2023•iScienceOpen access

Cold-induced suspension and resetting of Ca2+ and transcriptional rhythms in the suprachiasmatic nucleus neurons

Ryosuke Enoki, Naohiro Kon, Kimiko Shimizu, Kenta Kobayashi, Sota Hiro, Ching-Pu Chang, Tatsuto Nakane, Hirokazu Ishii, Joe Sakamoto, Yoshifumi Yamaguchi, Tomomi Nemoto

Open full text 15 citations

Abstract

Does the circadian clock keep running under such hypothermic states as daily torpor and hibernation? This fundamental question has been a research subject for decades but has remained unsettled. We addressed this subject by monitoring the circadian rhythm of clock gene transcription and intracellular Ca 2+ in the neurons of the suprachiasmatic nucleus (SCN), master circadian clock, in vitro under a cold environment. We discovered that the transcriptional and Ca 2+ rhythms are maintained at 22°C–28°C, but suspended at 15°C, accompanied by a large Ca 2+ increase. Rewarming instantly resets the Ca 2+ rhythms, while transcriptional rhythms reach a stable phase after the transient state and recover their phase relationship with the Ca 2+ rhythm. We conclude that SCN neurons remain functional under moderate hypothermia but stop ticking in deep hypothermia and that the rhythms reset after rewarming. These data also indicate that stable Ca 2+ oscillation precedes clock gene transcriptional rhythms in SCN neurons.

About this research paper

What this paper is about

Does the circadian clock keep running under such hypothermic states as daily torpor and hibernation? This fundamental question has been a research subject for decades but has remained unsettled. We addressed this subject by monitoring the circadian rhythm of clock gene transcription and intracellular Ca 2+ in the neurons of the suprachiasmatic nucleus (SCN), master circadian clock, in vitro under a cold environment. We discovered that the transcriptional and Ca 2+ rhythms are maintained at 22°C–28°C, but suspended at 15°C, accompanied by a large Ca 2+ increase. Rewarming instantly resets the Ca 2+ rhythms, while transcriptional rhythms reach a stable phase after the transient state and recover their phase relationship with the Ca 2+ rhythm. We conclude that SCN neurons remain functional under moderate hypothermia but stop ticking in deep hypothermia and that the rhythms reset after rewarming. These data also indicate that stable Ca 2+ oscillation precedes clock gene transcriptional rhythms in SCN neurons.

Why it matters

OpenAlex reports 15 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Does the circadian clock keep running under such hypothermic states as daily torpor and hibernation? This fundamental question has been a research subject for decades but has remained unsettled. We addressed this subject by monitoring the circadian rhythm of clock gene transcription and intracellular Ca 2+ in the neurons of the suprachiasmatic nucleus (SCN), master circadian clock, in vitro under a cold environment. We discovered that the transcriptional and Ca 2+ rhythms are maintained at 22°C–28°C, but suspended at 15°C, accompanied by a large Ca 2+ increase. Rewarming instantly resets the Ca 2+ rhythms, while transcriptional rhythms reach a stable phase after the transient state and recover their phase relationship with the Ca 2+ rhythm. We conclude that SCN neurons remain functional under moderate hypothermia but stop ticking in deep hypothermia and that the rhythms reset after rewarming. These data also indicate that stable Ca 2+ oscillation precedes clock gene transcriptional rhythms in SCN neurons.

Key concepts: Suprachiasmatic nucleus, Circadian rhythm, Oscillating gene, CLOCK, Torpor, Light effects on circadian rhythm, Neuroscience, Rhythm

Related papers

Back to paper searchBrowse research topicsOriginal source
Cold-induced suspension and resetting of Ca2+ and transcriptional rhythms in the suprachiasmatic nucleus neurons — Research Paper | ScholarLens