Lengthened circadian rhythms in mice with self-controlled ambient light intensity

Author:

Ogasawara Jun,Matsumoto Nobuyoshi,Takeuchi Yuki,Yamashiro Kotaro,Yasui Masato,Ikegaya Yuji

Abstract

AbstractLaboratory animals are typically maintained under 12-h light and 12-h dark (12:12 LD) conditions with a daytime light intensity of ~ 200 lx. In this study, we designed an apparatus that allowed mice to self-select the room light intensity by nose poking. We measured the behavioral rhythms of the mice under this self-controlled light regimen. The mice quickly learned the relationship between their nose pokes and the resulting changes in the light intensity. Under these conditions, the mice exhibited free-running circadian behavior with a period of 24.5 ± 0.4 h. This circadian period was ~ 1 h longer than that of the same strain of mice when they were kept in constant darkness (DD) after 12:12 LD entrainment, and the lengthened period lasted for at least 30 days. The rhythm of the light intensity controlled by the mice also exhibited a similar period, but the phase of the illuminance rhythm preceded the phase of the locomotor activity rhythm. Mice that did not have access to the light controller were also entrained to the illuminance cycle produced by the mice that did have access to the light controller, but with a slightly delayed phase. The rhythm was likely controlled by the canonical circadian clock because mice with tau mutations in the circadian clock gene CSNK1E exhibited short periods of circadian rhythm under the same conditions. These results indicate that the free-running period of mice in the wild may differ from what they exhibit if they are attuned by forced light cycles in laboratories because mice in their natural habitats can self-control their exposure to ambient light, similar to our experimental conditions.

Funder

JSPS Grants-in-Aid for Scientific Research

Konica Minolta Science and Technology Foundation

the Public Foundation of Chubu Science and Technology Center

KOSÉ Cosmetology Research Foundation

JST ERATO

Institute for AI and Beyond of the University of Tokyo

Publisher

Springer Science and Business Media LLC

Reference22 articles.

1. Patke, A., Young, M. W. & Axelrod, S. Molecular mechanisms and physiological importance of circadian rhythms. Nat. Rev. Mol. Cell Biol. 21, 67–84 (2020).

2. Page, E. B. Ordered hypotheses for multiple treatments: A significance test for linear ranks. J. Am. Stat. Assoc. 58, 216–230. https://doi.org/10.1080/01621459.1963.10500843 (1963).

3. Meng, E. et al. Setting clock speed in mammals: The CK1ε tau mutation in mice accelerates the circadian pacemaker by selectively destabilizing PERIOD proteins. Neuron 29, 110 (2023).

4. Zhou, L. et al. The circadian clock gene Csnk1e regulates rapid eye movement sleep amount, and nonrapid eye movement sleep architecture in mice. Sleep 37(785–93), 793A-793C (2014).

5. Czeisler, C. A. et al. Stability, precision, and near-24-hour period of the human circadian pacemaker. Science 284, 2177–2181 (1999).

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