• Laser & Optoelectronics Progress
  • Vol. 60, Issue 8, 0811016 (2023)
Yunze Lei1、†, Peng Gao1、†,**, Xing Liu1, Jiaoyue Li1, Xiaofei Chen1, Juanjuan Zheng1, Sha An1、*, Dan Dan2, and Baoli Yao2
Author Affiliations
  • 1School of Physics, Xidian University, Xi'an 710071, Shaanxi, China
  • 2State Key Laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an 710119, Shaanxi, China
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    DOI: 10.3788/LOP230456 Cite this Article Set citation alerts
    Yunze Lei, Peng Gao, Xing Liu, Jiaoyue Li, Xiaofei Chen, Juanjuan Zheng, Sha An, Dan Dan, Baoli Yao. 3D Optical Sectioning Microscopy with Sparse Structured Illumination[J]. Laser & Optoelectronics Progress, 2023, 60(8): 0811016 Copy Citation Text show less
    References

    [1] Chen B C, Legant W R, Wang K et al. Lattice light-sheet microscopy: imaging molecules to embryos at high spatiotemporal resolution[J]. Science, 346, 1257998(2014).

    [2] Mortensen K I, Churchman L S, Spudich J A et al. Optimized localization analysis for single-molecule tracking and super-resolution microscopy[J]. Nature Methods, 7, 377-381(2010).

    [3] Holden S J, Uphoff S, Kapanidis A N. DAOSTORM: an algorithm for high- density super-resolution microscopy[J]. Nature Methods, 8, 279-280(2011).

    [4] Chi K R. Super-resolution microscopy: breaking the limits[J]. Nature Methods, 6, 15-18(2009).

    [5] Zanacchi F C, Lavagnino Z, Donnorso M P et al. Live-cell 3D super-resolution imaging in thick biological samples[J]. Nature Methods, 8, 1047-1049(2011).

    [6] Rowlands C J, Yew E Y S, So P T C. Parallel super-resolution imaging[J]. Nature Methods, 10, 709-710(2013).

    [7] Pastrana E. Fast 3D super-resolution fluorescence microscopy[J]. Nature Methods, 8, 46(2011).

    [8] Jungmann R, Avendaño M S, Woehrstein J B et al. Multiplexed 3D cellular super-resolution imaging with DNA-PAINT and Exchange-PAINT[J]. Nature Methods, 11, 313-318(2014).

    [9] Liu C, Chen J B, Zhang Y C et al. Five-wavelength optical-resolution photoacoustic microscopy of blood and lymphatic vessels[J]. Advanced Photonics, 3, 016002(2021).

    [10] Lu L P, Li J, Shu Y F et al. Hybrid brightfield and darkfield transport of intensity approach for high-throughput quantitative phase microscopy[J]. Advanced Photonics, 4, 056002(2022).

    [11] Wang W S, Li C K, Zhan Z Y et al. Dual-modulation difference stimulated emission depletion microscopy to suppress the background signal[J]. Advanced Photonics, 4, 046001(2022).

    [12] Deng W, Simone J B, Gage F H. New neurons and new memories: how does adult hippocampal neurogenesis affect learning and memory?[J]. Nature Reviews Neuroscience, 11, 339-350(2010).

    [13] Lian H, Yang L, Cole A et al. NFκB-activated astroglial release of complement C3 compromises neuronal morphology and function associated with Alzheimer’s disease[J]. Neuron, 85, 101-115(2015).

    [14] Qiao W, Jin R, Luo T P et al. Single-scan HiLo with line-illumination strategy for optical section imaging of thick tissues[J]. Biomedical Optics Express, 12, 2373-2383(2021).

    [15] Zhong Q Y, Jiang C Y, Zhang D J et al. High-throughput optical sectioning via line-scanning imaging with digital structured modulation[J]. Optics Letters, 46, 504-507(2021).

    [16] Mertz J, Kim J. Scanning light-sheet microscopy in the whole mouse brain with HiLo background rejection[J]. Journal of Biomedical Optics, 15, 016027(2010).

    [17] Neil M A, Juskaitis R, Wilson T. Method of obtaining optical sectioning by using structured light in a conventional microscope[J]. Optics Letters, 22, 1905-1907(1997).

    [18] Wu Y C, FasterShroff H.. sharper, and deeper: structured illumination microscopy for biological imaging[J]. Nature Methods, 15, 1011-1019(2018).

    [19] Keller P J, Schmidt A D, Santella A et al. Fast, high-contrast imaging of animal development with scanned light sheet-based structured-illumination microscopy[J]. Nature Methods, 7, 637-642(2010).

    [20] Nixon-Abell J, Obara C J, Weigel A V et al. Increased spatiotemporal resolution reveals highly dynamic dense tubular matrices in the peripheral ER[J]. Science, 354, aaf3928(2016).

    [21] Dan D, Lei M, Yao B L et al. DMD-based LED-illumination super-resolution and optical sectioning microscopy[J]. Scientific Reports, 3, 1-7(2013).

    [22] Qian J, Lei M, Dan D et al. Full-color structured illumination optical sectioning microscopy[J]. Scientific Reports, 5, 1-10(2015).

    [23] Tu S J, Liu Q L, Liu X et al. A fast reconstruction algorithm for structured illumination microscopy[J]. Optics Letters, 45, 1567-1570(2020).

    [24] Huang X S, Fan J C, Li L J et al. Fast, long-term, super-resolution imaging with Hessian structured illumination microscopy[J]. Nature Biotechnology, 36, 451-459(2018).

    [25] Gu L S, Li Y, Zhang S W et al. Molecular resolution imaging by repetitive optical selective exposure[J]. Nature Methods, 16, 1114-1118(2019).

    [26] Chen J L, Xu Y, Lü X H et al. Super-resolution differential interference contrast microscopy by structured illumination[J]. Optics Express, 21, 112-121(2013).

    [27] Gao P, Pedrini G, Osten W. Structured illumination for resolution enhancement and autofocusing in digital holographic microscopy[J]. Optics Letters, 38, 1328-1330(2013).

    [28] Gao P, Yuan C J. Resolution enhancement of digital holographic microscopy via synthetic aperture: a review[J]. Light: Advanced Manufacturing, 3, 105(2022).

    [29] Wang Z J, Zhao T Y, Hao H W et al. High-speed image reconstruction for optically sectioned, super-resolution structured illumination microscopy[J]. Advanced Photonics, 4, 026003(2022).

    [30] Liu G X, Xu N, Yang H D et al. Miniaturized structured illumination microscope with diffractive optics[J]. Photonics Research, 10, 1317-1324(2022).

    [31] Mandula O, Kielhorn M, Wicker K et al. Line scan: structured illumination microscopy super-resolution imaging in thick fluorescent samples[J]. Optics Express, 20, 24167-24174(2012).

    [32] Heintzmann R, Benedetti P A. High-resolution image reconstruction in fluorescence microscopy with patterned excitation[J]. Applied Optics, 45, 5037-5045(2006).

    [33] Wang L, Zheng X M, Zhou J et al. Improvement in the resolution of multiphoton scanning structured illumination microscopy via harmonics[J]. Engineering, 16, 65-72(2022).

    [34] Lu J, Min W, Conchello J A et al. Super-resolution laser scanning microscopy through spatiotemporal modulation[J]. Nano Letters, 9, 3883-3889(2009).

    [35] Urban B E, Xiao L, Chen S Y et al. In vivo superresolution imaging of the neuronal structure in the mouse brain[J]. IEEE Transactions on Bio-Medical Engineering, 65, 232-238(2018).

    [36] Yeh C H, Tan C Z, Cheng C H A et al. Improving the resolution of second -harmonic generation microscopy via scanning structured illumination[J]. Biomedical Optics Express, 9, 6081-6090(2018).

    [37] When K, Fang X, Ma Y et al. Large-field structured illumination microscopy based on 2D grating and a spatial light modulator[J]. Optics Letters, 47, 2666-2669(2022).

    Yunze Lei, Peng Gao, Xing Liu, Jiaoyue Li, Xiaofei Chen, Juanjuan Zheng, Sha An, Dan Dan, Baoli Yao. 3D Optical Sectioning Microscopy with Sparse Structured Illumination[J]. Laser & Optoelectronics Progress, 2023, 60(8): 0811016
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