Literature DB >> 17388813

Homologous expression of a bacterial phytochrome. The cyanobacterium Fremyella diplosiphon incorporates biliverdin as a genuine, functional chromophore.

Benjamin Quest1, Thomas Hübschmann, Shivani Sharda, Nicole Tandeau de Marsac, Wolfgang Gärtner.   

Abstract

Bacteriophytochromes constitute a light-sensing subgroup of sensory kinases with a chromophore-binding motif in the N-terminal half and a C-terminally located histidine kinase activity. The cyanobacterium Fremyella diplosiphon (also designated Calothrix sp.) expresses two sequentially very similar bacteriophytochromes, cyanobacterial phytochrome A (CphA) and cyanobacterial phytochrome B (CphB). Cyanobacterial phytochrome A has the canonical cysteine residue, by which covalent chromophore attachment is accomplished in the same manner as in plant phytochromes; however, its paralog cyanobacterial phytochrome B carries a leucine residue at that position. On the basis of in vitro experiments that showed, for both cyanobacterial phytochrome A and cyanobacterial phytochrome B, light-induced autophosphorylation and phosphate transfer to their cognate response regulator proteins RcpA and RcpB [Hübschmann T, Jorissen HJMM, Börner T, Gärtner W & deMarsac NT (2001) Eur J Biochem268, 3383-3389], we aimed at the identification of a chromophore that is incorporated in vivo into cyanobacterial phytochrome B within the cyanobacterial cell. The approach was based on the introduction of a copy of cphB into the cyanobacterium via triparental conjugation. The His-tagged purified, recombinant protein (CphBcy) showed photoreversible absorption bands similar to those of plant and bacterial phytochromes, but with remarkably red-shifted maxima [lambda(max) 700 and 748 nm, red-absorbing (P(r)) and far red-absorbing (P(fr)) forms of phytochrome, respectively]. A comparison of the absorption maxima with those of the heterologously generated apoprotein, assembled with phycocyanobilin (lambda(max) 686 and 734 nm) or with biliverdin IXalpha (lambda(max) 700 and 750 +/- 2 nm), shows biliverdin IXalpha to be a genuine chromophore. The kinase activity of CphBcy and phosphotransfer to its cognate response regulator was found to be strictly P(r)-dependent. As an N-terminally located cysteine was found as an alternative covalent binding site for several bacteriophytochrome photoreceptors that bind biliverdin and lack the canonical cysteine residue (e.g. Agrobacterium tumefaciens and Deinococcus radiodurans), this corresponding residue in heterologously expressed cyanobacterial phytochrome B was mutated into a serine (C24S); however, there was no change in its spectral properties. On the other hand, the mutation of His267, which is located directly after the canonical cysteine, into alanine (H267A), caused complete loss of the capability of cyanobacterial phytochrome B to form a chromoprotein.

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Year:  2007        PMID: 17388813     DOI: 10.1111/j.1742-4658.2007.05751.x

Source DB:  PubMed          Journal:  FEBS J        ISSN: 1742-464X            Impact factor:   5.542


  7 in total

1.  FTIR study of the photoinduced processes of plant phytochrome phyA using isotope-labeled bilins and density functional theory calculations.

Authors:  Pascale Schwinté; Harald Foerstendorf; Zakir Hussain; Wolfgang Gärtner; Maria-Andrea Mroginski; Peter Hildebrandt; Friedrich Siebert
Journal:  Biophys J       Date:  2008-04-04       Impact factor: 4.033

2.  A non-hydrolyzable ATP derivative generates a stable complex in a light-inducible two-component system.

Authors:  Shivani Sharda; Melissa S T Koay; Young-Jun Kim; Martin Engelhard; Wolfgang Gärtner
Journal:  J Biol Chem       Date:  2009-10-05       Impact factor: 5.157

3.  Structure of the biliverdin cofactor in the Pfr state of bathy and prototypical phytochromes.

Authors:  Johannes Salewski; Francisco Velazquez Escobar; Steve Kaminski; David von Stetten; Anke Keidel; Yvonne Rippers; Norbert Michael; Patrick Scheerer; Patrick Piwowarski; Franz Bartl; Nicole Frankenberg-Dinkel; Simone Ringsdorf; Wolfgang Gärtner; Tilman Lamparter; Maria Andrea Mroginski; Peter Hildebrandt
Journal:  J Biol Chem       Date:  2013-04-19       Impact factor: 5.157

Review 4.  Phytochrome evolution in 3D: deletion, duplication, and diversification.

Authors:  Nathan C Rockwell; J Clark Lagarias
Journal:  New Phytol       Date:  2019-11-02       Impact factor: 10.151

5.  Characterization of the genuine type 2 chromatic acclimation in the two Geminocystis cyanobacteria.

Authors:  Yuu Hirose; Naomi Misawa; Chinatsu Yonekawa; Nobuyoshi Nagao; Mai Watanabe; Masahiko Ikeuchi; Toshihiko Eki
Journal:  DNA Res       Date:  2017-08-01       Impact factor: 4.458

6.  Near-Infrared Markers based on Bacterial Phytochromes with Phycocyanobilin as a Chromophore.

Authors:  Olesya V Stepanenko; Olga V Stepanenko; Olesya G Shpironok; Alexander V Fonin; Irina M Kuznetsova; Konstantin K Turoverov
Journal:  Int J Mol Sci       Date:  2019-12-02       Impact factor: 5.923

7.  Spectral properties of bacteriophytochrome AM1_5894 in the chlorophyll d-containing cyanobacterium Acaryochloris marina.

Authors:  Patrick C Loughlin; Zane Duxbury; Tendo T Mukasa Mugerwa; Penelope M C Smith; Robert D Willows; Min Chen
Journal:  Sci Rep       Date:  2016-06-10       Impact factor: 4.379

  7 in total

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