Literature DB >> 22904033

NAT1/DAP5/p97 and atypical translational control in the Drosophila Circadian Oscillator.

Sean Bradley1, Siddhartha Narayanan, Michael Rosbash.   

Abstract

Circadian rhythms are driven by gene expression feedback loops in metazoans. Based on the success of genetic screens for circadian mutants in Drosophila melanogaster, we undertook a targeted RNAi screen to study the impact of translation control genes on circadian locomotor activity rhythms in flies. Knockdown of vital translation factors in timeless protein-positive circadian neurons caused a range of effects including lethality. Knockdown of the atypical translation factor NAT1 had the strongest effect and lengthened circadian period. It also dramatically reduced PER protein levels in pigment dispersing factor (PDF) neurons. BELLE (BEL) protein was also reduced by the NAT1 knockdown, presumably reflecting a role of NAT1 in belle mRNA translation. belle and NAT1 are also targets of the key circadian transcription factor Clock (CLK). Further evidence for a role of NAT1 is that inhibition of the target of rapamycin (TOR) kinase increased oscillator activity in cultured wings, which is absent under conditions of NAT1 knockdown. Moreover, the per 5'- and 3'-UTRs may function together to facilitate cap-independent translation under conditions of TOR inhibition. We suggest that NAT1 and cap-independent translation are important for per mRNA translation, which is also important for the circadian oscillator. A circadian translation program may be especially important in fly pacemaker cells.

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Year:  2012        PMID: 22904033      PMCID: PMC3522168          DOI: 10.1534/genetics.112.143248

Source DB:  PubMed          Journal:  Genetics        ISSN: 0016-6731            Impact factor:   4.562


  64 in total

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Authors:  Shawn A Cyran; Anna M Buchsbaum; Karen L Reddy; Meng-Chi Lin; Nicholas R J Glossop; Paul E Hardin; Michael W Young; Robert V Storti; Justin Blau
Journal:  Cell       Date:  2003-02-07       Impact factor: 41.582

4.  Mapping of elements involved in regulating normal temporal period and timeless RNA expression patterns in Drosophila melanogaster.

Authors:  Ralf Stanewsky; Kathlea S Lynch; Christian Brandes; Jeffrey C Hall
Journal:  J Biol Rhythms       Date:  2002-08       Impact factor: 3.182

5.  Morning and evening peaks of activity rely on different clock neurons of the Drosophila brain.

Authors:  Brigitte Grima; Elisabeth Chélot; Ruohan Xia; François Rouyer
Journal:  Nature       Date:  2004-10-14       Impact factor: 49.962

6.  Coupled oscillators control morning and evening locomotor behaviour of Drosophila.

Authors:  Dan Stoleru; Ying Peng; José Agosto; Michael Rosbash
Journal:  Nature       Date:  2004-10-14       Impact factor: 49.962

7.  A new biological rhythm mutant of Drosophila melanogaster that identifies a gene with an essential embryonic function.

Authors:  L M Newby; F R Jackson
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8.  Spatiotemporal rescue of memory dysfunction in Drosophila.

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9.  The mouse Clock mutation reduces circadian pacemaker amplitude and enhances efficacy of resetting stimuli and phase-response curve amplitude.

Authors:  Martha Hotz Vitaterna; Caroline H Ko; Anne-Marie Chang; Ethan D Buhr; Ethan M Fruechte; Andrew Schook; Marina P Antoch; Fred W Turek; Joseph S Takahashi
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10.  Advanced analysis of a cryptochrome mutation's effects on the robustness and phase of molecular cycles in isolated peripheral tissues of Drosophila.

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  17 in total

Review 1.  Emerging roles for post-transcriptional regulation in circadian clocks.

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Journal:  Nat Neurosci       Date:  2013-10-28       Impact factor: 24.884

2.  Rhythmic Behavior Is Controlled by the SRm160 Splicing Factor in Drosophila melanogaster.

Authors:  Esteban J Beckwith; Carlos E Hernando; Sofía Polcowñuk; Agustina P Bertolin; Estefania Mancini; M Fernanda Ceriani; Marcelo J Yanovsky
Journal:  Genetics       Date:  2017-08-11       Impact factor: 4.562

Review 3.  Studying circadian rhythms in Drosophila melanogaster.

Authors:  Ozgur Tataroglu; Patrick Emery
Journal:  Methods       Date:  2014-01-09       Impact factor: 3.608

4.  The molecular ticks of the Drosophila circadian clock.

Authors:  Ozgur Tataroglu; Patrick Emery
Journal:  Curr Opin Insect Sci       Date:  2015-02-01       Impact factor: 5.186

Review 5.  Glial cell regulation of rhythmic behavior.

Authors:  F Rob Jackson; Fanny S Ng; Sukanya Sengupta; Samantha You; Yanmei Huang
Journal:  Methods Enzymol       Date:  2014-12-26       Impact factor: 1.600

6.  A role for Drosophila ATX2 in activation of PER translation and circadian behavior.

Authors:  Yong Zhang; Jinli Ling; Chunyan Yuan; Raphaëlle Dubruille; Patrick Emery
Journal:  Science       Date:  2013-05-17       Impact factor: 47.728

7.  Circadian clock regulation of mRNA translation through eukaryotic elongation factor eEF-2.

Authors:  Stephen Z Caster; Kathrina Castillo; Matthew S Sachs; Deborah Bell-Pedersen
Journal:  Proc Natl Acad Sci U S A       Date:  2016-08-09       Impact factor: 11.205

8.  The eIF2α Kinase GCN2 Modulates Period and Rhythmicity of the Circadian Clock by Translational Control of Atf4.

Authors:  Salil Saurav Pathak; Dong Liu; Tianbao Li; Nuria de Zavalia; Lei Zhu; Jin Li; Ramanujam Karthikeyan; Tommy Alain; Andrew C Liu; Kai-Florian Storch; Randal J Kaufman; Victor X Jin; Shimon Amir; Nahum Sonenberg; Ruifeng Cao
Journal:  Neuron       Date:  2019-09-12       Impact factor: 17.173

9.  Translational control of entrainment and synchrony of the suprachiasmatic circadian clock by mTOR/4E-BP1 signaling.

Authors:  Ruifeng Cao; Barry Robinson; Haiyan Xu; Christos Gkogkas; Arkady Khoutorsky; Tommy Alain; Akiko Yanagiya; Tatiana Nevarko; Andrew C Liu; Shimon Amir; Nahum Sonenberg
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10.  Light-regulated translational control of circadian behavior by eIF4E phosphorylation.

Authors:  Ruifeng Cao; Christos G Gkogkas; Nuria de Zavalia; Ian D Blum; Akiko Yanagiya; Yoshinori Tsukumo; Haiyan Xu; Choogon Lee; Kai-Florian Storch; Andrew C Liu; Shimon Amir; Nahum Sonenberg
Journal:  Nat Neurosci       Date:  2015-04-27       Impact factor: 24.884

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