A crucial role for dynamic expression of components encoding the negative arm of the circadian clock

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作者
Bin Wang
Xiaoying Zhou
Arminja N. Kettenbach
Hugh D. Mitchell
Lye Meng Markillie
Jennifer J. Loros
Jay C. Dunlap
机构
[1] Geisel School of Medicine at Dartmouth,Department of Molecular and Systems Biology
[2] Geisel School of Medicine at Dartmouth,Department of Biochemistry and Cell Biology
[3] Pacific Northwest National Laboratory,Biological Sciences Divisions
[4] Pacific Northwest National Laboratory,Earth and Biological Sciences Directorate
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Nature Communications | / 14卷
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摘要
In the Neurospora circadian system, the White Collar Complex (WCC) drives expression of the principal circadian negative arm component frequency (frq). FRQ interacts with FRH (FRQ-interacting RNA helicase) and CKI, forming a stable complex that represses its own expression by inhibiting WCC. In this study, a genetic screen identified a gene, designated as brd-8, that encodes a conserved auxiliary subunit of the NuA4 histone acetylation complex. Loss of brd-8 reduces H4 acetylation and RNA polymerase (Pol) II occupancy at frq and other known circadian genes, and leads to a long circadian period, delayed phase, and defective overt circadian output at some temperatures. In addition to strongly associating with the NuA4 histone acetyltransferase complex, BRD-8 is also found complexed with the transcription elongation regulator BYE-1. Expression of brd-8, bye-1, histone h2a.z, and several NuA4 subunits is controlled by the circadian clock, indicating that the molecular clock both regulates the basic chromatin status and is regulated by changes in chromatin. Taken together, our data identify auxiliary elements of the fungal NuA4 complex having homology to mammalian components, which along with conventional NuA4 subunits, are required for timely and dynamic frq expression and thereby a normal and persistent circadian rhythm.
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[1]  
He Q(2002)White collar-1, a DNA binding transcription factor and a light sensor Science 297 840-843
[2]  
Froehlich AC(2003)Rhythmic binding of a WHITE COLLAR-containing complex to the frequency promoter is inhibited by FREQUENCY Proc. Natl Acad. Sci. 100 5914-5919
[3]  
Loros JJ(2002)White Collar-1, a Circadian blue light photoreceptor, binding to the frequency promoter Science 297 815-819
[4]  
Dunlap JC(2005)Regulation of the Neurospora circadian clock by an RNA helicase Genes Dev. 19 234-241
[5]  
Froehlich AC(2010)FRQ-Interacting RNA helicase mediates negative and positive feedback in the neurospora circadian clock Genetics 184 351-361
[6]  
Liu Y(2006)CKI and CKII mediate the FREQUENCY-dependent phosphorylation of the WHITE COLLAR complex to close the Neurospora circadian negative feedback loop Genes Dev. 20 2552-2565
[7]  
Loros JJ(2009)Quantitative proteomics reveals a dynamic interactome and phase-specific phosphorylation in the Neurospora circadian clock Mol. Cell 34 354-363
[8]  
Dunlap JC(2019)The phospho-code determining circadian feedback loop closure and output in Neurospora Mol. Cell 74 771-784
[9]  
Cheng P(2005)Transcriptional feedback of neurospora circadian clock gene by phosphorylation-dependent inactivation of its transcription factor Cell 122 235-246
[10]  
He Q(1997)Alternative initiation of translation and time-specific phosphorylation yield multiple forms of the essential clock protein FREQUENCY Cell 89 469-476