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  • Επιστημονικές Δημοσιεύσεις Μελών ΠΘ (ΕΔΠΘ)
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AtHESPERIN: A novel regulator of circadian rhythms with poly(A)-degrading activity in plants

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Auteur
Delis C., Krokida A., Tomatsidou A., Tsikou D., Beta R.A.A., Tsioumpekou M., Moustaka J., Stravodimos G., Leonidas D.D., Balatsos N.A.A., Papadopoulou K.K.
Date
2016
Language
en
DOI
10.1080/15476286.2015.1119363
Sujet
deadenylase
enzyme
polyadenylic acid
unclassified drug
Arabidopsis protein
CCA1 protein, Arabidopsis
polyadenylic acid
TOC1 protein, Arabidopsis
transcription factor
allosterism
amino acid sequence
Arabidopsis thaliana
Article
AtHESP gene
binding site
CCA1 gene
chemical reaction
circadian rhythm
controlled study
deadenylation
electrophoresis
gene identification
gene overexpression
gene silencing
genetic analysis
genetic code
kinetics
nonhuman
oligomerization
plant gene
RNA degradation
size exclusion chromatography
TOC1 gene
Arabidopsis
chemistry
conserved sequence
gene expression regulation
genetics
growth, development and aging
metabolism
molecular cloning
oxidative stress
protein multimerization
Amino Acid Sequence
Arabidopsis
Arabidopsis Proteins
Binding Sites
Circadian Rhythm
Cloning, Molecular
Conserved Sequence
Gene Expression Regulation, Plant
Oxidative Stress
Poly A
Protein Multimerization
Transcription Factors
Taylor and Francis Inc.
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Résumé
We report the identification and characterization of a novel gene, AtHesperin (AtHESP) that codes for a deadenylase in Arabidopsis thaliana. The gene is under circadian clock-gene regulation and has similarity to the mammalian Nocturnin. AtHESP can efficiently degrade poly(A) substrates exhibiting allosteric kinetics. Size exclusion chromatography and native electrophoresis coupled with kinetic analysis support that the native enzyme is oligomeric with at least 3 binding sites. Knockdown and overexpression of AtHESP in plant lines affects the expression and rhythmicity of the clock core oscillator genes TOC1 and CCA1. This study demonstrates an evolutionary conserved poly(A)-degrading activity in plants and suggests deadenylation as a mechanism involved in the regulation of the circadian clock. A role of AtHESP in stress response in plants is also depicted. © 2016 Taylor & Francis Group, LLC.
URI
http://hdl.handle.net/11615/73193
Collections
  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]

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