High resolution structure of Deinococcus bacteriophytochrome yields new insights into phytochrome architecture and evolution
- PMID: 17322301
- DOI: 10.1074/jbc.M611824200
High resolution structure of Deinococcus bacteriophytochrome yields new insights into phytochrome architecture and evolution
Abstract
Phytochromes are red/far red light photochromic photoreceptors that direct many photosensory behaviors in the bacterial, fungal, and plant kingdoms. They consist of an N-terminal domain that covalently binds a bilin chromophore and a C-terminal region that transmits the light signal, often through a histidine kinase relay. Using x-ray crystallography, we recently solved the first three-dimensional structure of a phytochrome, using the chromophore-binding domain of Deinococcus radiodurans bacterial phytochrome assembled with its chromophore, biliverdin IXalpha. Now, by engineering the crystallization interface, we have achieved a significantly higher resolution model. This 1.45A resolution structure helps identify an extensive buried surface between crystal symmetry mates that may promote dimerization in vivo. It also reveals that upon ligation of the C3(2) carbon of biliverdin to Cys(24), the chromophore A-ring assumes a chiral center at C2, thus becoming 2(R),3(E)-phytochromobilin, a chemistry more similar to that proposed for the attached chromophores of cyanobacterial and plant phytochromes than previously appreciated. The evolution of bacterial phytochromes to those found in cyanobacteria and higher plants must have involved greater fitness using more reduced bilins, such as phycocyanobilin, combined with a switch of the attachment site from a cysteine near the N terminus to one conserved within the cGMP phosphodiesterase/adenyl cyclase/FhlA domain. From analysis of site-directed mutants in the D. radiodurans phytochrome, we show that this bilin preference was partially driven by the change in binding site, which ultimately may have helped photosynthetic organisms optimize shade detection. Collectively, these three-dimensional structural results better clarify bilin/protein interactions and help explain how higher plant phytochromes evolved from prokaryotic progenitors.
Similar articles
-
A light-sensing knot revealed by the structure of the chromophore-binding domain of phytochrome.Nature. 2005 Nov 17;438(7066):325-31. doi: 10.1038/nature04118. Nature. 2005. PMID: 16292304
-
Evolution of cyanobacterial and plant phytochromes.FEBS Lett. 2004 Aug 27;573(1-3):1-5. doi: 10.1016/j.febslet.2004.07.050. FEBS Lett. 2004. PMID: 15327965 Review.
-
Biliverdin binds covalently to agrobacterium phytochrome Agp1 via its ring A vinyl side chain.J Biol Chem. 2003 Sep 5;278(36):33786-92. doi: 10.1074/jbc.M305563200. Epub 2003 Jun 24. J Biol Chem. 2003. PMID: 12824166
-
Mutational analysis of Deinococcus radiodurans bacteriophytochrome reveals key amino acids necessary for the photochromicity and proton exchange cycle of phytochromes.J Biol Chem. 2008 May 2;283(18):12212-26. doi: 10.1074/jbc.M709355200. Epub 2008 Jan 10. J Biol Chem. 2008. PMID: 18192276 Free PMC article.
-
Phytochrome structure and signaling mechanisms.Annu Rev Plant Biol. 2006;57:837-58. doi: 10.1146/annurev.arplant.56.032604.144208. Annu Rev Plant Biol. 2006. PMID: 16669784 Free PMC article. Review.
Cited by
-
Near-Infrared Markers based on Bacterial Phytochromes with Phycocyanobilin as a Chromophore.Int J Mol Sci. 2019 Dec 2;20(23):6067. doi: 10.3390/ijms20236067. Int J Mol Sci. 2019. PMID: 31810174 Free PMC article.
-
The Pathways of the iRFP713 Unfolding Induced by Different Denaturants.Int J Mol Sci. 2018 Sep 15;19(9):2776. doi: 10.3390/ijms19092776. Int J Mol Sci. 2018. PMID: 30223568 Free PMC article.
-
Dynamic structural changes underpin photoconversion of a blue/green cyanobacteriochrome between its dark and photoactivated states.J Biol Chem. 2014 Jan 31;289(5):3055-65. doi: 10.1074/jbc.M113.531053. Epub 2013 Dec 11. J Biol Chem. 2014. PMID: 24337572 Free PMC article.
-
Obligate heterodimerization of Arabidopsis phytochromes C and E and interaction with the PIF3 basic helix-loop-helix transcription factor.Plant Cell. 2009 Mar;21(3):786-99. doi: 10.1105/tpc.108.065227. Epub 2009 Mar 13. Plant Cell. 2009. PMID: 19286967 Free PMC article.
-
Vibrational Spectroscopy of Phytochromes.Biomolecules. 2023 Jun 17;13(6):1007. doi: 10.3390/biom13061007. Biomolecules. 2023. PMID: 37371587 Free PMC article. Review.
Publication types
MeSH terms
Substances
Associated data
- Actions
- Actions
LinkOut - more resources
Full Text Sources
Other Literature Sources
Miscellaneous