Laboratory of Animal Integrative Physiology, Graduate School of Bioagricultural Sciences, Nagoya University, Furo-Cho, Chikusa-Ku, Nagoya, 464-8601, Japan.
Department of Neuroscience II, Research Institute of Environmental Medicine, Nagoya University, Nagoya, 464-8601, Japan.
Sci Rep. 2022 Nov 14;12(1):19519. doi: 10.1038/s41598-022-24188-4.
The circadian rhythm is a biological oscillation of physiological activities with a period of approximately 24 h, that is driven by a cell-autonomous oscillator called the circadian clock. The current model of the mammalian circadian clock is based on a transcriptional-translational negative feedback loop in which the protein products of clock genes accumulate in a circadian manner and repress their own transcription. However, several studies have revealed that constitutively expressed clock genes can maintain circadian oscillations. To understand the underlying mechanism, we expressed Bmal1 in Bmal1-disrupted cells using a doxycycline-inducible promoter and monitored Bmal1 and Per2 promoter activity using luciferase reporters. Although the levels of BMAL1 and other clock proteins, REV-ERBα and CLOCK, showed no obvious rhythmicity, robust circadian oscillation in Bmal1 and Per2 promoter activities with the correct phase relationship was observed, which proceeded in a doxycycline-concentration-dependent manner. We applied transient response analysis to the Bmal1 promoter activity in the presence of various doxycycline concentrations. Based on the obtained transfer functions, we suggest that, at least in our experimental system, BMAL1 is not directly involved in the oscillatory process, but modulates the oscillation robustness by regulating basal clock gene promoter activity.
昼夜节律是一种大约 24 小时的生理活动的生物振荡,由称为生物钟的细胞自主振荡器驱动。哺乳动物生物钟的当前模型基于转录 - 翻译负反馈回路,其中时钟基因的蛋白质产物以昼夜节律方式积累并抑制其自身的转录。然而,几项研究表明,组成型表达的时钟基因可以维持昼夜节律振荡。为了理解潜在的机制,我们使用强力霉素诱导启动子在 Bmal1 缺失的细胞中表达 Bmal1,并使用荧光素酶报告基因监测 Bmal1 和 Per2 启动子活性。尽管 BMAL1 和其他时钟蛋白(REV-ERBα 和 CLOCK)的水平没有明显的节律性,但观察到 Bmal1 和 Per2 启动子活性具有正确的相位关系的强大昼夜节律振荡,并且该振荡呈强力霉素浓度依赖性。我们将瞬时响应分析应用于存在各种强力霉素浓度的 Bmal1 启动子活性。基于获得的传递函数,我们建议,至少在我们的实验系统中,BMAL1 不直接参与振荡过程,而是通过调节基本时钟基因启动子活性来调节振荡的稳健性。