Three-photon-induced fluorescence of diphenylhexatriene in solvents and lipid bilayers
Tóm tắt
We observed the emission of l,6-diphenyl-l,3,5-hexatriene (DPH) when excited with the fundamental output of a fs Ti:sapphire laser at 860 nm. The emission spectra of DPH were identical to that observed for one-photon excitation at 287 nm. The dependence of the DPH emission intensity on laser power was cubic, indicating three-photon excitation of DPH at 860 nm. At a shorter wavelength of 810 nm, the dependence on laser power was quadratic, indicating a two-photon process. At an intermediate wavelength of 830 nm the mode of excitation was a mixture of two- and three-photon excitation. At 830 nm the anisotropy is no longer a molecular parameter, and the mode of excitation and anisotropy of DPH depends on laser power. Frequency-domain anisotropy decays of DPH in triacetin revealed the same rotational correlation times for two- and three-photon excitation. However, the time 0 anisotropy of DPH was larger for three-photon excitation than for two-photon excitation. Steady-state anisotropy data for DPH-labeled membranes revealed the same transition temperature for one- and three-photon excitation. These anisotropy data indicate that membrane heating was not significant with three-photon excitation and that three-photon excitation may thus be of practical usefulness in fluorescence spectroscopy and microscopy of membranes.
Tài liệu tham khảo
J. R. Lakowicz, I. Gryczynski, J. Kuśba, and E. Danielsen (1992)J. Fluoresc. 2(4), 247–258.
J. R. Lakowicz, I. Gryczynski and E. Danielsen (1992)Chem. Phys. Lett. 191(1,2), 47–53.
J. R. Lakowicz and I. Gryczynski (1992)J. Fluoresc. 2, 117–122.
I. Gryczynski and J. R. Lakowicz (1994)J. Fluoresc. 4, 331–336.
J. R. Lakowicz, B. Kierdaszuk, P. R. Callis, H. Malak and I. Gryczynski (1995)Biophys. Chem. 56, 263–271.
J. R. Lakowicz and I. Gryczynski (1993)Biophys. Chem. 45, 1–6.
C. Wan and C. K. Johnson (1994)Chem. Phys. 179, 513–531.
C. Wan and C. J. Johnson (1994)J. Chem. Phys. 101, 10283–10291.
S.-Y. Chen and B. W. Van Der Meer (1993)Biophys. J. 64, 1567–1575.
P. R. Callis (1993)J. Chem. Phys. 99(1), 27–37.
W. Denk, J. H. Strickler and W. W. Webb (1990)Science 248, 73–76.
W. Denk (1994)Proc. Natl. Acad. Sci. 91, 6629–6633.
W. Denk, K. R. Delaney, A. Gelperin, D. Kleinfeld, B. W. Strowbridge, D. W. Tank, and R. Yuste (1994)J. Neurosci. Meth. 54, 151–152.
Y. Liu, G. J. Sonek, M. W. Berns, K. Konig, and B. J. Tromberg (1995)Opt. Lett. 20, 2246–2248.
K. Loenig, T. Krasieva, Y. Liu, M. W. Berns, and B. J. Tromberg (1996)SPIE Proc., San Jose, Vol. 2678.
I. Gryczynski, H. Malak, and J. R. Lakowicz (1995)Chem. Phys. Lett. 245, 30–35.
I. Gryczynski, H. Szmacinski, and J. R. Lakowicz (1995)Photochem. Photobiol. 62, 804–808.
H. Szmacinski, I. Gryczynski, and J. R. Lakowicz (1996)Biophys. J. 70, 547–555.
I. Gryczynski, H. Malak, and J. R. Lakowicz (1996)Biospectroscopy 2, 9–15.
A. Kawski, I. Gryczynski, and Z. Gryczynski (1993)Z. Naturforsch. 48a, 551–556.
J. R. Lakowicz, I. Gryczynski, Z. Gryczynski, E. Danielsen, and M. J. Wirth (1992)J. Phys. Chem. 98, 3000–3006.
J. R. Lakowicz and B. P. Maliwal (1985)Biophys. Chem. 21, 61–78.
G. Laczko, J. R. Lakowicz, I. Gryczynski, Z. Gryczynski, and H. Malak (1990)Rev. Sci. Instrum. 61, 2331–2337.
J. R. Lakowicz, H. Cherek, J. Kusba, I. Gryczynski, and M. L. Johnson (1993)J. Fluoresc. 3, 103–116.
H. L.-B. Fang, R. J. Trash, and G. E. Leroi (1978)Chem. Phys. Lett. 57 (1), 59–63.
M. Straume, S. G. Frasier-Cadoret, and M. L. Johnson (1991) in J. R. Lakowicz (Ed.), Plenum Press, New York, pp. 177–240.
