Vessel orientation-dependent sensitivity of optoacoustic imaging using a linear array transducer

Abstract. For clinical optoacoustic imaging, linear probes are preferably used because they allow versatile imaging of the human body with real-time display and free-hand probe guidance. The two-dimensional (2-D) optoacoustic image obtained with this type of probe is generally interpreted as a 2-D cross-section of the tissue just as is common in echo ultrasound. We demonstrate in three-dimensional simulations, phantom experiments, and in vivo mouse experiments that for vascular imaging this interpretation is often inaccurate. The cylindrical blood vessels emit anisotropic acoustic transients, which can be sensitively detected only if the direction of acoustic radiation coincides with the probe aperture. Our results reveal for this reason that the signal amplitude of different blood vessels may differ even if the vessels have the same diameter and initial pressure distribution but different orientation relative to the imaging plane. This has important implications for the image interpretation, for the probe guidance technique, and especially in cases when a quantitative reconstruction of the optical tissue properties is required.

[1]  Sun,et al.  Photoacoustic monopole radiation in one, two, and three dimensions. , 1991, Physical review letters.

[2]  Lihong V. Wang,et al.  Photoacoustic imaging in biomedicine , 2006 .

[3]  Minghua Xu,et al.  Thermoacoustic and Photoacoustic Tomography of Thick Biological Tissues toward Breast Imaging , 2005, Technology in cancer research & treatment.

[4]  Lihong V. Wang,et al.  Photoacoustic imaging and characterization of the microvasculature. , 2010, Journal of biomedical optics.

[5]  Lihong V Wang,et al.  Universal back-projection algorithm for photoacoustic computed tomography , 2005, SPIE BiOS.

[6]  Lihong V. Wang,et al.  Imaging acute thermal burns by photoacoustic microscopy. , 2006, Journal of biomedical optics.

[7]  Martin Frenz,et al.  Fourier reconstruction in optoacoustic imaging using truncated regularized inverse k-space interpolation , 2007 .

[8]  T. Horio,et al.  Diagnostic value of carotid intima–media thickness and plaque score for predicting target organ damage in patients with essential hypertension , 2004, Journal of Human Hypertension.

[9]  Robert A Kruger,et al.  Thermoacoustic computed tomography using a conventional linear transducer array. , 2003, Medical physics.

[10]  Markus Haltmeier,et al.  Experimental evaluation of reconstruction algorithms for limited view photoacoustic tomography with line detectors , 2007 .

[11]  Wiendelt Steenbergen,et al.  Real-time in vivo photoacoustic and ultrasound imaging. , 2008, Journal of biomedical optics.

[12]  Fabio Piscaglia,et al.  Assessment of vascular patterns of small liver mass lesions: value and limitation of the different Doppler ultrasound modalities , 2000, American Journal of Gastroenterology.

[13]  Lihong V. Wang,et al.  Reconstructions in limited-view thermoacoustic tomography. , 2004, Medical physics.

[14]  Richard Su,et al.  Real-time optoacoustic monitoring and three-dimensional mapping of a human arm vasculature. , 2010, Journal of biomedical optics.

[15]  Lihong V. Wang,et al.  Noninvasive, in vivo imaging of blood-oxygenation dynamics within the mouse brain using photoacoustic microscopy. , 2009, Journal of biomedical optics.

[16]  Martin Frenz,et al.  Determining the optical properties of a gelatin‑TiO2 phantom at 780 nm , 2012, Biomedical optics express.

[17]  James D. Thomas,et al.  3D echocardiography: a review of the current status and future directions. , 2007, Journal of the American Society of Echocardiography : official publication of the American Society of Echocardiography.

[18]  Gerald J. Diebold,et al.  The photoacoustic effect generated by laser irradiation of an isotropic solid cylinder , 1996 .

[19]  M. Frenz,et al.  Improved contrast deep optoacoustic imaging using displacement-compensated averaging: breast tumour phantom studies , 2011, Physics in medicine and biology.

[20]  T Sato,et al.  Tomographic image reconstruction from limited projections using iterative revisions in image and transform spaces. , 1981, Applied optics.

[21]  Sihua Yang,et al.  Limited-view photoacoustic imaging based on linear-array detection and filtered mean-backprojection-iterative reconstruction , 2009 .

[22]  M S Soo,et al.  Sonography of solid breast lesions: observer variability of lesion description and assessment. , 1999, AJR. American journal of roentgenology.

[23]  Bo Wang,et al.  Noninvasive detection of intimal xanthoma using combined ultrasound, strain rate and photoacoustic imaging. , 2012, Ultrasonics.

[24]  Martin Frenz,et al.  Combined ultrasound and optoacoustic system for real-time high-contrast vascular imaging in vivo , 2005, IEEE Transactions on Medical Imaging.

[25]  D G Gibson,et al.  Effects of abnormal activation on the time course of the left ventricular pressure pulse in dilated cardiomyopathy , 1992, British heart journal.

[26]  Vasilis Ntziachristos,et al.  Non-invasive whole-body imaging of adult zebrafish with optoacoustic tomography , 2012, Physics in medicine and biology.

[27]  Erwin Hondebrink,et al.  Photoacoustic imaging of blood vessels with a double-ring sensor featuring a narrow angular aperture. , 2004, Journal of biomedical optics.

[28]  Alexander A Karabutov,et al.  Optoacoustic imaging of absorbing objects in a turbid medium: ultimate sensitivity and application to breast cancer diagnostics. , 2007, Applied optics.

[29]  S.W. Smith,et al.  High-speed ultrasound volumetric imaging system. I. Transducer design and beam steering , 1991, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.

[30]  K. P. Köstli,et al.  Two-dimensional photoacoustic imaging by use of Fourier-transform image reconstruction and a detector with an anisotropic response. , 2003, Applied optics.

[31]  J. Kisslo,et al.  Real-time 3-dimensional echocardiography evaluation of congenital heart disease. , 2000, Journal of the American Society of Echocardiography : official publication of the American Society of Echocardiography.

[32]  Akira Nishiyama,et al.  Tissue Doppler echocardiography for predicting arterial stiffness assessed by cardio-ankle vascular index. , 2009, The Tohoku journal of experimental medicine.

[33]  I. Calasso,et al.  Photoacoustic point source. , 2001, Physical review letters.

[34]  Chandan K Sen,et al.  Revisiting the essential role of oxygen in wound healing. , 2003, American journal of surgery.

[35]  Geng Ku,et al.  Noninvasive imaging of hemoglobin concentration and oxygenation in the rat brain using high-resolution photoacoustic tomography. , 2006, Journal of biomedical optics.

[36]  S. Emelianov,et al.  Photoacoustic imaging in cancer detection, diagnosis, and treatment guidance. , 2011, Trends in biotechnology.

[37]  Minghua Xu,et al.  Time-domain reconstruction for thermoacoustic tomography in a spherical geometry , 2002, IEEE Transactions on Medical Imaging.

[38]  Lihong V. Wang,et al.  Deep reflection-mode photoacoustic imaging of biological tissue. , 2007, Journal of biomedical optics.

[39]  Lihong V. Wang,et al.  In vivo functional chronic imaging of a small animal model using optical-resolution photoacoustic microscopy. , 2009, Medical physics.

[40]  Ronald I. Siphanto,et al.  Serial noninvasive photoacoustic imaging of neovascularization in tumor angiogenesis. , 2005, Optics express.

[41]  H. Ishida,et al.  Liver tumors in fatty liver: difficulty in ultrasonographic interpretation , 2001, Abdominal Imaging.

[42]  Alexander A Oraevsky,et al.  Optical and acoustic properties at 1064 nm of polyvinyl chloride-plastisol for use as a tissue phantom in biomedical optoacoustics , 2005, Physics in medicine and biology.

[43]  Lihong V. Wang,et al.  In vivo imaging and characterization of hypoxia-induced neovascularization and tumor invasion. , 2007, International journal of oncology.

[44]  H. Weber,et al.  Optoacoustic imaging using a three-dimensional reconstruction algorithm , 2001 .

[45]  P. Beard Biomedical photoacoustic imaging , 2011, Interface Focus.

[46]  Srirang Manohar,et al.  Imaging of tumor vasculature using Twente photoacoustic systems , 2009, Journal of biophotonics.

[47]  Minoru Obara,et al.  Measurement of burn depths in rats using multiwavelength photoacoustic depth profiling. , 2005, Journal of biomedical optics.

[48]  Minghua Xu,et al.  Exact frequency-domain reconstruction for thermoacoustic tomography. II. Cylindrical geometry , 2002, IEEE Transactions on Medical Imaging.

[49]  Roy G. M. Kolkman,et al.  In vivo photoacoustic imaging of blood vessels with a pulsed laser diode , 2006, Lasers in Medical Science.

[50]  Christopher B. Kendall,et al.  Use of carotid ultrasound to identify subclinical vascular disease and evaluate cardiovascular disease risk: a consensus statement from the American Society of Echocardiography Carotid Intima-Media Thickness Task Force. Endorsed by the Society for Vascular Medicine. , 2008, Journal of the American Society of Echocardiography : official publication of the American Society of Echocardiography.

[51]  A. Toyonaga,et al.  Value of Doppler ultrasound parameters of portal vein and hepatic artery in the diagnosis of cirrhosis and portal hypertension. , 1997, The American journal of gastroenterology.

[52]  Vasilis Ntziachristos,et al.  Imaging of mesoscopic-scale organisms using selective-plane optoacoustic tomography , 2009, Physics in medicine and biology.

[53]  Martin Frenz,et al.  Reduction of background in optoacoustic image sequences obtained under tissue deformation. , 2009, Journal of biomedical optics.

[54]  Da Xing,et al.  Noninvasive photoacoustic imaging of the developing vasculature during early tumor growth , 2008, Physics in medicine and biology.

[55]  Guillaume Ferin,et al.  Comparison of 3D synthetic aperture imaging and explososcan using phantom measurements , 2012, 2012 IEEE International Ultrasonics Symposium.

[56]  H. Torp,et al.  Ultrasound doppler measurements of low velocity blood flow: limitations due to clutter signals from vibrating muscles , 1997, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.

[57]  Michael Jaeger,et al.  Deformation-compensated averaging for clutter reduction in epiphotoacoustic imaging in vivo. , 2012, Journal of biomedical optics.

[58]  A. Karabutov,et al.  Time-resolved laser optoacoustic tomography of inhomogeneous media , 1996 .