Literature DB >> 24379403

Mechanism of photosignaling by Drosophila cryptochrome: role of the redox status of the flavin chromophore.

Nuri Ozturk1, Christopher P Selby, Dongping Zhong, Aziz Sancar.   

Abstract

Cryptochrome (CRY) is the primary circadian photoreceptor in Drosophila. Upon light absorption, dCRY undergoes a conformational change that enables it to bind to Timeless (dTIM), as well as to two different E3 ligases that ubiquitylate dTIM and dCRY, respectively, resulting in their proteolysis and resetting the phase of the circadian rhythm. Purified dCRY contains oxidized flavin (FADox), which is readily photoreduced to the anionic semiquinone through a set of 3 highly conserved Trp residues (Trp triad). The crystal structure of dCRY has revealed a fourth Trp (Trp-536) as a potential electron donor. Previously, we reported that the Trp triad played no role in photoinduced proteolysis of dCRY in Drosophila cells. Here we investigated the role of the Trp triad and Trp-536, and the redox status of the flavin on light-induced proteolysis of both dCRY and dTIM and resetting of the clock. We found that both oxidized (FADox) and reduced (FAD) forms of dCRY undergo light-induced conformational change in vitro that enable dCRY to bind JET and that Trp triad and Trp-536 mutations that block known or presumed intraprotein electron transfer reactions do not affect dCRY phototransduction under bright or dim light in vivo as measured by light-induced proteolysis of dCRY and dTIM in Drosophila S2R+ cells. We conclude that both oxidized and reduced forms of dCRY are capable of photosignaling.

Entities:  

Keywords:  Circadian Clock; Circadian Clock Resetting; Cryptochrome; Drosophila; Flavoproteins; Photoreceptor; Protein Conformation; Signal Transduction; Timeless Degradation

Mesh:

Substances:

Year:  2013        PMID: 24379403      PMCID: PMC3931024          DOI: 10.1074/jbc.M113.542498

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  35 in total

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3.  Arabidopsis cryptochrome 2 (CRY2) functions by the photoactivation mechanism distinct from the tryptophan (trp) triad-dependent photoreduction.

Authors:  Xu Li; Qin Wang; Xuhong Yu; Hongtao Liu; Huan Yang; Chenxi Zhao; Xuanming Liu; Chuang Tan; John Klejnot; Dongping Zhong; Chentao Lin
Journal:  Proc Natl Acad Sci U S A       Date:  2011-12-02       Impact factor: 11.205

4.  The Cryptochrome Blue Light Receptors.

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Journal:  Arabidopsis Book       Date:  2010-09-23

5.  A novel photoreaction mechanism for the circadian blue light photoreceptor Drosophila cryptochrome.

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Journal:  J Biol Chem       Date:  2007-02-12       Impact factor: 5.157

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Journal:  Proc Natl Acad Sci U S A       Date:  2013-12-02       Impact factor: 11.205

8.  CRY, a Drosophila clock and light-regulated cryptochrome, is a major contributor to circadian rhythm resetting and photosensitivity.

Authors:  P Emery; W V So; M Kaneko; J C Hall; M Rosbash
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9.  Animal type 1 cryptochromes. Analysis of the redox state of the flavin cofactor by site-directed mutagenesis.

Authors:  Nuri Öztürk; Sang-Hun Song; Christopher P Selby; Aziz Sancar
Journal:  J Biol Chem       Date:  2007-12-05       Impact factor: 5.157

10.  Structure of full-length Drosophila cryptochrome.

Authors:  Brian D Zoltowski; Anand T Vaidya; Deniz Top; Joanne Widom; Michael W Young; Brian R Crane
Journal:  Nature       Date:  2011-11-13       Impact factor: 49.962

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  25 in total

1.  CRYPTOCHROME-mediated phototransduction by modulation of the potassium ion channel β-subunit redox sensor.

Authors:  Keri J Fogle; Lisa S Baik; Jerry H Houl; Tri T Tran; Logan Roberts; Nicole A Dahm; Yu Cao; Ming Zhou; Todd C Holmes
Journal:  Proc Natl Acad Sci U S A       Date:  2015-02-02       Impact factor: 11.205

2.  Resolving cryptic aspects of cryptochrome signaling.

Authors:  Brian D Zoltowski
Journal:  Proc Natl Acad Sci U S A       Date:  2015-07-08       Impact factor: 11.205

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Authors:  Xuefeng Wang; Chengyu Jing; Christopher P Selby; Yi-Ying Chiou; Yanyan Yang; Wenjian Wu; Aziz Sancar; Jing Wang
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Review 4.  Animal Cryptochromes: Divergent Roles in Light Perception, Circadian Timekeeping and Beyond.

Authors:  Alicia K Michael; Jennifer L Fribourgh; Russell N Van Gelder; Carrie L Partch
Journal:  Photochem Photobiol       Date:  2017-01-18       Impact factor: 3.421

5.  Time-Resolved Infrared and Visible Spectroscopy on Cryptochrome aCRY: Basis for Red Light Reception.

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Journal:  Biophys J       Date:  2019-07-03       Impact factor: 4.033

6.  Changes in active site histidine hydrogen bonding trigger cryptochrome activation.

Authors:  Abir Ganguly; Craig C Manahan; Deniz Top; Estella F Yee; Changfan Lin; Michael W Young; Walter Thiel; Brian R Crane
Journal:  Proc Natl Acad Sci U S A       Date:  2016-08-22       Impact factor: 11.205

7.  Cellular metabolites enhance the light sensitivity of Arabidopsis cryptochrome through alternate electron transfer pathways.

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Journal:  Plant Cell       Date:  2014-11-26       Impact factor: 11.277

8.  Characterization of a cold-adapted DNA photolyase from C. psychrerythraea 34H.

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Review 9.  Protein engineering: a new frontier for biological therapeutics.

Authors:  Peter H Tobin; David H Richards; Randolph A Callender; Corey J Wilson
Journal:  Curr Drug Metab       Date:  2014       Impact factor: 3.731

Review 10.  Coordination between Differentially Regulated Circadian Clocks Generates Rhythmic Behavior.

Authors:  Deniz Top; Michael W Young
Journal:  Cold Spring Harb Perspect Biol       Date:  2018-07-02       Impact factor: 10.005

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