Fluorescence radial fluctuation enables two-photon super-resolution microscopy

被引:3
|
作者
Tsutsumi, Motosuke [1 ,2 ]
Takahashi, Taiga [1 ,2 ]
Kobayashi, Kentaro [3 ]
Nemoto, Tomomi [1 ,2 ,3 ]
机构
[1] Natl Inst Nat Sci, Exploratory Res Ctr Life & Living Syst, Biophoton Res Grp, Okazaki, Japan
[2] Natl Inst Nat Sci, Natl Inst Physiol Sci, Res Div Biophoton, Okazaki, Japan
[3] Hokkaido Univ, Res Inst Elect Sci, Nikon Imaging Ctr, Sapporo, Japan
关键词
two-photon microscopy; super-resolution; SRRF; in vivo imaging; spine morphology; LONG-TERM; RESOLUTION;
D O I
10.3389/fncel.2023.1243633
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Despite recent improvements in microscopy, it is still difficult to apply super-resolution microscopy for deep imaging due to the deterioration of light convergence properties in thick specimens. As a strategy to avoid such optical limitations for deep super-resolution imaging, we focused on super-resolution radial fluctuation (SRRF), a super-resolution technique based on image analysis. In this study, we applied SRRF to two-photon microscopy (2P-SRRF) and characterized its spatial resolution, suitability for deep observation, and morphological reproducibility in real brain tissue. By the comparison with structured illumination microscopy (SIM), it was confirmed that 2P-SRRF exhibited two-point resolution and morphological reproducibility comparable to that of SIM. The improvement in spatial resolution was also demonstrated at depths of more than several hundred micrometers in a brain-mimetic environment. After optimizing SRRF processing parameters, we successfully demonstrated in vivo high-resolution imaging of the fifth layer of the cerebral cortex using 2P-SRRF. This is the first report on the application of SRRF to in vivo two-photon imaging. This method can be easily applied to existing two-photon microscopes and can expand the visualization range of super-resolution imaging studies.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Imaging on the Nanoscale: Super-Resolution Fluorescence Microscopy
    Hirvonen, Liisa M.
    Smith, Trevor A.
    AUSTRALIAN JOURNAL OF CHEMISTRY, 2011, 64 (01) : 41 - 45
  • [32] MEMS Kinematics by Super-Resolution Fluorescence Microscopy
    McGray, Craig D.
    Stavis, Samuel M.
    Giltinan, Joshua
    Eastman, Eric
    Firebaugh, Samara
    Piepmeier, Jenelle
    Geist, Jon
    Gaitan, Michael
    JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2013, 22 (01) : 115 - 123
  • [33] Challenges and Opportunities in Super-Resolution Fluorescence Microscopy
    Guha, Aparajeeta
    Ganguly, Rajiv
    2017 4TH INTERNATIONAL CONFERENCE ON OPTO-ELECTRONICS AND APPLIED OPTICS (OPTRONIX), 2017,
  • [34] Putting super-resolution fluorescence microscopy to work
    Jennifer Lippincott-Schwartz
    Suliana Manley
    Nature Methods, 2009, 6 (1) : 21 - 23
  • [35] Methods - Progress in super-resolution fluorescence microscopy
    不详
    METHODS, 2020, 174 : 1 - 2
  • [36] Review of Super-Resolution Fluorescence Microscopy for Biology
    Leung, Bonnie O.
    Chou, Keng C.
    APPLIED SPECTROSCOPY, 2011, 65 (09) : 967 - 980
  • [37] Super-resolution Fluorescence Quenching Microscopy of Graphene
    Stoehr, Rainer J.
    Kolesov, Roman
    Xia, Kangwei
    Reuter, Rolf
    Meijer, Jan
    Logvenov, Gennady
    Wrachtrup, Joerg
    ACS NANO, 2012, 6 (10) : 9175 - 9181
  • [38] Nanoparticle Probes for Super-Resolution Fluorescence Microscopy
    Lin, Youhui
    Nienhaus, Karin
    Nienhaus, Gerd Ulrich
    CHEMNANOMAT, 2018, 4 (03): : 253 - 264
  • [39] Two-photon fluorescence microscopy: High resolution imaging in scattering tissue
    Denk, W
    EUROPEAN JOURNAL OF NEUROSCIENCE, 1998, 10 : 267 - 267
  • [40] Research Progress of Super-Resolution Fluorescence Microscopy
    Wei Aoni
    Qin Chengbing
    Dong Shuai
    Meng Xinqin
    Song Yunrui
    Li Xiangdong
    Liang Xilong
    Zhang Guofeng
    Chen Ruiyun
    Hu Jianyong
    Yang Zhichun
    Huo Jianzhong
    Xiao Liantuan
    Jia Suotang
    LASER & OPTOELECTRONICS PROGRESS, 2023, 60 (11)