Literature DB >> 24488042

Different visible colors and green fluorescence were obtained from the mutated purple chromoprotein isolated from sea anemone.

Cheng-Yi Chiang1, Yi-Lin Chen, Huai-Jen Tsai.   

Abstract

Green fluorescent protein (GFP)-like proteins have been studied with the aim of developing fluorescent proteins. Since the property of color variation is understudied, we isolated a novel GFP-like chromoprotein from the carpet anemone Stichodactyla haddoni, termed shCP. Its maximum absorption wavelength peak (λ(max)) is located at 574 nm, resulting in a purple color. The shCP protein consists of 227 amino acids (aa), sharing 96 % identity with the GFP-like chromoprotein of Heteractis crispa. We mutated aa residues to examine any alteration in color. When E63, the first aa of the chromophore, was replaced by serine (E63S), the λ(max) of the mutated protein shCP-E63S was shifted to 560 nm and exhibited a pink color. When Q39, T194, and I196, which reside in the surrounding 5 Å of the chromophore's microenvironment, were mutated, we found that (1) the λ(max) of the mutated protein shCP-Q39S was shifted to 518 nm and exhibited a red color, (2) shCP-T194I exhibited a purple-blue color, and (3) an additional mutation at I196H of the mutated protein shCP-E63L exhibited green fluorescence. In contrast, when the aa located neither at the chromophore nor within its microenvironment were mutated, the resultant proteins shCP-L122H, -E138G, -S137D, -T95I, -D129N, -T194V, -E138Q, -G75E, -I183V, and -I70V never altered their purple color, suggesting that mutations at the shCP chromophore and the surrounding 5 Å microenvironment mostly control changes in color expression or cause fluorescence to develop. Additionally, we found that the cDNAs of shCP and its mutated varieties are faithfully and stably expressed both in Escherichia coli and zebrafish embryos.

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Year:  2014        PMID: 24488042     DOI: 10.1007/s10126-014-9563-2

Source DB:  PubMed          Journal:  Mar Biotechnol (NY)        ISSN: 1436-2228            Impact factor:   3.619


  29 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2002-04-02       Impact factor: 11.205

2.  An optical marker based on the UV-induced green-to-red photoconversion of a fluorescent protein.

Authors:  Ryoko Ando; Hiroshi Hama; Miki Yamamoto-Hino; Hideaki Mizuno; Atsushi Miyawaki
Journal:  Proc Natl Acad Sci U S A       Date:  2002-09-23       Impact factor: 11.205

Review 3.  The molecular properties and applications of Anthozoa fluorescent proteins and chromoproteins.

Authors:  Vladislav V Verkhusha; Konstantin A Lukyanov
Journal:  Nat Biotechnol       Date:  2004-03       Impact factor: 54.908

4.  Structure of the red fluorescent protein from a lancelet (Branchiostoma lanceolatum): a novel GYG chromophore covalently bound to a nearby tyrosine.

Authors:  Vladimir Z Pletnev; Nadya V Pletneva; Konstantin A Lukyanov; Ekaterina A Souslova; Arkady F Fradkov; Dmitry M Chudakov; Tatyana Chepurnykh; Ilia V Yampolsky; Alexander Wlodawer; Zbigniew Dauter; Sergei Pletnev
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2013-08-17

5.  Structure and reactivity of the chromophore of a GFP-like chromoprotein from Condylactis gigantea.

Authors:  Alexey A Pakhomov; Nadezhda V Pletneva; Tamara A Balashova; Vladimir I Martynov
Journal:  Biochemistry       Date:  2006-06-13       Impact factor: 3.162

6.  Far-red fluorescent proteins evolved from a blue chromoprotein from Actinia equina.

Authors:  Maria A Shkrob; Yurii G Yanushevich; Dmitriy M Chudakov; Nadya G Gurskaya; Yulii A Labas; Sergey Y Poponov; Nikolay N Mudrik; Sergey Lukyanov; Konstantin A Lukyanov
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Review 7.  Advances in fluorescent protein technology.

Authors:  Nathan C Shaner; George H Patterson; Michael W Davidson
Journal:  J Cell Sci       Date:  2007-12-15       Impact factor: 5.285

8.  Green fluorescent protein as a marker for gene expression.

Authors:  M Chalfie; Y Tu; G Euskirchen; W W Ward; D C Prasher
Journal:  Science       Date:  1994-02-11       Impact factor: 47.728

9.  Monomeric fluorescent timers that change color from blue to red report on cellular trafficking.

Authors:  Fedor V Subach; Oksana M Subach; Illia S Gundorov; Kateryna S Morozova; Kiryl D Piatkevich; Ana Maria Cuervo; Vladislav V Verkhusha
Journal:  Nat Chem Biol       Date:  2009-01-11       Impact factor: 15.040

10.  Photo-induced peptide cleavage in the green-to-red conversion of a fluorescent protein.

Authors:  Hideaki Mizuno; Tapas Kumar Mal; Kit I Tong; Ryoko Ando; Toshiaki Furuta; Mitsuhiko Ikura; Atsushi Miyawaki
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  4 in total

1.  Purple chromoprotein gene serves as a new selection marker for transgenesis of the microalga Nannochloropsis oculata.

Authors:  Chen-Han Shih; Hsiao-Yin Chen; Hung-Chieh Lee; Huai-Jen Tsai
Journal:  PLoS One       Date:  2015-03-20       Impact factor: 3.240

2.  Structure-based analysis and evolution of a monomerized red-colored chromoprotein from the Olindias formosa jellyfish.

Authors:  Le Zhai; Ryosuke Nakashima; Hajime Shinoda; Yoshimasa Ike; Tomoki Matsuda; Takeharu Nagai
Journal:  Protein Sci       Date:  2022-05       Impact factor: 6.725

3.  Chromophore Deprotonation State Alters the Optical Properties of Blue Chromoprotein.

Authors:  Cheng-Yi Chiang; Cheng-Chung Lee; Shin-Yi Lo; Andrew H-J Wang; Huai-Jen Tsai
Journal:  PLoS One       Date:  2015-07-28       Impact factor: 3.240

4.  Engineering a palette of eukaryotic chromoproteins for bacterial synthetic biology.

Authors:  Josefine Liljeruhm; Saskia K Funk; Sandra Tietscher; Anders D Edlund; Sabri Jamal; Pikkei Wistrand-Yuen; Karl Dyrhage; Arvid Gynnå; Katarina Ivermark; Jessica Lövgren; Viktor Törnblom; Anders Virtanen; Erik R Lundin; Erik Wistrand-Yuen; Anthony C Forster
Journal:  J Biol Eng       Date:  2018-05-10       Impact factor: 4.355

  4 in total

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