Literature DB >> 22306971

Rhodopsin 5- and Rhodopsin 6-mediated clock synchronization in Drosophila melanogaster is independent of retinal phospholipase C-β signaling.

Joanna Szular1, Hana Sehadova, Carla Gentile, Gisela Szabo, Wen-Hai Chou, Steven G Britt, Ralf Stanewsky.   

Abstract

Circadian clocks of most organisms are synchronized with the 24-hour solar day by the changes of light and dark. In Drosophila, both the visual photoreceptors in the compound eyes as well as the blue-light photoreceptor Cryptochrome expressed within the brain clock neurons contribute to this clock synchronization. A specialized photoreceptive structure located between the retina and the optic lobes, the Hofbauer-Buchner (H-B) eyelet, projects to the clock neurons in the brain and also participates in light synchronization. The compound eye photoreceptors and the H-B eyelet contain Rhodopsin photopigments, which activate the canonical invertebrate phototransduction cascade after being excited by light. We show here that 2 of the photopigments present in these photoreceptors, Rhodopsin 5 (Rh5) and Rhodopsin 6 (Rh6), contribute to light synchronization in a mutant (norpA(P41) ) that disrupts canonical phototransduction due to the absence of Phospholipase C-β (PLC-β). We reveal that norpA(P41) is a true loss-of-function allele, resulting in a truncated PLC-β protein that lacks the catalytic domain. Light reception mediated by Rh5 and Rh6 must therefore utilize either a different (nonretinal) PLC-β enzyme or alternative signaling mechanisms, at least in terms of clock-relevant photoreception. This novel signaling mode may distinguish Rhodopsin-mediated irradiance detection from image-forming vision in Drosophila.

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Year:  2012        PMID: 22306971      PMCID: PMC4405110          DOI: 10.1177/0748730411431673

Source DB:  PubMed          Journal:  J Biol Rhythms        ISSN: 0748-7304            Impact factor:   3.182


  42 in total

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3.  QUASIMODO, a Novel GPI-anchored zona pellucida protein involved in light input to the Drosophila circadian clock.

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4.  Rescue of photoreceptor degeneration in rhodopsin-null Drosophila mutants by activated Rac1.

Authors:  H Y Chang; D F Ready
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5.  The circadian clock of fruit flies is blind after elimination of all known photoreceptors.

Authors:  C Helfrich-Förster; C Winter; A Hofbauer; J C Hall; R Stanewsky
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7.  Rhythm defects caused by newly engineered null mutations in Drosophila's cryptochrome gene.

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8.  Novel features of cryptochrome-mediated photoreception in the brain circadian clock of Drosophila.

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9.  Molecular, biochemical, and electrophysiological characterization of Drosophila norpA mutants.

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Review 10.  Using FlyAtlas to identify better Drosophila melanogaster models of human disease.

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  21 in total

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3.  Quasimodo mediates daily and acute light effects on Drosophila clock neuron excitability.

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Review 4.  Coordination between Differentially Regulated Circadian Clocks Generates Rhythmic Behavior.

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5.  Daytime colour preference in Drosophila depends on the circadian clock and TRP channels.

Authors:  Stanislav Lazopulo; Andrey Lazopulo; James D Baker; Sheyum Syed
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6.  Drosophila circadian rhythms in seminatural environments: Summer afternoon component is not an artifact and requires TrpA1 channels.

Authors:  Edward W Green; Emma K O'Callaghan; Celia N Hansen; Stefano Bastianello; Supriya Bhutani; Stefano Vanin; James Douglas Armstrong; Rodolfo Costa; Charalambos P Kyriacou
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Review 7.  Drosophila sensory receptors-a set of molecular Swiss Army Knives.

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8.  Exquisite light sensitivity of Drosophila melanogaster cryptochrome.

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9.  An electromagnetic field disrupts negative geotaxis in Drosophila via a CRY-dependent pathway.

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Review 10.  Circadian light-input pathways in Drosophila.

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