Pregueiro Antonio M, Price-Lloyd Nathan, Bell-Pedersen Deborah, Heintzen Christian, Loros Jennifer J, Dunlap Jay C
Department of Genetics, Dartmouth Medical School, Hanover, NH 03755, USA.
Proc Natl Acad Sci U S A. 2005 Feb 8;102(6):2210-5. doi: 10.1073/pnas.0406506102. Epub 2005 Jan 26.
Circadian systems include slave oscillators and central pacemakers, and the cores of eukaryotic circadian clocks described to date are composed of transcription and translation feedback loops (TTFLs). In the model system Neurospora, normal circadian rhythmicity requires a TTFL in which a White Collar complex (WCC) activates expression of the frequency (frq) gene, and the FRQ protein feeds back to attenuate that activation. To further test the centrality of this TTFL to the circadian mechanism in Neurospora, we used low-amplitude temperature cycles to compare WT and frq-null strains under conditions in which a banding rhythm was elicited. WT cultures were entrained to these temperature cycles. Unlike those normal strains, however, frq-null mutants did not truly entrain to the same cycles. Their peaks and troughs always occurred in the cold and warm periods, respectively, strongly suggesting that the rhythm in Neurospora lacking frq function simply is driven by the temperature cycles. Previous reports suggested that a FRQ-less oscillator (FLO) could be entrained to temperature cycles, rather than being driven, and speculated that the FLO was the underlying circadian-rhythm generator. These inferences appear to derive from the use of a phase reference point affected by both the changing waveform and the phase of the oscillation. Examination of several other phase markers as well as results of additional experimental tests indicate that the FLO is, at best, a slave oscillator to the TTFL, which underlies circadian rhythm generation in Neurospora.
昼夜节律系统包括从属振荡器和中央起搏器,迄今为止所描述的真核生物钟的核心由转录和翻译反馈回路(TTFLs)组成。在模式生物脉孢菌中,正常的昼夜节律需要一个TTFL,其中白领复合体(WCC)激活频率(frq)基因的表达,而FRQ蛋白反馈回来减弱这种激活作用。为了进一步测试这个TTFL对脉孢菌昼夜节律机制的核心地位,我们使用低振幅温度循环来比较野生型(WT)和frq缺失菌株在引发条带节律的条件下的情况。野生型培养物被诱导适应这些温度循环。然而,与那些正常菌株不同的是,frq缺失突变体并没有真正适应相同的循环。它们的峰值和谷值总是分别出现在寒冷期和温暖期,这强烈表明缺乏frq功能的脉孢菌的节律仅仅是由温度循环驱动的。以前的报告表明,一个无FRQ振荡器(FLO)可以被诱导适应温度循环,而不是被驱动,并推测FLO是潜在的昼夜节律发生器。这些推断似乎源于使用了一个受振荡波形变化和相位影响的相位参考点。对其他几个相位标记的检查以及额外实验测试的结果表明,FLO充其量只是TTFL的一个从属振荡器,而TTFL是脉孢菌昼夜节律产生的基础。