Structural basis for the fast maturation of Arthropoda green fluorescent protein

被引:90
作者
Evdokimov, Artem G.
Pokross, Matthew E.
Egorov, Nikolay S.
Zaraisky, Andrey G.
Yampolsky, Ilya V.
Merzlyak, Ekaterina M.
Shkoporov, Andrey N.
Sander, Ian
Lukyanov, Konstantin A.
Chudakov, Dmitriy M.
机构
[1] RAS, Shemiakin & Ovchinnikov Inst Bioorgan Chem, Moscow 117997, Russia
[2] Procter & Gamble Pharmaceut, Xray Crystallog, HCRC Discovery, Mason, OH 45040 USA
[3] Evrogen JSC, Moscow 117997, Russia
关键词
GFP; Arthropoda; TurboGFP; structure; chromophore maturation;
D O I
10.1038/sj.embor.7400787
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
Since the cloning of Aequorea victoria green fluorescent protein (GFP) in 1992, a family of known GFP-like proteins has been growing rapidly. Today, it includes more than a hundred proteins with different spectral characteristics cloned from Cnidaria species. For some of these proteins, crystal structures have been solved, showing diversity in chromophore modifications and conformational states. However, we are still far from a complete understanding of the origin, functions and evolution of the GFP family. Novel proteins of the family were recently cloned from evolutionarily distant marine Copepoda species, phylum Arthropoda, demonstrating an extremely rapid generation of fluorescent signal. Here, we have generated a non-aggregating mutant of Copepoda fluorescent protein and solved its high-resolution crystal structure. It was found that the protein b-barrel contains a pore, leading to the chromophore. Using site-directed mutagenesis, we showed that this feature is critical for the fast maturation of the chromophore.
引用
收藏
页码:1006 / 1012
页数:7
相关论文
共 26 条
[1]   Fluorescent proteins as a toolkit for in vivo imaging [J].
Chudakov, DM ;
Lukyanov, S ;
Lukyanov, KA .
TRENDS IN BIOTECHNOLOGY, 2005, 23 (12) :605-613
[2]   CHEMICAL-STRUCTURE OF THE HEXAPEPTIDE CHROMOPHORE OF THE AEQUOREA GREEN-FLUORESCENT PROTEIN [J].
CODY, CW ;
PRASHER, DC ;
WESTLER, WM ;
PRENDERGAST, FG ;
WARD, WW .
BIOCHEMISTRY, 1993, 32 (05) :1212-1218
[3]   Acid denaturation and refolding of green fluorescent protein [J].
Enoki, S ;
Saeki, K ;
Maki, K ;
Kuwajima, K .
BIOCHEMISTRY, 2004, 43 (44) :14238-14248
[4]   WAVELENGTH MUTATIONS AND POSTTRANSLATIONAL AUTOXIDATION OF GREEN FLUORESCENT PROTEIN [J].
HEIM, R ;
PRASHER, DC ;
TSIEN, RY .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (26) :12501-12504
[5]   Recombinant sickle hemoglobin containing a lysine substitution at Asp-85(alpha): Expression in yeast, functional properties, and participation in gel formation [J].
Himanen, JP ;
Popowicz, AM ;
Manning, JM .
BLOOD, 1997, 89 (11) :4196-4203
[6]   SITE-DIRECTED MUTAGENESIS BY OVERLAP EXTENSION USING THE POLYMERASE CHAIN-REACTION [J].
HO, SN ;
HUNT, HD ;
HORTON, RM ;
PULLEN, JK ;
PEASE, LR .
GENE, 1989, 77 (01) :51-59
[7]   EVIDENCE FOR REDOX FORMS OF THE AEQUOREA GREEN FLUORESCENT PROTEIN [J].
INOUYE, S ;
TSUJI, FI .
FEBS LETTERS, 1994, 351 (02) :211-214
[8]   QUANTUM EFFICIENCY OF CYPRIDINA LUMINESCENCE, WITH A NOTE ON THAT OF AEQUOREA [J].
JOHNSON, FH ;
GERSHMAN, LC ;
WATERS, JR ;
REYNOLDS, GT ;
SAIGA, Y ;
SHIMOMURA, O .
JOURNAL OF CELLULAR AND COMPARATIVE PHYSIOLOGY, 1962, 60 (01) :85-&
[9]   Fluorescent properties of model chromophores of tyrosine-66 substituted mutants of Aequorea green fluorescent protein (GFP) [J].
Kojima, S ;
Ohkawa, H ;
Hirano, T ;
Maki, S ;
Niwa, H ;
Ohashi, M ;
Inouye, S ;
Tsuji, FI .
TETRAHEDRON LETTERS, 1998, 39 (29) :5239-5242
[10]   Cyan and yellow super fluorescent proteins with improved brightness, protein folding, and FRET Forster radius [J].
Kremers, Gert-Jan ;
Goedhart, Joachim ;
van Munster, Erik B. ;
Gadella, Theodorus W. J., Jr. .
BIOCHEMISTRY, 2006, 45 (21) :6570-6580