Skip to main content
Log in

Red-edge-excitation fluorescence spectroscopy of indole and tryptophan

  • Published:
European Biophysics Journal Aims and scope Submit manuscript

Abstract

Studies on the dependence of indole and tryptophan fluorescence emission spectra on excitation wavelength, λex, show that the emission shifts to longer wavelengths for red-edge excitation in different solid and viscous solvents. In solid systems the spectral shifts for excitation in the range from 290 to 310 nm can reach tens of nm, and they are more significant than changes of λex. In a viscous medium the magnitude of this effect is shown to be directly related to the dipole-reorientational relaxation of solvent molecules in the environment of the chromophore, which allows the relaxation times to be estimated. The method involves simple steady-state measurements of fluorescence spectra at the maximum and at the red edge of the absorption band. Since it is not necessary to obtain information on the fluorescence spectra of completely relaxed states, this method for the estimation of relaxation times may have advantages in studies of proteins compared with the conventional relaxation shift method, and may produce complementary information to that obtained by nanosecond time-resolved spectroscopy.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Azumi T, Itoh K, Shiraishi H (1976) Shift of emission band upon the excitation at the long wavelength absorption edge. 3. Temperature dependence of the shift and correlation with the time-dependent spectral shift. J Chem Phys:2550–2555

  • Bakhshiev NG (1972) Spectroscopy of intermolecular interactions. Nauka, Leningrad

    Google Scholar 

  • Bakhshiev NG, Mazurenko YT, Piterskaya IV (1966) Luminescence decay in different portions of the luminescence spectrum of molecules in viscous solutions. Opt Spektrosk (USSR) 21:550–554

    Google Scholar 

  • Beechem IM, Brand L (1985) Time-resolved fluorescence of proteins. Annu Rev Biochem 54:43–71

    Google Scholar 

  • Burstein EA (1976) Luminescence of protein chromophores (Model studies). Ser Biophysica, vol 6. VINITI, Moscow

    Google Scholar 

  • Burstein EA (1977) Intrinsic luminescence of proteins (Origin and applications). Ser Biophysica, vol 7. VINITI, Moscow

    Google Scholar 

  • Chang CT, Wu CY, Muirhead AR, Lombardi JR (1974) The dipole moment in the lowest single π*←π state of indole determined by the optical Stark effect. Photochem Photobiol 19:347–351

    Google Scholar 

  • Davidson DW, Cole RH (1951) Dielectric relaxation in glycerol, propylene glycol and n-propanol. J. Chem. Phys 19:1484–1490

    Google Scholar 

  • Demchenko AP (1981) Dependence of human serum albumin fluorescence spectrum on the excitation wavelength. Ukr Biokhim Zh 53:22–27

    Google Scholar 

  • Demchenko AP (1982) On the nanosecond mobility in proteins. Edge excitation fluorescence red shift of protein-bound 9-(p-toluidinylnaphthalene)-6-sulfonate. Biophys Chem 15: 101–109

    Google Scholar 

  • Demchenko AP (1984) Structural relaxation in protein molecules studied by fluorescence spectroscopy. J Mol Struct 114: 45–48

    Google Scholar 

  • Demchenko AP (1985) Fluorescence molecular relaxation studies of protein dynamics. The probe binding site of melittin is rigid on the nanosecond time scale. FEBS Lett 182:99–102

    Google Scholar 

  • Demchenko AP (1986) Ultraviolet spectroscopy of proteins. Springer, Berlin Heidelberg New York

    Google Scholar 

  • Demchenko AP, Shcherbatska NV (1985) Nanosecond dynamics of the charged fluorescent probes at the polar interface of membrane phospholipid bilayers. Biophys Chem 22: 131–143

    Google Scholar 

  • DeToma RP, Easter JH, Brand L (1976) Dynamic interactions of fluorescence probe with the solvent environment. J Am Chem Soc 98:5001–5007

    Google Scholar 

  • Eisinger J, Navon G (1969) Fluorescence quenching and isotope effect of tryptophan. J Chem Phys 50:2069–2077

    Google Scholar 

  • Galley WC, Purkey RM (1970) Role of heterogeneity of the solvation site in electronic spectra in solution. Proc Natl Acad Sci USA 67:1116–1121

    Google Scholar 

  • Grinvald A, Steinberg IZ (1974) Fast relaxation processes in a protein revealed by the decay kinetics of tryptophan fluorescence. Biochemistry 13:5170–5177

    Google Scholar 

  • Grinvald A, Steinberg IZ (1976) The fluorescence decay of tryptophan residues in native and denatured proteins. Biochim Biophys Acta 427:663–678

    Google Scholar 

  • Konev SV (1967) Fluorescence and phosphorescence of proteins and nucleic acids. Plenum Press, New York

    Google Scholar 

  • Lakowicz JR (1983) Principles of fluorescence spectroscopy. Plenum Press, New York London

    Google Scholar 

  • Lakowicz JR, Balter A (1982) Direct recording of the initially excited and the solvent relaxed fluorescence emission spectra of tryptophan by phase sensitive detection of fluorescence. Photochem Photobiol 36:125–132

    Google Scholar 

  • Lakowicz JR, Keating-Nakamoto S (1984) Red-edge excitation of fluorescence and dynamic properties of proteins and membranes. Biochemistry 23:3013–3021

    Google Scholar 

  • Lakowicz JR, Cherek H, Bevan DR (1980) Demonstration of nanosecond dipole relaxation in biopolymers by inversion of apparent fluorescence phase shift and demodulation lifetimes. J Biol Chem 225:4403–4406

    Google Scholar 

  • Lami H (1981) Dynamic evidence for a short-lived CTTS state of indoles on glycerol. Nuovo Cimento 63:241–253

    Google Scholar 

  • Longworth JW (1971) Luminescence of polypeptides and proteins. In: Steiner RF, Weinryb I (eds) Excited states of proteins and nucleic acids. Plenum Press, New York London, pp 319–487

    Google Scholar 

  • Lumry R, Hershberger M (1978) Status of indole photochemistry with special reference to biological application. Photochem Photobiol 27:819–840

    Google Scholar 

  • Macgregor RB, Weber C (1981) Fluorophores in polar media. Spectral effects of the Langevin distribution of electrostatic interactions. Ann NY Acad Sci 336:140–154

    Google Scholar 

  • Mazurenko YT, Bakhshiev NG (1970) The influence of orientational dipolar relaxation on spectral, temporal and polarizational properties of luminescence in solutions. Opt Spectrosk (USSR) 28:905–913

    Google Scholar 

  • McDuffie CE, Litovitz TA (1962) Dielectric relaxation in associated liquids. J Chem Phys 37:1699–1705

    Google Scholar 

  • Nemkovich NA, Matseyko VI, Tomin VI (1980) Intermolecular orientational “up-relaxation” in phthalamide derivatives' solutions excited by frequency-modulated dye laser. Opt Spectrosk (USSR) 49:274–282

    Google Scholar 

  • Pavlovich VS, Pikulik LG (1975) The studies of relaxations of intermolecular interactions in dipolar solutions of multiatomic molecules by luminescence method. Izv Acad Sci USSR, Ser Phys 39:2373–2377

    Google Scholar 

  • Pikulik LG, Gladchenko LF, Kostko MY (1967) Influence of temperature on the fluorescence of solutions of aromatic amino acids. J Appl Spectrosk (USSR) 6:210–215

    Google Scholar 

  • Rubinov AN, Tomin VI (1970) Bathochromic luminescence in low-temperature solutions of dyes. Opt Spectrosk (USSR) 29:1082–1089

    Google Scholar 

  • Rubinov AN, Tomin VI (1984) Inhomogeneous broadening of electronic spectra of organic molecules in solid and liquid solutions. Preprint N 348, Institute of Physics, Minsk, USSR

    Google Scholar 

  • Sun M, Song PS (1977) Solvent effects on the fluorescent states of indole derivatives — dipole moments. Photochem Photobiol 25:3–9

    Google Scholar 

  • Valeur B, Weber G (1977) Resolution of the fluorescence excitation spectrum of indole into the 1 L a and 1 L b excitation bands. Photochem Photobiol 25:441–444

    Google Scholar 

  • Veselova TV, Limareva LA, Cherkassov AS, Shirokov VI (1965) Fluorometric study of the effect of solvent on the fluorescence spectrum of 3-amino-N-methyl-phthalimide. Opt Spectrosk (USSR) 19:39–43

    Google Scholar 

  • Zyma VL, Dragan AI, Bogach PG (1978) Fluorescence and thermal perturbation difference spectra of tryptophan in hydrophobic environment. Dopov Akad Nauk UkrRSR, Ser B 11:1018–1022

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Demchenko, A.P., Ladokhin, A.S. Red-edge-excitation fluorescence spectroscopy of indole and tryptophan. Eur Biophys J 15, 369–379 (1988). https://doi.org/10.1007/BF00254724

Download citation

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00254724

Key words

Navigation