Literature DB >> 9665702

Toward understanding tryptophan fluorescence in proteins.

Y Chen1, M D Barkley.   

Abstract

A general approach to dissecting the complex photophysics of tryptophan is presented and used to elucidate the effects of amino acid functional groups on tryptophan fluorescence. We have definitively identified the amino acid side chains that quench tryptophan fluorescence and delineated the respective quenching mechanisms in a simple model system. Steady-state and time-resolved fluorescence techniques, photochemical H-D exchange experiments, and transient absorption techniques were used to measure individual contributions to the total nonradiative rate for deactivation of the excited state, including intersystem crossing, solvent quenching, and excited-state proton and electron transfer rates. Eight amino acid side chains representing six functional groups quench 3-methylindole fluorescence with a 100-fold range in quenching rate constant. Lysine and tyrosine side chains quench by excited-state proton transfer; glutamine, asparagine, glutamic and aspartic acid, cysteine, and histidine side chains quench by excited-state electron transfer. These studies provide a framework for deriving detailed structural and dynamical information from tryptophan fluorescence intensity and lifetime data in peptides and proteins.

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Year:  1998        PMID: 9665702     DOI: 10.1021/bi980274n

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


  201 in total

1.  A step toward the prediction of the fluorescence lifetimes of tryptophan residues in proteins based on structural and spectral data.

Authors:  A Sillen; J F Díaz; Y Engelborghs
Journal:  Protein Sci       Date:  2000-01       Impact factor: 6.725

2.  Decomposition of protein tryptophan fluorescence spectra into log-normal components. II. The statistical proof of discreteness of tryptophan classes in proteins.

Authors:  Y K Reshetnyak; E A Burstein
Journal:  Biophys J       Date:  2001-09       Impact factor: 4.033

3.  Decomposition of protein tryptophan fluorescence spectra into log-normal components. III. Correlation between fluorescence and microenvironment parameters of individual tryptophan residues.

Authors:  Y K Reshetnyak; Y Koshevnik; E A Burstein
Journal:  Biophys J       Date:  2001-09       Impact factor: 4.033

4.  HIV-1 integrase catalytic core: molecular dynamics and simulated fluorescence decays.

Authors:  C Laboulais; E Deprez; H Leh; J F Mouscadet; J C Brochon; M Le Bret
Journal:  Biophys J       Date:  2001-07       Impact factor: 4.033

5.  Conformational changes of FtsZ reported by tryptophan mutants.

Authors:  Yaodong Chen; Harold P Erickson
Journal:  Biochemistry       Date:  2011-05-03       Impact factor: 3.162

6.  What causes hyperfluorescence: folding intermediates or conformationally flexible native states?

Authors:  John Ervin; Edgar Larios; Szabolcs Osváth; Klaus Schulten; Martin Gruebele
Journal:  Biophys J       Date:  2002-07       Impact factor: 4.033

7.  Conformational effects on tryptophan fluorescence in cyclic hexapeptides.

Authors:  Chia-Pin Pan; Mary D Barkley
Journal:  Biophys J       Date:  2004-06       Impact factor: 4.033

Review 8.  Spectroscopic studies of protein folding: linear and nonlinear methods.

Authors:  Arnaldo L Serrano; Matthias M Waegele; Feng Gai
Journal:  Protein Sci       Date:  2011-12-28       Impact factor: 6.725

9.  Thermal-unfolding reaction of triosephosphate isomerase from Trypanosoma cruzi.

Authors:  Edgar Mixcoha-Hernández; Liliana M Moreno-Vargas; Arturo Rojo-Domínguez; Claudia G Benítez-Cardoza
Journal:  Protein J       Date:  2007-10       Impact factor: 2.371

10.  The C-terminal domain of the HIV-1 regulatory protein Vpr adopts an antiparallel dimeric structure in solution via its leucine-zipper-like domain.

Authors:  Sarah Bourbigot; Hervé Beltz; Jérôme Denis; Nelly Morellet; Bernard P Roques; Yves Mély; Serge Bouaziz
Journal:  Biochem J       Date:  2005-04-15       Impact factor: 3.857

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