TY - JOUR
T1 - A model for the circadian rhythm of cyanobacteria that maintains oscillation without gene expression
AU - Kurosawa, Gen
AU - Aihara, Kazuyuki
AU - Iwasa, Yoh
N1 - Funding Information:
This research is partially supported by Grant-in-Aid for Scientific Research on Priority Areas (17022012) from Ministry of Education, Culture, Sports, Science and Technology of Japan.
PY - 2006
Y1 - 2006
N2 - An intriguing property of the cyanobacterial circadian clock is that endogenous rhythm persists when protein abundances are kept constant either in the presence of translation and transcription inhibitors or in the constant dark condition. Here we propose a regulatory mechanism of KaiC phosphorylation for the generation of circadian oscillations in cyanobacteria. In the model, clock proteins KaiA and KaiB are assumed to have multiple states, regulating the KaiC phosphorylation process. The model can explain 1), the sustained oscillation of gene expression and protein abundance when the expression of the kaiBC gene is regulated by KaiC protein, and 2), the sustained oscillation of phosphorylated KaiC when transcription and translation processes are inhibited and total protein abundance is fixed. Results of this work suggest that KaiA and KaiB strengthen the nonlinearity of KaiC phosphorylation, thereby promoting the circadian rhythm in cyanobacteria.
AB - An intriguing property of the cyanobacterial circadian clock is that endogenous rhythm persists when protein abundances are kept constant either in the presence of translation and transcription inhibitors or in the constant dark condition. Here we propose a regulatory mechanism of KaiC phosphorylation for the generation of circadian oscillations in cyanobacteria. In the model, clock proteins KaiA and KaiB are assumed to have multiple states, regulating the KaiC phosphorylation process. The model can explain 1), the sustained oscillation of gene expression and protein abundance when the expression of the kaiBC gene is regulated by KaiC protein, and 2), the sustained oscillation of phosphorylated KaiC when transcription and translation processes are inhibited and total protein abundance is fixed. Results of this work suggest that KaiA and KaiB strengthen the nonlinearity of KaiC phosphorylation, thereby promoting the circadian rhythm in cyanobacteria.
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U2 - 10.1529/biophysj.105.076554
DO - 10.1529/biophysj.105.076554
M3 - Article
C2 - 16798799
AN - SCOPUS:33748441404
SN - 0006-3495
VL - 91
SP - 2015
EP - 2023
JO - Biophysical Journal
JF - Biophysical Journal
IS - 6
ER -