Cargando…

Dynamical differential expression (DyDE) reveals the period control mechanisms of the Arabidopsis circadian oscillator

The circadian oscillator, an internal time-keeping device found in most organisms, enables timely regulation of daily biological activities by maintaining synchrony with the external environment. The mechanistic basis underlying the adjustment of circadian rhythms to changing external conditions, ho...

Descripción completa

Detalles Bibliográficos
Autores principales: Mombaerts, Laurent, Carignano, Alberto, Robertson, Fiona C., Hearn, Timothy J., Junyang, Jin, Hayden, David, Rutterford, Zoe, Hotta, Carlos T., Hubbard, Katherine E., Maria, Marti Ruiz C., Yuan, Ye, Hannah, Matthew A., Goncalves, Jorge, Webb, Alex A. R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6377142/
https://www.ncbi.nlm.nih.gov/pubmed/30703082
http://dx.doi.org/10.1371/journal.pcbi.1006674
_version_ 1783395703408558080
author Mombaerts, Laurent
Carignano, Alberto
Robertson, Fiona C.
Hearn, Timothy J.
Junyang, Jin
Hayden, David
Rutterford, Zoe
Hotta, Carlos T.
Hubbard, Katherine E.
Maria, Marti Ruiz C.
Yuan, Ye
Hannah, Matthew A.
Goncalves, Jorge
Webb, Alex A. R.
author_facet Mombaerts, Laurent
Carignano, Alberto
Robertson, Fiona C.
Hearn, Timothy J.
Junyang, Jin
Hayden, David
Rutterford, Zoe
Hotta, Carlos T.
Hubbard, Katherine E.
Maria, Marti Ruiz C.
Yuan, Ye
Hannah, Matthew A.
Goncalves, Jorge
Webb, Alex A. R.
author_sort Mombaerts, Laurent
collection PubMed
description The circadian oscillator, an internal time-keeping device found in most organisms, enables timely regulation of daily biological activities by maintaining synchrony with the external environment. The mechanistic basis underlying the adjustment of circadian rhythms to changing external conditions, however, has yet to be clearly elucidated. We explored the mechanism of action of nicotinamide in Arabidopsis thaliana, a metabolite that lengthens the period of circadian rhythms, to understand the regulation of circadian period. To identify the key mechanisms involved in the circadian response to nicotinamide, we developed a systematic and practical modeling framework based on the identification and comparison of gene regulatory dynamics. Our mathematical predictions, confirmed by experimentation, identified key transcriptional regulatory mechanisms of circadian period and uncovered the role of blue light in the response of the circadian oscillator to nicotinamide. We suggest that our methodology could be adapted to predict mechanisms of drug action in complex biological systems.
format Online
Article
Text
id pubmed-6377142
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-63771422019-03-01 Dynamical differential expression (DyDE) reveals the period control mechanisms of the Arabidopsis circadian oscillator Mombaerts, Laurent Carignano, Alberto Robertson, Fiona C. Hearn, Timothy J. Junyang, Jin Hayden, David Rutterford, Zoe Hotta, Carlos T. Hubbard, Katherine E. Maria, Marti Ruiz C. Yuan, Ye Hannah, Matthew A. Goncalves, Jorge Webb, Alex A. R. PLoS Comput Biol Research Article The circadian oscillator, an internal time-keeping device found in most organisms, enables timely regulation of daily biological activities by maintaining synchrony with the external environment. The mechanistic basis underlying the adjustment of circadian rhythms to changing external conditions, however, has yet to be clearly elucidated. We explored the mechanism of action of nicotinamide in Arabidopsis thaliana, a metabolite that lengthens the period of circadian rhythms, to understand the regulation of circadian period. To identify the key mechanisms involved in the circadian response to nicotinamide, we developed a systematic and practical modeling framework based on the identification and comparison of gene regulatory dynamics. Our mathematical predictions, confirmed by experimentation, identified key transcriptional regulatory mechanisms of circadian period and uncovered the role of blue light in the response of the circadian oscillator to nicotinamide. We suggest that our methodology could be adapted to predict mechanisms of drug action in complex biological systems. Public Library of Science 2019-01-31 /pmc/articles/PMC6377142/ /pubmed/30703082 http://dx.doi.org/10.1371/journal.pcbi.1006674 Text en © 2019 Mombaerts et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Mombaerts, Laurent
Carignano, Alberto
Robertson, Fiona C.
Hearn, Timothy J.
Junyang, Jin
Hayden, David
Rutterford, Zoe
Hotta, Carlos T.
Hubbard, Katherine E.
Maria, Marti Ruiz C.
Yuan, Ye
Hannah, Matthew A.
Goncalves, Jorge
Webb, Alex A. R.
Dynamical differential expression (DyDE) reveals the period control mechanisms of the Arabidopsis circadian oscillator
title Dynamical differential expression (DyDE) reveals the period control mechanisms of the Arabidopsis circadian oscillator
title_full Dynamical differential expression (DyDE) reveals the period control mechanisms of the Arabidopsis circadian oscillator
title_fullStr Dynamical differential expression (DyDE) reveals the period control mechanisms of the Arabidopsis circadian oscillator
title_full_unstemmed Dynamical differential expression (DyDE) reveals the period control mechanisms of the Arabidopsis circadian oscillator
title_short Dynamical differential expression (DyDE) reveals the period control mechanisms of the Arabidopsis circadian oscillator
title_sort dynamical differential expression (dyde) reveals the period control mechanisms of the arabidopsis circadian oscillator
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6377142/
https://www.ncbi.nlm.nih.gov/pubmed/30703082
http://dx.doi.org/10.1371/journal.pcbi.1006674
work_keys_str_mv AT mombaertslaurent dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT carignanoalberto dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT robertsonfionac dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT hearntimothyj dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT junyangjin dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT haydendavid dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT rutterfordzoe dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT hottacarlost dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT hubbardkatherinee dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT mariamartiruizc dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT yuanye dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT hannahmatthewa dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT goncalvesjorge dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator
AT webbalexar dynamicaldifferentialexpressiondyderevealstheperiodcontrolmechanismsofthearabidopsiscircadianoscillator