• Journal of Innovative Optical Health Sciences
  • Vol. 2, Issue 4, 431 (2009)
MARCO BONESI1、2、*, ANEURIN J. KENNERLEY3, IGOR MEGLINSKI4, and STEPHEN MATCHER2
Author Affiliations
  • 1Center for Biomedical Engineering and Physics Medical University of Vienna W¨aringer Strasse 13, 1090, Vienna, Austria
  • 2Department of Engineering Materials University of Sheffield, Sheffield, S3 7HQ, UK
  • 3Department of Psychology, University of Sheffield Sheffield, S10 2TN, UK
  • 4Department of Physics, University of Otago Dunedin 9054, New Zealand
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    DOI: Cite this Article
    MARCO BONESI, ANEURIN J. KENNERLEY, IGOR MEGLINSKI, STEPHEN MATCHER. APPLICATION OF DOPPLER OPTICAL COHERENCE TOMOGRAPHY IN RHEOLOGICAL STUDIES: BLOOD FLOW AND VESSELS MECHANICAL PROPERTIES EVALUATION[J]. Journal of Innovative Optical Health Sciences, 2009, 2(4): 431 Copy Citation Text show less
    References

    [1] S. R. Chinn, E. A. Swanson, “Optical coherence tomography for high-density data storage,” in Handbook of Optical Coherence Tomography, B. E. Bouma, G. J. Tearney, Eds., Marcel Dekker Inc., New York (2002).

    [2] J. P. Dunkers, “Applications of optical coherence tomography to the study of polymer matrix composition,” in Handbook of Optical Coherence Tomography, B. E. Bouma, G. J. Tearney, Eds., Marcel Dekker Inc., New York (2002).

    [3] J.G. Fujimoto,M. E. Brezinski, G. J. Tearney, S. A. Boppart,M. R. Hee, E. A. Swanson, “Optical biopsy and imaging using optical coherence tomography,” Nat. Med. 1, 970–972 (1995).

    [4] D. Huang, E. A. Swanson, C. P. Lin, S. J. Schuman, W. G. Stinson, W. Chang, M. R. Hee, T. Flotte, K. Gregory, C. A. Puliafito, J. G. Fujimoto, “Optical coherence tomography,” Science 254, 1178–1181 (1991).

    [5] M. E. Brezinski, J. G. Fujimoto, “Optical coherence tomography: High resolution imaging in nontransparent tissue,” IEEE J. Sel. Topics Quant. Electr. 5, 1185–1192 (1999).

    [6] W. Drexler, “Ultrahigh-resolution optical coherence tomography,” J. Biomed. Opt. 9, 47–74 (2004).

    [7] B. E. Bouma, G. J. Tearney, Handbook of Optical Coherence Tomography, Marcel Dekker, Inc., New York (2002).

    [8] M. E. Brezinski, Optical Coherence Tomography Principles and Applications, Elsevier (2006).

    [9] A. F. Fercher, K. Mengedoht, W. Werner, “Eyelength measurement by interferometry with partially coherent light,” Opt. Lett. 13, 186–189 (1988).

    [10] E. A. Swanson, J. A. Izatt, R. Hee, D. Huang, C. P. Lin, S. J. Schuman, C. A. Puliafito, J. G. Fujimoto, “In vivo retinal imaging by optical coherence tomography,” Opt. Lett. 18(21), 1864–1866 (1993).

    [11] M. Wojtkowski, R. Leitgeb, A. Kowalczyk, T. Bajraszewski, A. F. Fercher, “In vivo human retinal imaging by Fourier domain optical coherence tomography,” J. Biomed. Opt. 7, 457–463 (2002).

    [12] R. Longmuir, G. L. Andrew, B. H. Culver, “Optical coherence tomography (OCT) in neuroophthalmology: A clinical perspective,” Neuro- Ophthalmology 32, 15–125 (2008).

    [13] J. M. Schmitt, D. Kolstad, C. Petersen, “Intravascular optical coherence tomography — opening a window into coronary artery disease Business briefing: European cardiology 2005,” LightLab Imaging, Inc. (published online http://www.touchbriefings.com/ pdf/1231/Lightlab Tech.pdf) (2005).

    [14] X. Li, C. Chudoba, T. Ko, C. Pitris, J. G. Fujimoto, “Imaging needle for optical coherence tomography,” Opt. Lett. 25, 1520–1522 (2000).

    [15] J. H. Hwang, M. J. Cobb, M. B. Kimmey, X. Li, “Optical coherence tomography of the pancreas: A needle-based approach,” Clinic Gastroenterol. Hepatol. 3, S49–S52 (2005).

    [16] G. J. Tearney, H. Yabushita, S. L. Houser, H. T. Aretz, I.-K. Jang, K. H. Schlendorf, C. R. Kauffman, M. Shishkov, E. F. Halpern, B. E. Bouma, “Quantification of macrophage content in atherosclerotic plaques by optical coherence tomography,” Circulation 107, 113–119 (2003).

    [17] E. Regar, T. G. van Leeuwen, P.W. Serruys, Optical Coherence Tomography in Cardiovascular Research, Informa healthcare (2007).

    [18] N. A. Patel, D. L. Stamper, M. E. Brezinski, “Review of the ability of optical coherence tomography to characterize plaque, including a comparison with intravascular ultrasound,” Cardiovasc. Intervent. Radiol. 28, 1–9 (2005).

    [19] F. J. van der Meer, D. J. Faber, D. M. B. Sassoon, M. C. Aalders, G. Pasterkamp, T. G. van Leeuwen, “Localized measurement of optical attenuation coefficients of atherosclerotic plaque constituents by quantitative optical coherence tomography,” IEEE Trans. Med. Imaging 24, 1369–1376 (2005).

    [20] F. J. van der Meer, D. J. Faber, J. Perree, “Quantitative optical coherence tomography of arterial wall components,” Lasers Med. Sci. 20, 45–51 (2005).

    [21] J. A. Izatt, M. D. Kulkarni, S. Yazdanfar, J. K. Barton, A. J. Welch, “In vivo bidirectional colour Doppler flow imaging of picoliter blood volumes using optical coherence tomography,” Opt. Lett. 22, 1439–1441 (1997).

    [22] S. Yazdanafar, M. D. Kulkarni, J. A. Izatt, “High resolution imaging of in vivo cardiac dynamics using colour Doppler optical coherence tomography,” Opt. Exp. 1, 424–431 (1997).

    [23] S. Yazdanafar, A. M. Rollins, J. A. Izatt, “In vivo imaging of human retinal flow dynamics by colour Doppler optical coherence tomography,” Arch. Ophthalmol. 121, 235–239 (2003).

    [24] Z. Chen, T. E. Milner, S. Srinivas, X. Wang, A. Malekafzali, J. C. van Gemert, J. S. Nelson, “Noninvasive imaging of in vivo blood flow velocity using optical Doppler tomography,” Opt. Lett. 22, 1119–1121 (1997).

    [25] J. K. Barton, J. A. Izatt, M. D. Kulkarni, S. Yasdanfar, A. J. Welch, “Three-dimensional reconstruction of blood vessels from in vivo colour Doppler optical coherence tomography images,” Dermatology 198, 355–361 (1999).

    [26] M. Bonesi, D. Churmakov, I. Meglinski, “Study of flow dynamics in complex vessels using Doppler optical coherence tomography,” Meas. Sci. Technol. 18, 3279–3286 (2007).

    [27] M. Bonesi, D. Churmakov, L. J. Ritchie, I. V. Meglinski, “Optical coherence tomography imaging depth enhancement by superficial skin optical clearing,” Laser Phys. Lett. 4, 304–307 (2006).

    [28] T. G. van Leeuwen, M. D. Kulkarni, S. Yazdanfar, A. M. Rollins, J. A. Izatt, “High-flow-velocity and shear-rate imaging by use of color Doppler optical coherence tomography,” Opt. Lett. 24, 1584–1586 (1999).

    [29] J. Moger, S. J. Matcher, C. P. Winlove, A. Shore, “Measuring red blood cell flow dynamics in a glass capillary using Doppler optical coherence tomography and Doppler amplitude optical coherence tomography,” J. Biomed. Opt. 9, 982–994 (2004).

    [30] A. M. Rollins, S. Yazdanfar, J. K. Barton, J. A. Izatt, “Real-time in vivo colour Doppler optical coherence tomography,” J. Biomed. Opt. 7, 123–129 (2002).

    [31] C. J. Chang, K. H. Hou, “High-resolution optical Doppler tomography for in vitro and in vivo fluid flow dynamics,” Chang Gung Med. J. 26, 403–411 (2003).

    [32] Y. Satomura, J. Seki, Y. Ooi, T. Yanagida, A. Seiyama, “In vivo imaging of the rat cerebral microvessels with optical coherence tomography,” Clin. Hemorheol. Microcir. 31, 31–40 (2004).

    [33] S. G. Proskurin, I. V. Meglinski, “Optical coherence tomography imaging depth enhancement by superficial skin optical clearing,” Laser Phys. Lett. 4, 824– 826 (2007).

    [34] M. C. Pierce, J. Strasswimmer, B. Hyle Park, B. Cense, J. F. de Boer, “Advances in optical coherence tomography imaging for dermatology,” J. Invest. Dermatol. 123, 458–463 (2004).

    [35] T. Gambichler, G. Moussa, M. Sand, D. Sand, P. Altmeyer, K. Hoffmann, “Applications of optical coherence tomography in dermatology,” J. Dermatol. Sci. 40, 85–94 (2005).

    [36] M. Born, E. Wolf, Principles of Optics: Electromagnetic Theory of Propagation, Interference and Diffraction of Light, Cambridge University Press, Cambridge, UK (1999).

    [37] A. F. Fercher, W. Drexler, C. K. Hitzenberger, T. Lasser, “Optical coherence tomography—principles and applications, Rep. Prog. Phys. 66, 239–303 (2003).

    [38] V. V. Tuchin, Handbook of Coherent Domain Optical Methods, Kluwer Academic Press (2004).

    [39] W. Drexler, J. G. Fujimoto, Eds., Optical Coherence Tomography, Springer (2008).

    [40] A. G. Udetz, R. J. Roman, D. R. Harder, “Spontaneous flow oscillations in the cerebral cortex during acute changes in mean arterial pressure,” J. Cereb. Blood Flow Metabol. 12, 491–499 (1992).

    [41] J. E. Mayhew, S. Askew, Y. Zheng, J. Porrill, G. W. M. Westby, P. Redgrave, D. M. Rector, R. M. Harper, “Cerebral vasomotion: 0.1 Hz oscillation in reflected light imaging neural activity,” Neuroimage 4, 183–193 (1996).

    [42] E. V. Golanov, D. Reis, “Vasodilatation evoked from medulla and cerebellum is coupled to bursts of cortical EEG activity in rats,” Am. J. Physiol. 268, R454–467 (1995).

    [43] B. Folkow, “Description of the myogenic hypothesis,” Circ. Res. 20, 327–335 (1964).

    MARCO BONESI, ANEURIN J. KENNERLEY, IGOR MEGLINSKI, STEPHEN MATCHER. APPLICATION OF DOPPLER OPTICAL COHERENCE TOMOGRAPHY IN RHEOLOGICAL STUDIES: BLOOD FLOW AND VESSELS MECHANICAL PROPERTIES EVALUATION[J]. Journal of Innovative Optical Health Sciences, 2009, 2(4): 431
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