Time-resolved fluorescence of hemoglobin species.
暂无分享,去创建一个
[1] R. Paolesse,et al. Molecular orientation and structure of the transition moments of porphyrin derivatives with various symmetries , 1994 .
[2] C. Fronticelli,et al. Effect of disordered hemes on energy transfer rates between tryptophans and heme in myoglobin. , 1993, Biophysical journal.
[3] Z. Gryczynski,et al. A new front-face optical cell for measuring weak fluorescent emissions with time resolution in the picosecond time scale. , 1993, Biophysical chemistry.
[4] Z. Gryczynski,et al. LINEAR DICHROISM STUDY OF METALLOPORPHYRIN TRANSITION MOMENTS IN VIEW OF RADIATIONLESS INTERACTIONS WITH TRYPTOPHAN IN HEMOPROTEINS , 1993, Photochemistry and photobiology.
[5] Z. Gryczynski,et al. Rates of energy transfer between tryptophans and hemes in hemoglobin, assuming that the heme is a planar oscillator. , 1992, Biophysical journal.
[6] B. Nordén,et al. Excited-state properties of the indole chromophore: electronic transition moment directions from linear dichroism measurements: effect of methyl and methoxy substituents , 1992 .
[7] G. Fleming,et al. Subpicosecond Fluorescence Depolarization Studies of Tryptophan and Tryptophanyl Residues of Proteins , 1992 .
[8] E. Gratton,et al. Subunit interactions in hemoglobin probed by fluorescence and high-pressure techniques. , 1990, Biochemistry.
[9] B Alpert,et al. Fluorescence decay kinetics of the tryptophyl residues of myoglobin: effect of heme ligation and evidence for discrete lifetime components. , 1990, Biochemistry.
[10] D. Krajcarski,et al. THE USE OF STOKES RAMAN SCATTERING IN TIME CORRELATED SINGLE PHOTON COUNTING: APPLICATION TO THE FLUORESCENCE LIFETIME OF TYROSINATE * , 1990, Photochemistry and photobiology.
[11] Graham R. Fleming,et al. Subpicosecond fluorescence anisotropy studies of tryptophan in water , 1990 .
[12] Erik W. Thulstrup,et al. NEAR-ULTRAVIOLET ELECTRONIC-TRANSITIONS OF THE TRYPTOPHAN CHROMOPHORE - LINEAR DICHROISM, FLUORESCENCE ANISOTROPY, AND MAGNETIC CIRCULAR-DICHROISM SPECTRA OF SOME INDOLE-DERIVATIVES , 1989 .
[13] E. Gratton,et al. Multiple conformational states in myoglobin revealed by frequency domain fluorometry. , 1989, Biochemistry.
[14] J. Lakowicz,et al. Analysis of fluorescence decay kinetics measured in the frequency domain using distributions of decay times. , 1987, Biophysical chemistry.
[15] R. Hochstrasser,et al. Fluorescence and energy transfer of tryptophans in Aplysia myoglobin. , 1987, Biophysical journal.
[16] Aleksandr Petrovich Demchenko,et al. Ultraviolet Spectroscopy of Proteins , 1986, 1987.
[17] M. Wilson,et al. Characterization of haem disorder by circular dichroism. , 1986, The Biochemical journal.
[18] R. Nagel,et al. Intrinsic fluorometric determination of the stable state of aggregation in hemoglobins. , 1985, Analytical biochemistry.
[19] J M Beechem,et al. Time-resolved fluorescence of proteins. , 1985, Annual review of biochemistry.
[20] R. Krishnamoorthi,et al. Proton NMR investigation of the rate and mechanism of heme rotation in sperm whale myoglobin: evidence for intramolecular reorientation about a heme two-fold axis , 1984 .
[21] R. Nagel,et al. The detection of hemoglobin dimers by intrinsic fluorescence. , 1983, Biochemical and biophysical research communications.
[22] J. Kowalczyck,et al. Dimensions in solution of pyridoxylated apohemoglobin. , 1983, Biochemistry.
[23] D. W. Parish,et al. Heme orientational disorder in reconstituted and native sperm whale myoglobin. Proton nuclear magnetic resonance characterizations by heme methyl deuterium labeling in the Met-cyano protein. , 1983, Journal of molecular biology.
[24] A. Szabo,et al. Modern quantum chemistry , 1982 .
[25] G. Weber,et al. Absolute measurements of fluorescence polarization at high pressures , 1981 .