Chinese Journal of Lasers, Volume. 44, Issue 1, 107002(2017)

Wavefront Modulation Improves Two-Photon Microscopy Resolution of Clearing Tissues

Gao Yufeng1、*, Xia Xianyuan2, Li Hui2, and Zheng Wei2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    References(28)

    [1] Zhu D, Larin K V, Luo Q et al. Recent progress in tissue optical clearing[J]. Laser and Photonics Reviews, 7, 732-757(2013).

    [2] Dodt H U, Leischner U, Schierloh A et al. Ultramicroscopy: three-dimensional visualization of neuronal networks in the whole mouse brain[J]. Nature Methods, 4, 331-336(2007).

    [3] Hama H, Kurokawa H, Kawano H et al. Scale: a chemical approach for fluorescence imaging and reconstruction of transparent mouse brain[J]. Nature Neuroscience, 14, 1481-1488(2011).

    [4] Ke M T, Fujimoto S, Imai T. SeeDB: a simple and morphology-preserving optical clearing agent for neuronal circuit reconstruction[J]. Nature Neuroscience, 16, 1154-1161(2013).

    [5] Kuwajima T, Sitko A A, Bhansali P et al. ClearT: a detergent- and solvent-free clearing method for neuronal and non-neuronal tissue[J]. Development, 140, 1364-1368(2013).

    [6] Susaki E A, Tainaka K, Perrin D et al. Whole-brain imaging with single-cell resolution using chemical cocktails and computational analysis[J]. Cell, 157, 726-739(2014).

    [7] Chung K, Wallace J, Kim S Y et al. Structural and molecular interrogation of intact biological systems[J]. Nature, 497, 332-337(2013).

    [8] Yang B, Treweek J B, Kulkarni R P et al. Single-cell phenotyping within transparent intact tissue through whole-body clearing[J]. Cell, 158, 945-958(2014).

    [9] Xu Xiangqun, Wu Liu. Dependence of optical clearing effect on tissue structure[J]. Chinese J Lasers, 33, 998-1002(2006).

    [10] Xu X, Sun C. Ultrasound enhanced skin optical clearing: microstructural changes[J]. Journal of Innovative Optical Health Sciences, 3, 189-194(2010).

    [11] Cen Jian, Zhu Dan, Luo Qingming et al. Monitoring osmotical agents induced the change in optical properties of mouse skin[J]. Acta Optica Sinica, 24, 873-876(2004).

    [12] Genina E A, Bashkatov A N, Tuchin V V. Optical clearing of cranial bone[J]. Advances in Optical Technologies, 2008, 267867(2008).

    [13] Tainaka K, Kubota S I, Suyama T Q et al. Whole-body imaging with single-cell resolution by tissue decolorization[J]. Cell, 159, 911-924(2014).

    [14] Helmchen F, Denk W. Deep tissue two-photon microscopy[J]. Nature Methods, 2, 932-940(2005).

    [15] Olson E, Levene M J, Torres R. Multiphoton microscopy with clearing for three dimensional histology of kidney biopsies[J]. Biomedical Optics Express, 7, 3089-3096(2016).

    [16] Costantini I, Ghobril J P. Di Giovanna A P, et al. A versatile clearing agent for multi-modal brain imaging[J]. Scientific Reports, 5, 9808(2015).

    [17] Hama H, Hioki H, Namiki K et al. ScaleS: an optical clearing palette for biological imaging[J]. Nature Neuroscience, 18, 1518-1529(2015).

    [18] Tao X D, Crest J, Kotadia S et al. Live imaging using adaptive optics with fluorescent protein guide-stars[J]. Optics Express, 20, 15969-15982(2012).

    [19] Wang K, Sun W, Richie C T et al. Direct wavefront sensing for high-resolution in vivo imaging in scattering tissue[J]. Nature Communications, 6, 7276(2015).

    [20] Yang Ping, Ao Mingwu, Liu Yuan et al. Adaptive optics genetic algorithm based on Zernike mode coefficients[J]. Chinese J Lasers, 35, 367-372(2008).

    [21] Debarre D, Botcherby E J, Watanabe T et al. Image-based adaptive optics for two-photon microscopy[J]. Optics Letters, 34, 2495-2497(2009).

    [22] Wang C, Liu R, Milkie D E et al. Multiplexed aberration measurement for deep tissue imaging in vivo[J]. Nature Methods, 11, 1037-1040(2014).

    [23] Park J H, Sun W, Cui M. High-resolution in vivo imaging of mouse brain through the intact skull[J]. Proceedings of the National Academy of Sciences, 112, 9236-9241(2015).

    [24] Matsumoto N, Inoue T, Matsumoto A et al. Correction of depth-induced spherical aberration for deep observation using two-photon excitation fluorescence microscopy with spatial light modulator[J]. Biomedical Optics Express, 6, 2575-2587(2015).

    [25] Salter P S, Baum M, Alexeev I et al. Exploring the depth range for three-dimensional laser machining with aberration correction[J]. Optics Express, 22, 17644-17656(2014).

    [26] Torok P, Varga P, Booker G R. Electromagnetic diffraction of light focused through a planar interface between materials of mismatched refractive indices: structure of the electromagnetic field. I[J]. Journal of the Optical Society of America A, 12, 2136-2144(1995).

    [27] Torok P, Varga P, Konkol A et al. Electromagnetic diffraction of light focused through a planar interface between materials of mismatched refractive indices: structure of the electromagnetic field. II[J]. Journal of the Optical Society of America A, 13, 2232-2238(1996).

    [28] Torok P, Varga P, Laczik Z et al. Electromagnetic diffraction of light focused through a planar interface between materials of mismatched refractive indices: an integral representation[J]. Journal of the Optical Society of America A, 12, 325-332(1995).

    CLP Journals

    [1] YAO Jing, WU Ting, YE Shiwei, GAO Yufeng, ZHENG Wei, QIN Shuijie. Off-axis Parabolic Mirror Afocal Scanning System Extends the Imaging Area of Two-photon Microscopy[J]. Acta Laser Biology Sinica, 2020, 29(3): 217

    Tools

    Get Citation

    Copy Citation Text

    Gao Yufeng, Xia Xianyuan, Li Hui, Zheng Wei. Wavefront Modulation Improves Two-Photon Microscopy Resolution of Clearing Tissues[J]. Chinese Journal of Lasers, 2017, 44(1): 107002

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: biomedical photonics and laser medicine

    Received: Aug. 22, 2016

    Accepted: --

    Published Online: Jan. 10, 2017

    The Author Email: Yufeng Gao (gaoyufenghit@126.com)

    DOI:10.3788/CJL201744.0107002

    Topics