The analysis of fluorophore orientation by multiphoton fluorescence microscopy

被引:1
作者
Leeder, Jamie M. [1 ]
Andrews, David L. [1 ]
机构
[1] Univ E Anglia, Sch Chem, Norwich NR4 7TJ, Norfolk, England
来源
MULTIPHOTON MICROSCOPY IN THE BIOMEDICAL SCIENCES X | 2010年 / 7569卷
关键词
Two-photon; three-photon; multiphoton; fluorescence; microscopy; chromophore; fluorophore; optical polarization; ROTATIONAL AVERAGES; 2-PHOTON; EXCITATION; CELLS;
D O I
10.1117/12.841695
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The accessibility of tunable, ultrafast laser sources has spurred the development and wide application of specialized microscopy techniques based on chromophore fluorescence following two- and three-photon absorption. The attendant advantages of such methods, which have led to a host of important applications including three-dimensional biological imaging, include some features that have as yet received relatively little attention. In the investigation of cellular or subcellular processes, it is possible to discern not only on the location, concentration, and lifetime of molecular species, but also the orientations of key fluorophores. Detailed information can be secured on the degree of orientational order in specific cellular domains, or the lifetimes associated with the rotational motions of individual fluorophores; both are accessible from polarization-resolved measurements. This paper reports the equations that are required for any such investigation, determined by robust quantum electrodynamical derivation. The general analysis, addressing a system of chromophores oriented in three dimensions, determines the fluorescence signal produced by the nonlinear polarizations that are induced by multiphoton absorption, allowing for any rotational relaxation. The results indicate that multiphoton imaging can be further developed as a diagnostic tool, either to selectively discriminate micro-domains in vivo, or to monitor dynamical changes in intracellular fluorophore orientation.
引用
收藏
页数:9
相关论文
共 50 条
[21]   Note: Dynamic point spread function for single and multiphoton fluorescence microscopy [J].
Mondal, Partha Pratim ;
Mandal, Subhra ;
Diaspro, Alberto .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2010, 81 (04)
[22]   Fluorescence resonance energy transfer determinations using multiphoton fluorescence lifetime imaging microscopy to characterize amyloid-beta plaques [J].
Bacskai, BJ ;
Skoch, J ;
Hickey, GA ;
Allen, R ;
Hyman, BT .
JOURNAL OF BIOMEDICAL OPTICS, 2003, 8 (03) :368-375
[23]   Global Analysis in Fluorescence Correlation Spectroscopy and Fluorescence Lifetime Microscopy [J].
Anthony, Neil ;
Berland, Keith .
FLUORESCENCE FLUCTUATION SPECTROSCOPY (FFS), PT A, 2013, 518 :145-173
[24]   Optimizing ultrafast illumination for multiphoton-excited fluorescence imaging [J].
Stoltzfus, Caleb R. ;
Rebane, Aleksander .
BIOMEDICAL OPTICS EXPRESS, 2016, 7 (05) :1768-1782
[25]   Near Infrared-II Excited Multiphoton Fluorescence Imaging [J].
Wang Shaowei ;
Lei Ming .
LASER & OPTOELECTRONICS PROGRESS, 2022, 59 (06)
[26]   Fluorescence and Raman microscopy analysis of dental tissues [J].
Mukhin, M ;
Sklyarov, A ;
Dhuru, VB ;
Yakovlev, VV .
LASERS IN DENTISTRY XI, 2005, 5687 :9-15
[27]   Ophthalmic imaging using multiphoton microscopy [J].
Teng, SW ;
Peng, JL ;
Lin, HH ;
Wu, HY ;
Lo, W ;
Sun, Y ;
Lin, WC ;
Lin, SJ ;
Jee, SH ;
Tan, HY ;
Dong, CY .
OPHTHALMIC TECHNOLOGIES XV, 2005, 5688 :53-58
[28]   Highly-selective optical filter for NADH fluorescence detection in multiphoton microscopy [J].
Freitas, R. B. ;
Rodrigues, M. J. L. F. ;
Pimenta, S. ;
Belsley, M. ;
Correia, J. H. ;
Maciel, M. J. .
BIOMEDICAL OPTICS EXPRESS, 2024, 15 (05) :3317-3328
[29]   Adaptive optics in multiphoton microscopy: comparison of two, three and four photon fluorescence [J].
Sinefeld, David ;
Paudel, Hari P. ;
Ouzounov, Dimitre G. ;
Bifano, Thomas G. ;
Xu, Chris .
OPTICS EXPRESS, 2015, 23 (24) :31472-31483
[30]   Diamond Raman laser and Yb fiber amplifier for in vivo multiphoton fluorescence microscopy [J].
ENGELMANN, S. H. A. U. N. A. ;
ZHOU, A. N. N. I. E. ;
HASSAN, A. H. M. E. D. M. ;
WILLIAMSON, M. I. C. H. A. E. L. R. ;
JARRETT, J. E. R. E. M. Y. W. ;
PERILLO, E. V. A. N. P. ;
TOMAR, A. L. A. N. K. R. I. T. ;
SPENCE, D. A. V. I. D. J. ;
JONES, T. H. E. R. E. S. A. A. ;
DUNN, A. N. D. R. E. W. K. .
BIOMEDICAL OPTICS EXPRESS, 2022, 13 (04) :1888-1898