Characterization of the Covalent and Noncovalent Adducts of Agp1 Phytochrome Assembled with Biliverdin and Phycocyanobilin by Circular Dichroism and Flash Photolysis

被引:24
作者
Borucki, Berthold [1 ]
Seibeck, Sven [1 ]
Heyn, Maarten P. [1 ]
Lamparter, Tilman [2 ]
机构
[1] Free Univ Berlin, Dept Phys, Biophys Grp, D-14195 Berlin, Germany
[2] Free Univ Berlin, Dept Biol, Inst Plant Physiol, D-14195 Berlin, Germany
关键词
PHOTOACTIVE YELLOW PROTEIN; CHROMOPHORE-BINDING DOMAIN; INDUCED PROTON RELEASE; AGROBACTERIUM-PHYTOCHROME; CRYSTAL-STRUCTURE; CPH1; PHYTOCHROME; GAF DOMAIN; LUMI-R; CYANOBACTERIAL; BACTERIOPHYTOCHROME;
D O I
10.1021/bi900436v
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The functional role of the covalent attachment of the bilin chromophores biliverdin (BV) and phycocyanobilin (PCB) was investigated for phytochrome Agp1 from Agrobacterium tumefaciens using circular dichroism (CD) and transient absorption spectroscopy. Covalent and noncovalent adducts with these chromophores were prepared by using wild-type (WT) Agp1 (covalent BV and noncovalent PCB binding), mutant C20A in which the covalent BV binding site is eliminated, and mutant V249C in which the covalent PCB binding site is introduced. While the CD spectra of the P-r forms of all these photochromic adducts are qualitatively the same, the CD spectrum of the P-fr form of the covalent PCB adduct is unique in having a positive rotational strength in the Q-band which we assign to the Z-E isomerization of the C-D methine bridge. In the three other adducts, the Q-band CD in the P-fr state is almost zero, suggesting that upon photoconversion a negative contribution from all out-of-plane rotation of the A ring of the chromophore compensates for the positive contribution from ring D. The contribution from ring A is absent or strongly reduced in the shorter pi-conjugation system of the covalent PCB adduct. The results from CD spectroscopy are consistent with uniform geometry of the bilin chromophore in the covalent and noncovalent adducts. Transient absorption spectroscopy showed that the spectral changes and the kinetics Of the P-r to P-fr photoconversion are not substantially affected by the covalent attachment of BV and PCB. The kinetics in the BV and PCB adducts mainly differ in the formation of P-fr that is accelerated by 1. orders of magnitude in the PCB adducts, whereas the sequence of spectral transitions and the associated proton transfer processes are quite similar. We conclude that the P-r to P-fr photoconversion in the BV and PCB adducts of Agp1 involves the same relaxation processes and is thus governed by specific protein-cofactor interactions rather than by the chemical structure of the chromophore or the mode of attachment. The strongly reduced photostability of the noncovalent BV adduct suggests that covalent attachment in native Agp1 phytochrome prevents irreversible photobleaching and stabilizes the chromophore. The N-terminal peptide segment including amino acids 2-19 is essential for covalent attachment of the chromophore but dispensable for the spectral and kinetic properties of Agp1.
引用
收藏
页码:6305 / 6317
页数:13
相关论文
共 66 条
[1]   Resonance Raman analysis of chromophore structure in the lumi-R photoproduct of phytochrome [J].
Andel, F ;
Lagarias, JC ;
Mathies, RA .
BIOCHEMISTRY, 1996, 35 (50) :15997-16008
[2]   VISUALIZATION OF BILIN-LINKED PEPTIDES AND PROTEINS IN POLYACRYLAMIDE GELS [J].
BERKELMAN, TR ;
LAGARIAS, JC .
ANALYTICAL BIOCHEMISTRY, 1986, 156 (01) :194-201
[3]   Bacteriophytochromes are photochromic histidine kinases using a biliverdin chromophore [J].
Bhoo, SH ;
Davis, SJ ;
Walker, J ;
Karniol, B ;
Vierstra, RD .
NATURE, 2001, 414 (6865) :776-779
[4]   Light-induced proton release of phytochrome is coupled to the transient deprotonation of the tetrapyrrole chromophore [J].
Borucki, B ;
von Stetten, D ;
Seibeck, S ;
Lamparter, T ;
Michael, N ;
Mroginski, MA ;
Otto, H ;
Murgida, DH ;
Heyn, MP ;
Hildebrandt, P .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (40) :34358-34364
[5]   Sensitive circular dichroism marker for the chromophore environment of photoactive yellow protein:: Assignment of the 307 and 318 nm bands to the n→π* transition of the carbonyl [J].
Borucki, B ;
Otto, H ;
Meyer, TE ;
Cusanovich, MA ;
Heyn, MP .
JOURNAL OF PHYSICAL CHEMISTRY B, 2005, 109 (01) :629-633
[6]   Mechanism of Cph1 phytochrome assembly from stopped-flow kinetics and circular dichroism [J].
Borucki, B ;
Otto, H ;
Rottwinkel, G ;
Hughes, J ;
Heyn, MP ;
Lamparter, T .
BIOCHEMISTRY, 2003, 42 (46) :13684-13697
[7]   Kinetics of proton uptake and dye binding by photoactive yellow protein in wild type and in the E46Q and E46A mutants [J].
Borucki, B ;
Devanathan, S ;
Otto, H ;
Cusanovich, MA ;
Tollin, G ;
Heyn, MP .
BIOCHEMISTRY, 2002, 41 (31) :10026-10037
[8]   Proton transfer in the photoreceptors phytochrome and photoactive yellow protein [J].
Borucki, Berthold .
PHOTOCHEMICAL & PHOTOBIOLOGICAL SCIENCES, 2006, 5 (06) :553-566
[9]   The Fungal Phytochrome FphA from Aspergillus nidulans [J].
Brandt, Sonja ;
von Stetten, David ;
Guenther, Mina ;
Hildebrandt, Peter ;
Frankenberg-Dinkel, Nicole .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (50) :34605-34614
[10]   Solution Structure of a Cyanobacterial Phytochrome GAF Domain in the Red-Light-Absorbing Ground State [J].
Cornilescu, Gabriel ;
Ulijasz, Andrew T. ;
Cornilescu, Claudia C. ;
Markley, John L. ;
Vierstra, Richard D. .
JOURNAL OF MOLECULAR BIOLOGY, 2008, 383 (02) :403-413