Chinese Journal of Lasers, Volume. 50, Issue 15, 1507302(2023)
Cell Manipulation and Neuron Regulation Based on Tapered Optical Fiber Tweezers
[1] Ashkin A. Acceleration and trapping of particles by radiation pressure[J]. Physical Review Letters, 24, 156-159(1970).
[2] Ashkin A, Dziedzic J M, Bjorkholm J E et al. Observation of a single-beam gradient force optical trap for dielectric particles[J]. Optics Letters, 11, 288-290(1986).
[3] Ashkin A, Dziedzic J M. Optical trapping and manipulation of viruses and bacteria[J]. Science, 235, 1517-1520(1987).
[4] Xin H B, Li Y C, Liu Y C et al. Optical forces: from fundamental to biological applications[J]. Advanced Materials, 32, 2001994(2020).
[5] Xin H B, Zhao N, Wang Y N et al. Optically controlled living micromotors for the manipulation and disruption of biological targets[J]. Nano Letters, 20, 7177-7185(2020).
[6] Choudhary D, Mossa A, Jadhav M et al. Bio-molecular applications of recent developments in optical tweezers[J]. Biomolecules, 9, 23(2019).
[7] Rong S, Liu H S, Zhong Y et al. Enhancement of Raman spectra based on optical trapping of gold nanocubes[J]. Acta Optica Sinica, 41, 1730003(2021).
[8] Zhang Y Q, Zhang S S, Min C J et al. Research progress of femtosecond optical tweezers and their applications[J]. Chinese Journal of Lasers, 48, 1918001(2021).
[9] Dufresne E R, Grier D G. Optical tweezer arrays and optical substrates created with diffractive optics[J]. Review of Scientific Instruments, 69, 1974-1977(1998).
[10] Strasser F, Barnett S M, Ritsch-Marte M et al. Generally applicable holographic torque measurement for optically trapped particles[J]. Physical Review Letters, 128, 213604(2022).
[11] Li C Y, Zheng B, Li J T et al. Holographic optical tweezers and boosting upconversion luminescent resonance energy transfer combined clustered regularly interspaced short palindromic repeats (CRISPR)/Cas12a biosensors[J]. ACS Nano, 15, 8142-8154(2021).
[12] Chapin S C, Germain V, Dufresne E R. Automated trapping, assembly, and sorting with holographic optical tweezers[J]. Optics Express, 14, 13095-13100(2006).
[13] Sun B, Roichman Y, Grier D G. Theory of holographic optical trapping[J]. Optics Express, 16, 15765-15776(2008).
[14] Quidant R, Girard C. Surface-plasmon-based optical manipulation[J]. Laser & Photonics Reviews, 2, 47-57(2008).
[15] Righini M, Volpe G, Girard C et al. Surface plasmon optical tweezers: tunable optical manipulation in the femtonewton range[J]. Physical Review Letters, 100, 186804(2008).
[16] Ren Y T, Chen Q, He M J et al. Plasmonic optical tweezers for particle manipulation: principles, methods, and applications[J]. ACS Nano, 15, 6105-6128(2021).
[17] Zhang Y Q, Min C J, Dou X J et al. Plasmonic tweezers: for nanoscale optical trapping and beyond[J]. Light: Science & Applications, 10, 1-41(2021).
[18] Fuh M R S, Burgess L W, Hirschfeld T et al. Single fibre optic fluorescence pH probe[J]. Analyst, 112, 1159-1163(1987).
[19] Hu Z H, Wang J, Liang J W. Manipulation and arrangement of biological and dielectric particles by a lensed fiber probe[J]. Optics Express, 12, 4123-4128(2004).
[20] Ribeiro R S R, Soppera O, Oliva A G et al. New trends on optical fiber tweezers[J]. Journal of Lightwave Technology, 33, 3394-3405(2015).
[21] Constable A, Kim J, Mervis J et al. Demonstration of a fiber-optical light-force trap[J]. Optics Letters, 18, 1867-1869(1993).
[22] Jensen-McMullin C, Lee H P, Lyons E R. Demonstration of trapping, motion control, sensing and fluorescence detection of polystyrene beads in a multi-fiber optical trap[J]. Optics Express, 13, 2634-2642(2005).
[23] Taguchi K, Ueno H, Hiramatsu T et al. Optical trapping of dielectric particle and biological cell using optical fibre[J]. Electronics Letters, 33, 413-414(1997).
[24] Wu H, Jiang C L, Ren A N et al. Single-fiber optical tweezers for particle trapping and axial reciprocating motion using dual wavelength and dual mode[J]. Optics Communications, 517, 128333(2022).
[25] Taguchi K, Ueno H, Ikeda M. Rotational manipulation of a yeast cell using optical fibres[J]. Electronics Letters, 33, 1249-1250(1997).
[26] Taguchi K, Atsuta K, Nakata T et al. Levitation of a microscopic object using plural optical fibers[J]. Optics Communications, 176, 43-47(2000).
[27] Shen Z, Cheng Y, Deng H C et al. Analysis of trapping force of beak-shaped optical tweezers with annular core fibers for particles[J]. Acta Optica Sinica, 41, 1808001(2021).
[28] Chen P, Dang Y T, Zhong H et al. Single-fiber optical tweezer based on the coexistence of LP01 and LP11 modes for multiplexed capture and manipulation of biological cells[J]. Acta Optica Sinica, 43, 0406004(2023).
[29] Zharov V P, Kurten R C, Bauman J. Photothermal tweezers[J]. Procceedings of SPIE, 4960, 134-141(2003).
[30] Yang Y J, Ren Y X, Chen M Z et al. Optical trapping with structured light: a review[J]. Advanced Photonics, 3, 034001(2021).
[31] Xin H B, Xu R, Li B J. Optical trapping, driving and arrangement of particles using a tapered fibre probe[J]. Scientific Reports, 2, 1-8(2012).
[32] Liu Z H, Guo C K, Yang J et al. Tapered fiber optical tweezers for microscopic particle trapping: fabrication and application[J]. Optics Express, 14, 12510-12516(2006).
[33] Grier D G. A revolution in optical manipulation[J]. Nature, 424, 810-816(2003).
[34] Yuan L B, Liu Z H, Yang J et al. Twin-core fiber optical tweezers[J]. Optics Express, 16, 4559-4566(2008).
[35] Mohanty S K, Mohanty K, Berns M W. Manipulation of mammalian cells using a single-fiber optical microbeam[J]. Journal of Biomedical Optics, 13, 054049(2008).
[36] Xin H B, Liu Q Y, Li B J. Non-contact fiber-optical trapping of motile bacteria: dynamics observation and energy estimation[J]. Scientific Reports, 4, 1-8(2014).
[37] Xin H B, Li Y Y, Li L S et al. Optofluidic manipulation of Escherichia coli in a microfluidic channel using an abruptly tapered optical fiber[J]. Applied Physics Letters, 103, 033703(2013).
[38] Mestres P, Berthelot J, Spasenović M et al. Cooling and manipulation of a levitated nanoparticle with an optical fiber trap[J]. Applied Physics Letters, 107, 151102(2015).
[39] Xin H B, Li Y C, Xu D K et al. Single upconversion nanoparticle-bacterium cotrapping for single-bacterium labeling and analysis[J]. Small, 13, 1603418(2017).
[40] Derby B. Printing and prototyping of tissues and scaffolds[J]. Science, 338, 921-926(2012).
[41] Saltzman W M, Olbricht W L. Building drug delivery into tissue engineering design[J]. Nature Reviews Drug Discovery, 1, 177-186(2002).
[42] Chen Z L, Li Y, Liu W W et al. Patterning mammalian cells for modeling three types of naturally occurring cell-cell interactions[J]. Angewandte Chemie International Edition, 48, 8303-8305(2009).
[43] Tam J M, Biran I, Walt D R. An imaging fiber-based optical tweezer array for microparticle array assembly[J]. Applied Physics Letters, 84, 4289-4291(2004).
[44] Xin H B, Xu R, Li B J. Optical formation and manipulation of particle and cell patterns using a tapered optical fiber[J]. Laser & Photonics Reviews, 7, 801-809(2013).
[45] Xin H B, Li Y Y, Liu X S et al. Escherichia coli-based biophotonic waveguides[J]. Nano Letters, 13, 3408-3413(2013).
[46] Li Y C, Xin H B, Zhang Y et al. Living nanospear for near-field optical probing[J]. ACS Nano, 12, 10703-10711(2018).
[47] Li Y C, Liu X S, Yang X G et al. Enhancing upconversion fluorescence with a natural bio-microlens[J]. ACS Nano, 11, 10672-10680(2017).
[48] Liu S J, Li Z B, Weng Z et al. Miniaturized optical fiber tweezers for cell separation by optical force[J]. Optics Letters, 44, 1868-1871(2019).
[49] Liu S F, Lin L H, Sun H B. Opto-thermophoretic manipulation[J]. ACS Nano, 15, 5925-5943(2021).
[50] Zhao X T, Shi Y, Pan T et al. In situ single-cell surgery and intracellular organelle manipulation via thermoplasmonics combined optical trapping[J]. Nano Letters, 22, 402-410(2022).
[51] Li Y C, Xin H B, Liu X S et al. Non-contact intracellular binding of chloroplasts in vivo[J]. Scientific Reports, 5, 1-9(2015).
[52] Black B, Mondal A, Kim Y et al. Neuronal beacon[J]. Optics Letters, 38, 2174-2176(2013).
[53] Carnegie D J, Stevenson D J, Mazilu M et al. Guided neuronal growth using optical line traps[J]. Optics Express, 16, 10507-10517(2008).
[54] Ehrlicher A, Betz T, Stuhrmann B et al. Guiding neuronal growth with light[J]. Proceedings of the National Academy of Sciences of the United States of America, 99, 16024-16028(2002).
[55] Lan L, Xia Y, Li R et al. A fiber optoacoustic guide with augmented reality for precision breast-conserving surgery[J]. Light: Science & Applications, 7, 1-11(2018).
[56] Jiang Y, Lee H J, Lan L et al. Optoacoustic brain stimulation at submillimeter spatial precision[J]. Nature Communications, 11, 1-9(2020).
[57] Shi L L, Jiang Y, Fernandez F R et al. Non-genetic photoacoustic stimulation of single neurons by a tapered fiber optoacoustic emitter[J]. Light: Science & Applications, 10, 1-13(2021).
[58] Lin C H, Li X F, Wu T L et al. Optofluidic identification of single microorganisms using fiber-optical-tweezer-based Raman spectroscopy with artificial neural network[J]. BMEMat, 1, e12007(2023).
[59] Guo J H, Wu Y, Gong Z Y et al. Photonic nanojet-mediated optogenetics[J]. Advanced Science, 9, e2104140(2022).
[60] Nadappuram B P, Cadinu P, Barik A et al. Nanoscale tweezers for single-cell biopsies[J]. Nature Nanotechnology, 14, 80-88(2019).
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Yuqing Xiao, Yang Shi, Baojun Li, Hongbao Xin. Cell Manipulation and Neuron Regulation Based on Tapered Optical Fiber Tweezers[J]. Chinese Journal of Lasers, 2023, 50(15): 1507302
Category: Neurophotonics and Optical Regulation
Received: Feb. 9, 2023
Accepted: Mar. 15, 2023
Published Online: Aug. 8, 2023
The Author Email: Xin Hongbao (hongbaoxin@jnu.edu.cn)