Clock gene daily profiles and their phase relationship in the rat suprachiasmatic nucleus are affected by photoperiod
Language English Country United States Media print
Document type Journal Article, Research Support, Non-U.S. Gov't
- MeSH
- Period Circadian Proteins MeSH
- Circadian Rhythm genetics MeSH
- Flavoproteins genetics MeSH
- Photoperiod * MeSH
- Photoreceptor Cells, Invertebrate * MeSH
- In Situ Hybridization MeSH
- Immunohistochemistry MeSH
- Nuclear Proteins genetics MeSH
- Cryptochromes MeSH
- Rats MeSH
- RNA, Messenger biosynthesis genetics MeSH
- Suprachiasmatic Nucleus physiology MeSH
- Eye Proteins * MeSH
- Rats, Wistar MeSH
- Cell Cycle Proteins MeSH
- CLOCK Proteins MeSH
- Drosophila Proteins * MeSH
- Receptors, G-Protein-Coupled MeSH
- Trans-Activators genetics MeSH
- ARNTL Transcription Factors MeSH
- Basic Helix-Loop-Helix Transcription Factors MeSH
- Transcription Factors genetics MeSH
- Animals MeSH
- Check Tag
- Rats MeSH
- Male MeSH
- Animals MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Names of Substances
- Period Circadian Proteins MeSH
- Clock protein, rat MeSH Browser
- cry protein, Drosophila MeSH Browser
- Cry1 protein, rat MeSH Browser
- Flavoproteins MeSH
- Nuclear Proteins MeSH
- Cryptochromes MeSH
- RNA, Messenger MeSH
- Eye Proteins * MeSH
- Per1 protein, rat MeSH Browser
- Cell Cycle Proteins MeSH
- CLOCK Proteins MeSH
- Drosophila Proteins * MeSH
- Receptors, G-Protein-Coupled MeSH
- Trans-Activators MeSH
- ARNTL Transcription Factors MeSH
- Basic Helix-Loop-Helix Transcription Factors MeSH
- Transcription Factors MeSH
Rhythmicity of the rat suprachiasmatic nucleus (SCN), a site of the circadian pacemaker, is affected by daylength; that is, by the photoperiod. Whereas various markers of rhythmicity have been followed, so far there have been no studies on the effect of the photoperiod on the expression of the clock genes in the rat SCN. To fill the gap and to better understand the photoperiodic modulation of the SCN state, rats were maintained either under a long photoperiod with 16 h of light and 8 h of darkness per day (LD16:8) or under a short LD8:16 photoperiod, and daily profiles of Per1, Cry1, Bmal1 and Clock mRNA in darkness were assessed by in situ hybridization method. The photoperiod affected phase, waveform, and amplitude of the rhythmic gene expression as well as phase relationship between their profiles. Under the long period, the interval of elevated Per1 mRNA lasted for a longer and that of elevated Bmal1 mRNA for a shorter time than under the short photoperiod. Under both photoperiods, the morning and the daytime Per1 and Cry1 mRNA rise as well as the morning Bmal1 mRNA decline were closely linked to the morning light onset. Amplitude of Per1, Cry1, and Bmal1 mRNA rhythms was larger under the short than under the long photoperiod. Also, under the short photoperiod, the daily Clock mRNA profile exhibited a significant rhythm. Altogether, the data indicate that the whole complex molecular clockwork in the rat SCN is photoperiod dependent and hence may differ according to the season of the year.
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