319-024-00288-2.


Leptin receptor neurons in the dorsomedial hypothalamus input to the circadian feeding network.

Tang Q, Godschall E, Brennan C, Zhang Q, Abraham-Fan R, Williams S Sci Adv. 2023; 9(34):eadh9570.

PMID: 37624889 PMC: 10456850. DOI: 10.1126/sciadv.adh9570.


Different levels of circadian (de)synchrony -- where does it hurt?.

Galinde A, Al-Mughales F, Oster H, Heyde I F1000Res. 2023; 11:1323.

PMID: 37125019 PMC: 10130703. DOI: 10.12688/f1000research.127234.2.


Photic Entrainment of the Circadian System.

Ashton A, Foster R, Jagannath A Int J Mol Sci. 2022; 23(2).

PMID: 35054913 PMC: 8775994. DOI: 10.3390/ijms23020729.


References
1.
Eide E, Woolf M, Kang H, Woolf P, Hurst W, Camacho F . Control of mammalian circadian rhythm by CKIepsilon-regulated proteasome-mediated PER2 degradation. Mol Cell Biol. 2005; 25(7):2795-807. PMC: 1061645. DOI: 10.1128/MCB.25.7.2795-2807.2005. View

2.
Buhr E, Yoo S, Takahashi J . Temperature as a universal resetting cue for mammalian circadian oscillators. Science. 2010; 330(6002):379-85. PMC: 3625727. DOI: 10.1126/science.1195262. View

3.
Etchegaray J, Machida K, Noton E, Constance C, Dallmann R, Di Napoli M . Casein kinase 1 delta regulates the pace of the mammalian circadian clock. Mol Cell Biol. 2009; 29(14):3853-66. PMC: 2704743. DOI: 10.1128/MCB.00338-09. View

4.
Shi S, Ansari T, McGuinness O, Wasserman D, Johnson C . Circadian disruption leads to insulin resistance and obesity. Curr Biol. 2013; 23(5):372-81. PMC: 3595381. DOI: 10.1016/j.cub.2013.01.048. View

5.
Bechtold D, Gibbs J, Loudon A . Circadian dysfunction in disease. Trends Pharmacol Sci. 2010; 31(5):191-8. DOI: 10.1016/j.tips.2010.01.002. View