111
Views
26
CrossRef citations to date
0
Altmetric
Special Report

Recent advances in intracoronary imaging techniques: focus on optical coherence tomography

&
Pages 691-697 | Published online: 09 Jan 2014

References

  • Proudfit WL, Shirey EK, Sones FM Jr. Selective cine coronary arteriography: correlation with clinical findings in 1,000 patients. Circulation33, 901–910 (1966).
  • Sudhir K, Fitzgerald PJ, MacGregor JS et al. Transvenous coronary ultrasound imaging: a novel approach to visualization of the coronary arteries. Circulation84, 1957–1961 (1991).
  • Nair A, Kuban BD, Tuzcu EM et al. Coronary plaque classification with intravascular ultrasound radiofrequency data analysis. Circulation106, 2200–2206 (2002).
  • Machado JC, Foster FS. Ultrasonic integrated backscatter coefficient profiling of human coronary arteries in vitro. IEEE Trans. Ultrason. Ferroelectr. Freq. Control48, 17–27 (2001).
  • Thieme T, Wernecke KD, Meyer R et al. Angioscopic evaluation of atherosclerotic plaques: validation by histomorphologic analysis and association with stable and unstable coronary syndromes. J. Am. Coll. Cardiol.28, 1–6 (1996).
  • Kubo T, Imanishi T, Takarada S et al. Implication of plaque color classification for assessing plaque vulnerability: a coronary angioscopy and optical coherence tomography investigation. J. Am. Coll. Cardiol. Intv.1, 74–80 (2008).
  • Naghavi M, Madjid M, Khan MR et al. New developments in the detection of vulnerable plaque. Curr. Atheroscler. Rep.3, 125–135 (2001).
  • Moreno PR, Lodder RA, Purushothaman KR et al. Detection of lipid pool, thin fibrous cap, and inflammatory cells in human aortic atherosclerotic plaques by near-infrared spectroscopy. Circulation105, 923–927 (2002).
  • Marcu L, Fishbein MC, Maarek LM, Grundfest WS. Discrimination of human coronary artery atherosclerotic lipid-rich lesions by time-resolved laser-induced fluorescence spectroscopy. Arterioscler. Thromb. Vasc. Biol.21, 1244–1250 (2001).
  • Romer TJ, Brennan JF III, Fitzmaurice M et al. Histopathology of human coronary atherosclerosis by quantifying its chemical composition with Raman spectroscopy. Circulation97, 878–885 (1998).
  • Qiu B, Gao F, Karmarkar P, Atalar E, Yang X. Intracoronary MR imaging using a 0.014-inch MR imaging-guidewire: toward MRI-guided coronary interventions. J. Magn. Reson. Imaging28, 515–518 (2008).
  • Takumi T, Lee S, Hamasaki S et al. Limitation of angiography to identify the culprit plaque in acute myocardial infarction with coronary total occlusion utility of coronary plaque temperature measurement to identify the culprit plaque. J. Am. Coll. Cardiol.50, 2197–2203 (2007).
  • Tearney GJ, Jang IK, Bouma BE. Optical coherence tomography for imaging: the vulnerable plaque. J. Biomed. Opt.11, 1–10 (2006).
  • Patwari P, Weissman NJ, Boppart SA et al. Assessment of coronary plaque with optical coherence tomography and high-frequency ultrasound. Am. J. Cardiol.85, 641–644 (2000).
  • Jang IK, Bouma BE, Kang DH et al. Visualization of coronary atherosclerotic plaques in patients using optical coherence tomography: comparison with intravascular ultrasound. J. Am. Coll. Cardiol.39, 604–609 (2002).
  • Kume T, Akasaka T, Kawamoto T et al. Assessment of coronary intima-media thickness by optical coherence tomography: comparison with intravascular ultrasound. Circ. J.69, 903–907 (2005).
  • Yabushita H, Bouma BE, Houser SL et al. Characterization of human atherosclerosis by optical coherence tomography. Circulation106, 1640–1645 (2002).
  • Kume T, Akasaka T, Kawamoto T et al. Measurement of the thickness of the fibrous cap by optical coherence tomography. Am. Heart J.152, 755.e1–4 (2006).
  • Kitabata H, Kubo T, Akasaka T. Identification of multiple plaque ruptures by optical coherence tomography in a patient with acute myocardial infarction: a three-vessel study. Heart94, 544 (2008).
  • Tearney GJ, Yabushita H, Houser SL et al. Quantification of macrophage content in atherosclerotic plaques by optical coherence tomography. Circulation107, 113–119 (2003).
  • MacNeill BD, Jang IK, Bouma BE et al. Focal and multi-focal plaque macrophage distributions in patients with acute and stable presentations of coronary artery disease. J. Am. Coll. Cardiol.44, 972–979 (2004).
  • Kume T, Akasaka T, Kawamoto T et al. Assessment of coronary arterial thrombus by optical coherence tomography. Am. J. Cardiol.97, 1713–1717 (2006).
  • Jang IK, Tearney GJ, MacNeill B et al.In vivo characterization of coronary atherosclerotic plaque by use of optical coherence tomography. Circulation111, 1551–1555 (2005).
  • Virmani R, Kolodgie FD, Burke AP et al. Lessons from sudden coronary death: a comprehensive morphological classification scheme for atherosclerotic lesions. Arterioscler. Thromb. Vasc. Biol.20, 1262–1275 (2000).
  • Kubo T, Imanishi T, Takarada S et al. Assessment of culprit lesion morphology in acute myocardial infarction: ability of optical coherence tomography compared with intravascular ultrasound and coronary angioscopy. J. Am. Coll. Cardiol.50, 933–939 (2007).
  • Yamaguchi T, Terashima M, Akasaka T et al. Safety and feasibility of an intravascular optical coherence tomography image wire system in the clinical setting. Am. J. Cardiol.101, 562–567 (2008).
  • Kawase Y, Hoshino K, Yoneyama R et al.In vivo volumetric analysis of coronary stenting using optical coherence tomography with a novel balloon occlusion-flushing catheter: a comparison with intravascular ultrasound. Ultrasound Med. Biol.31, 1343–1349 (2005).
  • Diaz-Sandoval LJ, Bouma BE, Tearney GJ, Jang IK. Optical coherence tomography as a tool for percutaneous coronary interventions. Catheter. Cardiovasc. Interv.65, 492–496 (2005).
  • Jang IK, Tearney G, Bouma B. Visualization of tissue prolapse between coronary stent struts by optical coherence tomography: comparison with intravascular ultrasound. Circulation104, 2754 (2001).
  • Sawada T, Shite J, Shinke T et al. Persistent malapposition after implantation of sirolimus-eluting stent into intramural coronary hematoma: optical coherence tomography observations. Circ. J.70, 1515–1519 (2006).
  • Kume T, Akasaka T, Kawamoto T et al. Visualization of neointima formation by optical coherence tomography. Int. Heart J.46, 1133–1136 (2005).
  • Bouma BE, Tearney GJ, Yabushita H et al. Evaluation of intracoronary stenting by intravascular optical coherence tomography. Heart89, 317–320 (2003).
  • Kotani J, Awata M, Nanto S et al. Incomplete neointimal coverage of sirolimus-eluting stents angioscopic findings. J. Am. Coll. Cardiol.47, 2108–2111 (2006).
  • Prati F, Zimarino M, Stabile E et al. Does optical coherence tomography identify arterial healing after stenting? An in vivo comparison with histology, in a rabbit carotid model. Heart94, 217–221 (2008).
  • Suzuki Y, Ikeno F, Koizumi T et al.In vivo comparison between optical coherence tomography and intravascular ultrasound for detecting small degrees of in-stent neointimal after stent implantation. J. Am. Coll. Cardiol. Intv.1, 168–173 (2008).
  • Matsumoto D, Shite J, Shinke T et al. Neointimal coverage of sirolimus-eluting stents at 6-month follow-up: evaluated by optical coherence tomography. Eur. Heart J.28, 961–967 (2007).
  • Kubo T, Imanishi T, Kitabata H et al. Comparison of vascular response after sirolimus-eluting stent implantation between patients with unstable and stable angina pectoris. J. Am. Coll. Cardiol. Img1, 475–484 (2008).
  • Prati F, Cera M, Ramazzotti V et al. From bench to bedside: a novel technique of acquiring OCT images. Circ. J.72, 839–843 (2008).
  • Prati F, Cera M, Ramazzotti V et al. Safety and feasibility of a new non-occlusive technique for facilitated intracoronary optical coherence tomography (OCT) acquisition in various clinical and anatomical scenarios. EuroInterv.3, 365–370 (2007).
  • Sawada T, Shite J, Garcia-Garcia HM et al. Feasibility of combined use of intravascular ultrasound radiofrequency data analysis and optical coherence tomography for detecting thin-cap fibroatheroma. Eur. Heart J.29, 1136–1146 (2008).
  • Yun SH, Tearney GJ, de Boer JF et al. High-speed optical frequency domain imaging. Opt. Express.11, 2953–2963 (2003).
  • de Boer JF, Cense B, Park BH et al. Improved signal-to-noise ratio in spectral domain compared with time-domain optical coherence tomography. Opt. Lett.28, 2067–2069 (2003).
  • Choma MA, Sarunic MV, Yang CH, Izatt JA. Sensitivity advantage of swept source and Fourier domain optical coherence tomography. Opt. Express.11, 2183–2189 (2003).

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.