• Journal of Innovative Optical Health Sciences
  • Vol. 9, Issue 4, 1642001 (2016)
Baoyun Yan* and Huan Qin
Author Affiliations
  • MOE Key Laboratory of Laser Life Science & Institute of Laser Life Science College of Biophotonics South China Normal University Guangzhou 510631, P.R. China
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    DOI: 10.1142/s1793545816420013 Cite this Article
    Baoyun Yan, Huan Qin. Indocyanine green loaded graphene oxide for high-efficient photoacoustic tumor therapy[J]. Journal of Innovative Optical Health Sciences, 2016, 9(4): 1642001 Copy Citation Text show less
    References

    [1] F. Zhou, S. Wu, Y. Yuan, W. R. Chen, D. Xing, "Mitochondria-targeting photoacoustic therapy using single-walled carbon nanotubes," Small 8, 1543–1550 (2012).

    [2] J. Zhong, S. Yang, X. Zheng, T. Zhou, D. Xing, "In vivo photoacoustic therapy with tumor-targeted indocyanine green-containing nanoparticles," Nanomedicine 8, 903–919 (2013).

    [3] J. Zhong, L. Wen, S. Yang, L. Xiang, Q. Chen, D. Xing, "Imaging-guided high-efficient photoacoustic tumor therapy with targeting gold nanorods," Nanomed.: NBM 11, 1499–1509 (2015).

    [4] H. Qin, T. Zhou, S. Yang, D. Xing, "Fluorescence quenching nanoprobes dedicated to in vivo photoacoustic imaging and high-efficient tumor therapy in deep-seated tissue," Small 11, 2675–2686 (2015).

    [5] S. Yang, D. Xing, Q. Zhou, L. Xiang, Y. Lao, "Functional imaging of cerebrovascular activities in small animals using high-resolution photoacoustic tomography," Med. Phys. 34, 3294–3301 (2007).

    [6] Y. Zhao, S. Yang, C. Chen, D. Xing, "Simultaneous optical absorption and viscoelasticity imaging based on photoacoustic lock-in measurement," Opt. Lett. 39, 2565–2568 (2014).

    [7] J. Zhang, S. Yang, X. Ji, Q. Zhou, D. Xing, "Characterization of lipid-rich aortic plaques by intravascular photoacoustic tomography: Ex vivo and in vivo validation in a rabbit atherosclerosis model with histologic correlation," J. Am. Coll. Cardiol. 64, 385–390 (2014).

    [8] L. V. Wang, S. Hu, "Photoacoustic tomography: In vivo imaging from organelles to organs," Science 335, 1458–1462 (2012).

    [9] Z. Ji, Y. Fu, S. Yang, "Microwave-induced thermoacoustic imaging for early breast cancer detection," J. Innov. Opt. Heal. Sci. 6, 1350001 (2013).

    [10] Y. Zhao, S. Yang, "Photoacoustic viscoelasticity imaging of biological tissues with intensity-modulated continuous-wave laser," J. Innov. Opt. Heal. Sci. 6, 1350033 (2013).

    [11] J. Zhong, S. Yang, "Contrast-enhanced photoacoustic imaging using indocyanine green-containing nanoparticles," J. Innov. Opt. Heal. Sci 7, 1350029 (2014).

    [12] H. Qin, T. Zhou, S. Yang, Q. Chen, D. Xing, "Gadolinium (III)-gold nanorods for MRI and photoacoustic imaging dual-modality detection of macrophages in atherosclerotic inflammation," Nanomedicine 8, 1611–1624 (2013).

    [13] H. Qin, S. Yang, D. Xing, "Microwave-induced thermoacoustic computed tomography with a clinical contrast agent of NMG2[Gd (DTPA)]," Appl. Phys. Lett. 100, 033701 (2012).

    [14] L. Nie, P. Huang, W. Li, X. Yan, A. Jin, Z. Wang, X. Chen, "Early-stage imaging of nanocarrierenhanced chemotherapy response in living subjects by scalable photoacoustic microscopy," ACS Nano 8, 12141–12150 (2014).

    [15] B. Kang, Y. Dai, S. Chang, D. Chen. "Explosion of single-walled carbon nanotubes in suspension induced by a large photoacoustic effect," Carbon 46, 974–981 (2008).

    [16] S. Link, C. Burda, M. B. Mohamed, B. Nikoobakht, M. A. El-Sayed, "Laser photothermal melting and fragmentation of gold nanorods: Energy and laser pulse-width dependence," J. Phys. Chem. A. 103, 1165 (1999).

    [17] S. Link, B. Burda, B. Nikoobakht, M. A. El-Sayed, "Laser-induced shape changes of colloidal gold nanorods using femtosecond and nanosecond laser pulses," J. Phys. Chem. B 104, 6152 (2000).

    [18] C. M. Aguirre, C. E. Moran, J. F. Young, N. J. Halas, "Laser-induced reshaping of metallodielectric nanoshells under femtosecond and nanosecond plasmon resonant illumination," J. Phys. Chem. B 108, 7040 (2004).

    [19] M. Ogawa, N. Kosaka, P. L. Choyke, H. Kobayashi, "In vivo molecular imaging of cancer with a quenching near-infrared fluorescent probe using conjugates of monoclonal antibodies and indocyanine green," Cancer Res. 69, 1268–1272 (2009).

    [20] J. Yu, D. Javier, M. A. Yaseen, "Self-assembly synthesis, tumor cell targeting, and photothermal capabilities of antibody-coated indocyanine green nanocapsules," J. Am. Chem. Soc. 132, 1929–1938 (2010).

    [21] A. de la Zerda, S. Bodapati, R. Teed, S. Y. May, T. S. M. Abakman, Z. Liu, B. T. Khuri-Yakub, X. Chen, H. Dai, S. S. Gambhir, "Family of enhanced photoacoustic imaging agents for high-sensitivity and multiplexing studies in living mice," ACS Nano 6, 4694 (2012).

    Baoyun Yan, Huan Qin. Indocyanine green loaded graphene oxide for high-efficient photoacoustic tumor therapy[J]. Journal of Innovative Optical Health Sciences, 2016, 9(4): 1642001
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