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Quantifying the Rhythm of KaiB-C Interaction for In Vitro Cyanobacterial Circadian Clock

An oscillator consisting of KaiA, KaiB, and KaiC proteins comprises the core of cyanobacterial circadian clock. While one key reaction in this process—KaiC phosphorylation—has been extensively investigated and modeled, other key processes, such as the interactions among Kai proteins, are not underst...

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Autores principales: Ma, Lan, Ranganathan, Rama
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3416856/
https://www.ncbi.nlm.nih.gov/pubmed/22900029
http://dx.doi.org/10.1371/journal.pone.0042581
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author Ma, Lan
Ranganathan, Rama
author_facet Ma, Lan
Ranganathan, Rama
author_sort Ma, Lan
collection PubMed
description An oscillator consisting of KaiA, KaiB, and KaiC proteins comprises the core of cyanobacterial circadian clock. While one key reaction in this process—KaiC phosphorylation—has been extensively investigated and modeled, other key processes, such as the interactions among Kai proteins, are not understood well. Specifically, different experimental techniques have yielded inconsistent views about Kai A, B, and C interactions. Here, we first propose a mathematical model of cyanobacterial circadian clock that explains the recently observed dynamics of the four phospho-states of KaiC as well as the interactions among the three Kai proteins. Simulations of the model show that the interaction between KaiB and KaiC oscillates with the same period as the phosphorylation of KaiC, but displays a phase delay of ∼8 hr relative to the total phosphorylated KaiC. Secondly, this prediction on KaiB-C interaction are evaluated using a novel FRET (Fluorescence Resonance Energy Transfer)-based assay by tagging fluorescent proteins Cerulean and Venus to KaiC and KaiB, respectively, and reconstituting fluorescent protein-labeled in vitro clock. The data show that the KaiB∶KaiC interaction indeed oscillates with ∼24 hr periodicity and ∼8 hr phase delay relative to KaiC phosphorylation, consistent with model prediction. Moreover, it is noteworthy that our model indicates that the interlinked positive and negative feedback loops are the underlying mechanism for oscillation, with the serine phosphorylated-state (the “S-state") of KaiC being a hub for the feedback loops. Because the kinetics of the KaiB-C interaction faithfully follows that of the S-state, the FRET measurement may provide an important real-time probe in quantitative study of the cyanobacterial circadian clock.
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spelling pubmed-34168562012-08-16 Quantifying the Rhythm of KaiB-C Interaction for In Vitro Cyanobacterial Circadian Clock Ma, Lan Ranganathan, Rama PLoS One Research Article An oscillator consisting of KaiA, KaiB, and KaiC proteins comprises the core of cyanobacterial circadian clock. While one key reaction in this process—KaiC phosphorylation—has been extensively investigated and modeled, other key processes, such as the interactions among Kai proteins, are not understood well. Specifically, different experimental techniques have yielded inconsistent views about Kai A, B, and C interactions. Here, we first propose a mathematical model of cyanobacterial circadian clock that explains the recently observed dynamics of the four phospho-states of KaiC as well as the interactions among the three Kai proteins. Simulations of the model show that the interaction between KaiB and KaiC oscillates with the same period as the phosphorylation of KaiC, but displays a phase delay of ∼8 hr relative to the total phosphorylated KaiC. Secondly, this prediction on KaiB-C interaction are evaluated using a novel FRET (Fluorescence Resonance Energy Transfer)-based assay by tagging fluorescent proteins Cerulean and Venus to KaiC and KaiB, respectively, and reconstituting fluorescent protein-labeled in vitro clock. The data show that the KaiB∶KaiC interaction indeed oscillates with ∼24 hr periodicity and ∼8 hr phase delay relative to KaiC phosphorylation, consistent with model prediction. Moreover, it is noteworthy that our model indicates that the interlinked positive and negative feedback loops are the underlying mechanism for oscillation, with the serine phosphorylated-state (the “S-state") of KaiC being a hub for the feedback loops. Because the kinetics of the KaiB-C interaction faithfully follows that of the S-state, the FRET measurement may provide an important real-time probe in quantitative study of the cyanobacterial circadian clock. Public Library of Science 2012-08-10 /pmc/articles/PMC3416856/ /pubmed/22900029 http://dx.doi.org/10.1371/journal.pone.0042581 Text en © 2012 Ma, Ranganathan http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ma, Lan
Ranganathan, Rama
Quantifying the Rhythm of KaiB-C Interaction for In Vitro Cyanobacterial Circadian Clock
title Quantifying the Rhythm of KaiB-C Interaction for In Vitro Cyanobacterial Circadian Clock
title_full Quantifying the Rhythm of KaiB-C Interaction for In Vitro Cyanobacterial Circadian Clock
title_fullStr Quantifying the Rhythm of KaiB-C Interaction for In Vitro Cyanobacterial Circadian Clock
title_full_unstemmed Quantifying the Rhythm of KaiB-C Interaction for In Vitro Cyanobacterial Circadian Clock
title_short Quantifying the Rhythm of KaiB-C Interaction for In Vitro Cyanobacterial Circadian Clock
title_sort quantifying the rhythm of kaib-c interaction for in vitro cyanobacterial circadian clock
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3416856/
https://www.ncbi.nlm.nih.gov/pubmed/22900029
http://dx.doi.org/10.1371/journal.pone.0042581
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