Confocal microscopy on the beamline: novel three-dimensional imaging and sample positioning

被引:10
|
作者
Khan, I. [1 ]
Gillilan, R. [1 ]
Kriksunov, I. [1 ]
Williams, R. [2 ]
Zipfel, W. R. [2 ]
Englich, U. [1 ]
机构
[1] Cornell Univ, MacCHESS Macromol Diffract Facil CHESS, Ithaca, NY 14853 USA
[2] Cornell Univ, Dept Biomed Engn, Ithaca, NY 14853 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
synchrotron radiation; X-rays; confocal microscopy; fluorescence mode; reflection mode; crystal centering; visualization; radiation damage; X-RAY ANALYSIS; PROTEIN CRYSTALS; FLUORESCENCE; CRYSTALLIZATION; VISUALIZATION; LOOPS;
D O I
10.1107/S002188981203470X
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Confocal microscopy, a technique that has been extensively applied in cellular biological studies, may also be applied to the visualization and three-dimensional imaging of protein crystals at high resolution on synchrotron beamlines. Protein crystal samples are examined using a commercially available confocal microscope adapted for cryogenic use. A preliminary test using a custom confocal design adapted for beamline use is also presented. The confocal optics configuration is compatible with nonlinear imaging techniques such as two-photon excited fluorescence imaging and second harmonic generation. The possibilities of this method are explored using two modes: fluorescence and reflection confocal. In fluorescence mode, small amounts of dye are introduced into the crystal through soaking or growth conditions. Under such conditions, protein crystals are easily resolved from salts and amorphous precipitates, which do not generally take up dye. Reflection mode, which does not require dye, still exhibits greater resolution and sensitivity to surface detail than conventional wide-field microscopy as a result of the confocal optics configuration. The inherent three-dimensional nature of the method means that on-axis sample views (along the direction of the X-ray beam) can be reconstructed from an off-axis configuration, simplifying the beamline setup and providing uniquely detailed views of cryogenically cooled crystals.
引用
收藏
页码:936 / 943
页数:8
相关论文
共 50 条
  • [11] Three-dimensional confocal microscopy of colloids
    Dinsmore, A.D. (dinsmore@deas.Harvard.edu), 2001, Optical Society of America (OSA) (40):
  • [12] Three-dimensional Fluorescence Lifetime Imaging in Confocal Microscopy of Living Cells
    Baiazitova, Larisa
    Cmiel, Vratislav
    Skopalik, Josef
    Svoboda, Ondrej
    Provaznik, Ivo
    2017 25TH EUROPEAN SIGNAL PROCESSING CONFERENCE (EUSIPCO), 2017, : 439 - 443
  • [13] Three-dimensional imaging of orientational order by fluorescence confocal polarizing microscopy
    Smalyukh, II
    Shiyanovskii, SV
    Lavrentovich, OD
    CHEMICAL PHYSICS LETTERS, 2001, 336 (1-2) : 88 - 96
  • [14] Three-dimensional imaging of carbon nanostructures by scanning confocal electron microscopy
    Hashimoto, Ayako
    Shimojo, Masayuki
    Mitsuishi, Kazutaka
    Takeguchi, Masaki
    JOURNAL OF APPLIED PHYSICS, 2009, 106 (08)
  • [15] Improvement of three-dimensional resolution in confocal microscopy
    MartinezCorral, M
    Andres, P
    Silvestre, E
    Barreiro, JC
    SECOND IBEROAMERICAN MEETING ON OPTICS, 1996, 2730 : 634 - 638
  • [17] Three-dimensional digital confocal raman microscopy
    Govil, Anurag
    Pallister, David M.
    Morris, Michael D.
    Applied Spectroscopy, 1993, 47 (01)
  • [18] Three-dimensional imaging of porous media using confocal laser scanning microscopy
    Shah, S. M.
    Crawshaw, J. P.
    Boek, E. S.
    JOURNAL OF MICROSCOPY, 2017, 265 (02) : 261 - 271
  • [19] Comparative three-dimensional imaging of living neurons with confocal and atomic force microscopy
    McNally, HA
    Rajwa, B
    Sturgis, J
    Robinson, JP
    JOURNAL OF NEUROSCIENCE METHODS, 2005, 142 (02) : 177 - 184
  • [20] Three-dimensional skin imaging using the combination of reflected confocal and multiphoton microscopy
    Lin, Ming-Gu
    Chen, Wei-Liang
    Lo, Wen
    Tan, Hsin-Yuan
    Tsai, Tsung-Hua
    Jee, Shiou-Hwa
    Lin, Sung-Jan
    Dong, Chen-Yuan
    PHOTONIC THERAPEUTICS AND DIAGNOSTICS III, 2007, 6424