Literature DB >> 8973170

Resonance raman analysis of chromophore structure in the lumi-R photoproduct of phytochrome.

F Andel1, J C Lagarias, R A Mathies.   

Abstract

Resonance Raman vibrational spectra of the Pr, lumi-R, and Pfr forms of phytochrome have been obtained using low-temperature trapping and room temperature flow techniques in conjunction with shifted-excitation Raman difference spectroscopy (SERDS). The Pr to lumi-R photoconversion exhibits a thermal barrier and is completely blocked at 30 K, indicating that thermally assisted protein relaxation is necessary for the primary photochemistry. When Pr is converted to lumi-R, new bands appear in the C = C and C = N stretching regions at 1651, 1636, 1590, and 1569 cm-1, indicating that a significant structural change of the chromophore has occurred. The photoconversion also results in an 18 cm-1 decrease in the N-H rocking band in lumi-R. Normal mode calculations correlate this frequency drop with a change in the geometry of the C15 methine bridge of the phytochromobilin chromophore. Additionally, a C = N stretching mode marker band shifts from 1576 cm-1 in Pr to 1569 cm-1 in lumi-R and to 1552 cm-1 in Pfr. Normal mode calculations show that the frequency drop of this band in the lumi-R-->Pfr interconversion is an indication of a C14-C15 syn-->anti conformational change. Moderately intense hydrogen out-of-plane modes that occur at 805 cm-1 in Pr shift to 829 and 847 cm-1 upon photoconversion to lumi-R and are replaced by a very intense mode at 814 cm-1 in Pfr. These observations indicate that the C and D rings of the chromophore in Pr and lumi-R are moderately planar but that they become highly distorted in Pfr. This information suggests that the primary photochemistry in phytochrome is a Z-->E isomerization of the C15 = C16 bond of Pr giving lumi-R. This is followed by a thermal syn-->anti C14-C15 conformational relaxation to form Pfr. A four-state model is presented to explain the chromophore structural changes in Pr, lumi-R, and Pfr that uses hydrogen bonding to the surrounding protein to stabilize the high-energy Pfr C15 = C16, C14-C15, E,anti chromophore structure. This implicates an anchor and release mechanism between the chromophore and protein that might lead to altered biological signaling in the plant.

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Year:  1996        PMID: 8973170     DOI: 10.1021/bi962175k

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  24 in total

1.  Ultrafast dynamics of phytochrome from the cyanobacterium synechocystis, reconstituted with phycocyanobilin and phycoerythrobilin.

Authors:  Karsten Heyne; Johannes Herbst; Dietmar Stehlik; Berta Esteban; Tilman Lamparter; Jon Hughes; Rolf Diller
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2.  Phytochrome signaling mechanisms.

Authors:  Jigang Li; Gang Li; Haiyang Wang; Xing Wang Deng
Journal:  Arabidopsis Book       Date:  2011-08-29

Review 3.  Phytochrome structure and signaling mechanisms.

Authors:  Nathan C Rockwell; Yi-Shin Su; J Clark Lagarias
Journal:  Annu Rev Plant Biol       Date:  2006       Impact factor: 26.379

4.  Mutational analysis of Deinococcus radiodurans bacteriophytochrome reveals key amino acids necessary for the photochromicity and proton exchange cycle of phytochromes.

Authors:  Jeremiah R Wagner; Junrui Zhang; David von Stetten; Mina Günther; Daniel H Murgida; Maria Andrea Mroginski; Joseph M Walker; Katrina T Forest; Peter Hildebrandt; Richard D Vierstra
Journal:  J Biol Chem       Date:  2008-01-10       Impact factor: 5.157

5.  Subpicosecond midinfrared spectroscopy of the Pfr reaction of phytochrome Agp1 from Agrobacterium tumefaciens.

Authors:  Christian Schumann; Ruth Gross; Matthias M N Wolf; Rolf Diller; Norbert Michael; Tilman Lamparter
Journal:  Biophys J       Date:  2008-01-11       Impact factor: 4.033

6.  Chromophore structure of cyanobacterial phytochrome Cph1 in the Pr state: reconciling structural and spectroscopic data by QM/MM calculations.

Authors:  Maria Andrea Mroginski; David von Stetten; Francisco Velazquez Escobar; Holger M Strauss; Steve Kaminski; Patrick Scheerer; Mina Günther; Daniel H Murgida; Peter Schmieder; Christian Bongards; Wolfgang Gärtner; Jo Mailliet; Jon Hughes; Lars-Oliver Essen; Peter Hildebrandt
Journal:  Biophys J       Date:  2009-05-20       Impact factor: 4.033

7.  Synthetic Studies in Phytochrome Chemistry.

Authors:  Peter A Jacobi; Imad M Adel Odeh; Subhas C Buddhu; Guolin Cai; Sundaramoorthi Rajeswari; Douglas Fry; Wanjun Zheng; Robert W Desimone; Jiasheng Guo; Lisa D Coutts; Sheila I Hauck; Sam H Leung; Indranath Ghosh; Douglas Pippin
Journal:  Synlett       Date:  2005       Impact factor: 2.454

8.  On the origin of fluorescence in bacteriophytochrome infrared fluorescent proteins.

Authors:  Alex A Samma; Chelsea K Johnson; Shuang Song; Samuel Alvarez; Marc Zimmer
Journal:  J Phys Chem B       Date:  2010-11-03       Impact factor: 2.991

9.  A polarity probe for monitoring light-induced structural changes at the entrance of the chromophore pocket in a bacterial phytochrome.

Authors:  Berthold Borucki; Tilman Lamparter
Journal:  J Biol Chem       Date:  2009-07-29       Impact factor: 5.157

10.  Characterization of two thermostable cyanobacterial phytochromes reveals global movements in the chromophore-binding domain during photoconversion.

Authors:  Andrew T Ulijasz; Gabriel Cornilescu; David von Stetten; Steve Kaminski; Maria Andrea Mroginski; Junrui Zhang; Devaki Bhaya; Peter Hildebrandt; Richard D Vierstra
Journal:  J Biol Chem       Date:  2008-05-14       Impact factor: 5.157

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