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Differential regulation of phosphorylation, structure, and stability of circadian clock protein FRQ isoforms

Neurospora crassa is an important model organism for circadian clock research. The Neurospora core circadian component FRQ protein has two isoforms, large FRQ (l-FRQ) and small FRQ (s-FRQ), of which l-FRQ bears an additional N-terminal 99-amino acid fragment. However, how the FRQ isoforms operate di...

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Autores principales: Chen, Xianyun, Liu, Xiaolan, Gan, Xihui, Li, Silin, Ma, Huan, Zhang, Lin, Wang, Peiliang, Li, Yunzhen, Huang, Tianyu, Yang, Xiaolin, Fang, Ling, Liang, Yingying, Wu, Jingjing, Chen, Tongyue, Zhou, Zengxuan, Liu, Xiao, Guo, Jinhu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10140173/
https://www.ncbi.nlm.nih.gov/pubmed/36898580
http://dx.doi.org/10.1016/j.jbc.2023.104597
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author Chen, Xianyun
Liu, Xiaolan
Gan, Xihui
Li, Silin
Ma, Huan
Zhang, Lin
Wang, Peiliang
Li, Yunzhen
Huang, Tianyu
Yang, Xiaolin
Fang, Ling
Liang, Yingying
Wu, Jingjing
Chen, Tongyue
Zhou, Zengxuan
Liu, Xiao
Guo, Jinhu
author_facet Chen, Xianyun
Liu, Xiaolan
Gan, Xihui
Li, Silin
Ma, Huan
Zhang, Lin
Wang, Peiliang
Li, Yunzhen
Huang, Tianyu
Yang, Xiaolin
Fang, Ling
Liang, Yingying
Wu, Jingjing
Chen, Tongyue
Zhou, Zengxuan
Liu, Xiao
Guo, Jinhu
author_sort Chen, Xianyun
collection PubMed
description Neurospora crassa is an important model organism for circadian clock research. The Neurospora core circadian component FRQ protein has two isoforms, large FRQ (l-FRQ) and small FRQ (s-FRQ), of which l-FRQ bears an additional N-terminal 99-amino acid fragment. However, how the FRQ isoforms operate differentially in regulating the circadian clock remains elusive. Here, we show l-FRQ and s-FRQ play different roles in regulating the circadian negative feedback loop. Compared to s-FRQ, l-FRQ is less stable and undergoes hypophosphorylation and faster degradation. The phosphorylation of the C-terminal l-FRQ 794-aa fragment was markedly higher than that of s-FRQ, suggesting the l-FRQ N-terminal 99-aa region may regulate the phosphorylation of the entire FRQ protein. Quantitative label-free LC/MS analysis identified several peptides that were differentially phosphorylated between l-FRQ and s-FRQ, which were distributed in FRQ in an interlaced fashion. Furthermore, we identified two novel phosphorylation sites, S765 and T781; mutations S765A and T781A showed no significant effects on conidiation rhythmicity, although T781 conferred FRQ stability. These findings demonstrate that FRQ isoforms play differential roles in the circadian negative feedback loop and undergo different regulations of phosphorylation, structure, and stability. The l-FRQ N-terminal 99-aa region plays an important role in regulating the phosphorylation, stability, conformation, and function of the FRQ protein. As the FRQ circadian clock counterparts in other species also have isoforms or paralogues, these findings will also further our understanding of the underlying regulatory mechanisms of the circadian clock in other organisms based on the high conservation of circadian clocks in eukaryotes.
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spelling pubmed-101401732023-04-29 Differential regulation of phosphorylation, structure, and stability of circadian clock protein FRQ isoforms Chen, Xianyun Liu, Xiaolan Gan, Xihui Li, Silin Ma, Huan Zhang, Lin Wang, Peiliang Li, Yunzhen Huang, Tianyu Yang, Xiaolin Fang, Ling Liang, Yingying Wu, Jingjing Chen, Tongyue Zhou, Zengxuan Liu, Xiao Guo, Jinhu J Biol Chem Research Article Neurospora crassa is an important model organism for circadian clock research. The Neurospora core circadian component FRQ protein has two isoforms, large FRQ (l-FRQ) and small FRQ (s-FRQ), of which l-FRQ bears an additional N-terminal 99-amino acid fragment. However, how the FRQ isoforms operate differentially in regulating the circadian clock remains elusive. Here, we show l-FRQ and s-FRQ play different roles in regulating the circadian negative feedback loop. Compared to s-FRQ, l-FRQ is less stable and undergoes hypophosphorylation and faster degradation. The phosphorylation of the C-terminal l-FRQ 794-aa fragment was markedly higher than that of s-FRQ, suggesting the l-FRQ N-terminal 99-aa region may regulate the phosphorylation of the entire FRQ protein. Quantitative label-free LC/MS analysis identified several peptides that were differentially phosphorylated between l-FRQ and s-FRQ, which were distributed in FRQ in an interlaced fashion. Furthermore, we identified two novel phosphorylation sites, S765 and T781; mutations S765A and T781A showed no significant effects on conidiation rhythmicity, although T781 conferred FRQ stability. These findings demonstrate that FRQ isoforms play differential roles in the circadian negative feedback loop and undergo different regulations of phosphorylation, structure, and stability. The l-FRQ N-terminal 99-aa region plays an important role in regulating the phosphorylation, stability, conformation, and function of the FRQ protein. As the FRQ circadian clock counterparts in other species also have isoforms or paralogues, these findings will also further our understanding of the underlying regulatory mechanisms of the circadian clock in other organisms based on the high conservation of circadian clocks in eukaryotes. American Society for Biochemistry and Molecular Biology 2023-03-09 /pmc/articles/PMC10140173/ /pubmed/36898580 http://dx.doi.org/10.1016/j.jbc.2023.104597 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Chen, Xianyun
Liu, Xiaolan
Gan, Xihui
Li, Silin
Ma, Huan
Zhang, Lin
Wang, Peiliang
Li, Yunzhen
Huang, Tianyu
Yang, Xiaolin
Fang, Ling
Liang, Yingying
Wu, Jingjing
Chen, Tongyue
Zhou, Zengxuan
Liu, Xiao
Guo, Jinhu
Differential regulation of phosphorylation, structure, and stability of circadian clock protein FRQ isoforms
title Differential regulation of phosphorylation, structure, and stability of circadian clock protein FRQ isoforms
title_full Differential regulation of phosphorylation, structure, and stability of circadian clock protein FRQ isoforms
title_fullStr Differential regulation of phosphorylation, structure, and stability of circadian clock protein FRQ isoforms
title_full_unstemmed Differential regulation of phosphorylation, structure, and stability of circadian clock protein FRQ isoforms
title_short Differential regulation of phosphorylation, structure, and stability of circadian clock protein FRQ isoforms
title_sort differential regulation of phosphorylation, structure, and stability of circadian clock protein frq isoforms
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10140173/
https://www.ncbi.nlm.nih.gov/pubmed/36898580
http://dx.doi.org/10.1016/j.jbc.2023.104597
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