Backbone dynamics of green fluorescent protein and the effect of histidine 148 substitution

被引:54
作者
Seifert, MHJ
Georgescu, J
Ksiazek, D
Smialowski, P
Rehm, T
Steipe, B
Holak, TA
机构
[1] Max Planck Inst Biochem, D-82152 Martinsried, Germany
[2] Univ Toronto, Dept Biochem, Toronto, ON, Canada
关键词
D O I
10.1021/bi026481b
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
Green fluorescent protein (GFP) and its mutants have become valuable tools in molecular biology. GFP has been regarded as a very stable and rigid protein with the beta-barrel shielding the chromophore from the solvent. Here, we report the N-15 nuclear magnetic resonance (NMR) studies on the green fluorescent protein (GFPuv) and its mutant His148Gly. N-15 NMR relaxation studies of GFPuv show that most of the beta-barrel of GFP is rigid on the picosecond to nanosecond time scale. For several regions, including the first alpha-helix and beta-sheets 3, 7, 8, and 10, increased hydrogen-deuterium exchange rates suggest a substantial conformational flexibility on the microsecond to millisecond time scales. Mutation of residue 148 located in beta-sheet 7 is known to have a strong impact on the fluorescence properties of GFPs. UV absorption and fluorescence spectra in combination with H-1-N-15 NMR spectra indicate that the His148Gly mutation not only reduces the absorption of the anionic chromophore state but also affects the conformational stability, leading to the appearance of doubled backbone amide resonances for a number of residues. This suggests the presence of two conformations in slow exchange on the NMR time scale in this mutant.
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页码:2500 / 2512
页数:13
相关论文
共 71 条
[1]  
Battistutta R, 2000, PROTEINS, V41, P429, DOI 10.1002/1097-0134(20001201)41:4<429::AID-PROT10>3.0.CO
[2]  
2-D
[3]   Probing the ground state structure of the green fluorescent protein chromophore using Raman spectroscopy [J].
Bell, AF ;
He, X ;
Wachter, RM ;
Tonge, PJ .
BIOCHEMISTRY, 2000, 39 (15) :4423-4431
[4]   Structural basis for dual excitation and photoisomerization of the Aequorea victoria green fluorescent protein [J].
Brejc, K ;
Sixma, TK ;
Kitts, PA ;
Kain, SR ;
Tsien, RY ;
Ormo, M ;
Remington, SJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (06) :2306-2311
[5]   Interconversion of Anthozoa GFP-like fluorescent and non-fluorescent proteins by mutagenesis [J].
Bulina, Maria E. ;
Chudakov, Dmitry M. ;
Mudrik, Nikolay N. ;
Lukyanov, Konstantin A. .
BMC BIOCHEMISTRY, 2002, 3 :1-8
[6]   A monomeric red fluorescent protein [J].
Campbell, RE ;
Tour, O ;
Palmer, AE ;
Steinbach, PA ;
Baird, GS ;
Zacharias, DA ;
Tsien, RY .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (12) :7877-7882
[7]   GREEN FLUORESCENT PROTEIN AS A MARKER FOR GENE-EXPRESSION [J].
CHALFIE, M ;
TU, Y ;
EUSKIRCHEN, G ;
WARD, WW ;
PRASHER, DC .
SCIENCE, 1994, 263 (5148) :802-805
[8]   AMINO-ACID SEQUENCE OF THE CALCIUM-DEPENDENT PHOTOPROTEIN AEQUORIN [J].
CHARBONNEAU, H ;
WALSH, KA ;
MCCANN, RO ;
PRENDERGAST, FG ;
CORMIER, MJ ;
VANAMAN, TC .
BIOCHEMISTRY, 1985, 24 (24) :6762-6771
[9]   Ultra-fast excited state dynamics in green fluorescent protein: Multiple states and proton transfer [J].
Chattoraj, M ;
King, BA ;
Bublitz, GU ;
Boxer, SG .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (16) :8362-8367
[10]   A study of conserved in-loop and out-of-loop glycine residues in the large subunit of ribulose bisphosphate carboxylase/oxygenase by directed mutagenesis [J].
Cheng, ZQ ;
McFadden, BA .
PROTEIN ENGINEERING, 1998, 11 (06) :457-465