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1.IntroductionIn recent developments in fluorescence microscopy, the diffraction barrier in the spatial resolution has been broken and the resolution has been reduced to . High-resolution imaging techniques have achieved nanoscale resolution by precise control of fluorescence emission with stimulated emission,1, 2 The combination of structured illumination and saturation of fluorescence molecules at the excited state,3, 4, 5 and statistic and stochastic location techniques with photoswitchable fluorescence molecules.6, 7, 8, 9 In this paper, we present an alternative method which may be more easily generalized to observe any type of fluorescence samples in current usage. In the saturated excitation (SAX) microscopy technique,10 the spatial resolution is improved in three dimensions using strong nonlinear fluorescence responses induced by saturation of fluorescence molecules at the excited state with high excitation intensity, which can be realized by adding laser-intensity modulators and a lock-in amplifier to a typical confocal fluorescence microscope. Because the saturation effect is inherent to any fluorescence molecule, SAX microscopy can realize high-resolution imaging in various applications using fluorescence probes. Here, we demonstrate the observation of biological samples using SAX microscopy and present fluorescence responses of dye molecules under saturated excitation, which show the capability of high-resolution imaging by SAX microscopy with dyes in current usage. 2.Principle of SAX MicroscopyIn SAX microscopy,10 improvement in spatial resolution is achieved by exploiting the nonlinearity in the fluorescence signals, which is induced when the target fluorescence molecule excited states become saturated due to the excited-state lifetime and the limited number of fluorescence molecules in the focal volume of the laser light. The saturation phenomena appear most prominently in the center of the laser spot, where the relationship between the excitation intensity and fluorescence signals shows strong nonlinearity. The spatial dependence of the nonlinear fluorescence responses can then be used for the improvement of spatial resolution to give theoretically unlimited improvement of the spatial resolution in three dimensions. To detect the nonlinear fluorescence signals induced by saturated excitation, we implemented the use of temporal modulation of the excitation intensity at a fundamental frequency and consequent demodulation of the fluorescence intensity at higher-order harmonic frequencies .10 As the excitation intensity is temporally modulated and saturated excitation occurs, the modulated fluorescence signals are distorted because of the nonlinear relation of the excitation and the fluorescence intensity. As a result, the distorted signal includes higher-order harmonic frequency components as well as the fundamental frequency . Thus, the harmonic demodulation of fluorescence signals allows us to extract the nonlinear fluorescence responses induced by saturated excitation at the center of the excitation point spread function (PSF) and gives fluorescence signals from a region smaller than the PSF to improve the spatial resolution in three dimensions. An optical system for SAX microscopy can be realized by adding laser intensity modulators and a lock-in amplifier to a typical confocal fluorescence microscope. 3.High-Resolution Fluorescence Images of Microtubules in HeLa CellsWe observed microtubles stained with ATTO488 in a fixed HeLa cell to confirm the improvement of spatial resolution in SAX microscopy. Figures 1a and 1b show the fluorescence images of the sample obtained by SAX microscopy and conventional confocal fluorescence microscopy, respectively. The intensity profiles spanning the dotted lines in these images are also shown. In the intensity profile in the image by SAX microscopy, several peaks, which were not observed in the image by conventional confocal microscopy, became clearly observable. In addition, compared to peaks in the intensity profiles, the width of peaks in SAX microscopy were times smaller than those in conventional confocal imaging. From these results, we confirmed the improvement of spatial resolution by SAX microscopy in fluorescence observation of biological samples. In the experiments, the fluorescence dye was excited with continuous-wave laser light at a wavelength of and an oil-immersion objective lens with a numerical aperture (NA) of 1.4. We modulated the excitation intensity at and demodulated the fluorescence intensity at the fundamental frequency and the second harmonic frequency . For (fundamental frequency) demodulation, we chose the excitation intensity as . This intensity is weak enough so as not to induce saturated excitation or harmonic distortion, giving the same spatial resolution that would be obtained by conventional confocal fluorescence microscopy. For SAX microscopy, the (second harmonic) demodulation frequency was used with an excitation intensity of , which provided saturated excitation at the center of the laser spot. The images were not averaged and were taken with a pixel dwell time of , at , resulting in the image acquisition time of . Figure 2 shows the SAX fluorescence imaging performance along the optical axis ( image) and intensity profiles of the microtubule-stained HeLa cell. Compared with the intensity profiles, more peaks became clearly observable in the result by SAX microscopy, while each peak also became times narrower than in the result of conventional confocal imaging. From this result, we confirmed that SAX microscopy can be used to improve the spatial resolution in the direction as well as lateral directions. In this experiment, the image size was and an image was recorded in . Other experimental conditions were same as that for Fig. 1. 4.Nonlinear Fluorescence Responses of DyesWe also note that SAX microscopy can be used with a wide range of dyes without regard to spectral limitations. This can be seen by the harmonic demodulation and successful extraction of nonlinear fluorescence signals from a range of fluorescent dyes (Fig. 3 ). We measured the demodulated fluorescence intensity from ATTO488, Rhodamine , and Rhodamine B solution with a concentration of and Alexa fluor 488 goat antimouse IgG solution. The fluorescence solution was excited with a water-immersion objective lens . We modulated the excitation intensity at a frequency of and demodulated the fluorescence signals at the fundamental frequency and also at the harmonic frequencies , , , and . In Fig. 3, the fluorescence intensity given at the th order harmonic frequency was proportional to the ’th power of the excitation intensity and shows that the third or even higher harmonics retain a close-to-ideal nonlinear dependence on the excitation intensity. It also shows that the harmonic signals are also saturated at high excitation intensities associated with increase of higher-frequency components. This confirmation of successful harmonic demodulation of fluorescence in a range of dyes is promising for the application of the technique to high-resolution fluorescence microscopy without specific limitations on the dye. 5.DiscussionIn this letter, we confirmed that SAX microscopy improves the 3-D spatial resolution beyond the diffraction limit in the condition of biological observation using a simpler optical system and imaging scheme compared with other techniques for high-resolution fluorescence microscopy. The improvement of the spatial resolution in SAX microscopy is achieved by exploiting higher-order nonlinear responses in fluorescence emission in the same manner as in multiphoton excitation fluorescence microscopy. However, the spatial resolution given by multiphoton excitation fluorescence microscopy is almost the same as that of single-photon excitation confocal fluorescence microscopy, because multiphoton excitation requires a longer wavelength to excite molecules with multiple low-energy photons. On the other hand, SAX microscopy uses higher-order nonlinearity without an increase of excitation wavelength, which substantially improves the spatial resolution of fluorescence microscopy beyond the diffraction limit. Although the requirement of strong excitation intensity gives rise to more photobleaching effects in SAX microscopy than in conventional fluorescence microscopy, this paper demonstrates that SAX microscopy is applicable to imaging of biological samples. To reduce the photobleaching effect, fluorescence excitation by temporally separated pulsed laser instead is effective, as shown in Ref. 11. In observations of living biological samples, the higher excitation intensity may exhibit not only photobleaching but also other undesirable effects, such as defunctionalization of proteins by a large temperature rise or reactive oxygen species induced via photobleaching of fluorescence molecules as used in chromophore-assisted laser inactivation of proteins,12, 13 both of which inhibit cellular functions and may make observations of various in vivo phenomena difficult. The ability of SAX microscopy to observe biological samples with no spectral limitation of the dye is a significant advance in high-resolution fluorescence microscopy, because the technique can be applied in a wide range of microscopic observations performed with fluorescence probes in current usage. Our technique is expected to make great contributions to the scientific investigations in biology and medicine if the obstacles described above are overcome and further improvement of the spatial resolution is achieved experimentally. AcknowledgmentThis study was supported by the Industrial Technology Research Grant Program in 2006 from the New Energy and Industrial Technology Development Organization (NEDO) in Japan. ReferencesS. W. Hell and
J. Wichmann,
“Breaking the diffraction resolution limit by stimulated emission:stimulated-emission-depletion fluorescence microscopy,”
Opt. Lett., 19 780
–782
(1994). https://doi.org/10.1038/372780a0 0146-9592 Google Scholar
V. Westphal,
S. O. Rizzoli,
M. A. Lauterbach,
D. Kamin,
R. Jahn, and
S. W. Hell,
“Video-rate far-field nanoscopy dissects synaptic vesicles movement,”
Science, 320 246
–249
(2008). 0036-8075 Google Scholar
M. G. Gustafsson,
“Nonlinear structured-illuminatio microscopy:wide-field fluorescence imaging with theoretically unlimited resolution,”
Proc. Natl. Acad. Sci. U.S.A., 102 13081
–13086
(2005). https://doi.org/10.1073/pnas.0406877102 0027-8424 Google Scholar
R. Heintzmann and
T. M. Jovin,
“Saturated patterned excitation microscopy—A concept for optical resolution improvement,”
J. Opt. Soc. Am. A, 19 1599
–1609
(2002). https://doi.org/10.1364/JOSAA.19.001599 0740-3232 Google Scholar
R. Heinzmann,
“Saturated patterned excitation microscopy with two-dimensional excitation patterns,”
Micron, 34 283
–291
(2003). https://doi.org/10.1016/S0968-4328(03)00053-2 0968-4328 Google Scholar
E. Betzig,
G. H. Patterson,
R. Sougrat,
O. W. Lindwasser,
S. Olenych,
J. S. Bonifacino,
M. W. Davidson,
J. Lippincott-Schwartz, and
H. F. Hess,
“Imaging intracellular fluorescent proteins at nanometer resolution,”
Science, 313 1642
–1645
(2006). https://doi.org/10.1126/science.1127344 0036-8075 Google Scholar
H. Shroff,
C. G. Galbraith,
J. A. Galbraith,
H. White,
J. Gillette,
S. Olenych,
M. W. Davidson, and
E. Betzig,
“Dual-color superresolution imaging of genetically expressed probes within individual adhesion complexes,”
Proc. Natl. Acad. Sci. U.S.A., 104 20308
–20313
(2008). 0027-8424 Google Scholar
M. J. Rust,
M. Bates, and
X. Zhauang,
“Sub-diffraction-limit imaging by stochastic optical reconstruction microscopy (STORM),”
Nat. Methods, 3 793
–796
(2006). 1548-7091 Google Scholar
B. Huang,
W. Wang,
M. Bates, and
X. Zhuang,
“Three-dimensional super-resolution imaging by stochastic optical reconstruction microscopy,”
Science, 319 810
–813
(2008). https://doi.org/10.1126/science.1153529 0036-8075 Google Scholar
K. Fujita,
M. Kobayashi,
S. Kawano,
M. Yamanaka, and
S. Kawata,
“High-resolution confocal microscopy by saturated excitation of fluorescence,”
Phys. Rev. Lett., 99 228105
(2007). https://doi.org/10.1103/PhysRevLett.99.228105 0031-9007 Google Scholar
G. Donnert,
C. Eggeling, and
S. W. Hell,
“Major signal increase in fluorescence microscopy through dark-state relaxation,”
Nat. Methods, 4 81
–86
(2007). 1548-7091 Google Scholar
D. G. Jay,
“Selective destruction of protein function by chromophore-assisted laser inactivation,”
Proc. Natl. Acad. Sci. U.S.A., 85 5454
–5458
(1988). 0027-8424 Google Scholar
T. Tanabe,
M. Oyamada,
K. Fujita,
P. Dai,
H. Tanaka, and
T. Takamatsu,
“Multiphoton excitation-evoked chromophore-assisted laser inactivation using green fluorescent protein,”
Nat. Methods, 2 503
–505
(2005). 1548-7091 Google Scholar
|