Photoacoustic tomography of ex vivo mouse hearts with myocardial infarction.

In the present study, we evaluated the applicability of ex vivo photoacoustic imaging (PAI) on small animal organs. We used photoacoustic tomography (PAT) to visualize infarcted areas within murine hearts and compared these data to other imaging techniques [magnetic resonance imaging (MRI), micro-computed tomography] and histological slices. In order to induce ischemia, an in vivo ligation of the left anterior descending artery was performed on nine wild-type mice. After varying survival periods, the hearts were excised and fixed in formaldehyde. Samples were illuminated with nanosecond laser pulses delivered by a Nd:YAG pumped optical parametric oscillator. Ultrasound detection was achieved using a Mach-Zehnder interferometer (MZI) working as an integrating line detector. The voxel data were computed using a Fourier-domain based reconstruction algorithm, followed by inverse Radon transforms. The results clearly showed the capability of PAI to visualize myocardial infarction and to produce three-dimensional images with a spatial resolution of approximately 120 μm. Regions of affected muscle tissue in PAI corresponded well with the results of MRI and histology. Photoacoustic tomography utilizing a MZI for ultrasound detection allows for imaging of small tissue samples. Due to its high spatial resolution, good soft tissue contrast and comparatively low cost, PAT offers great potentials for imaging.

[1]  Markus Haltmeier,et al.  Photoacoustic tomography using a Mach-Zehnder interferometer as an acoustic line detector. , 2007, Applied optics.

[2]  H. Weber,et al.  Temporal backward projection of optoacoustic pressure transients using fourier transform methods. , 2001, Physics in medicine and biology.

[3]  R. Kruger,et al.  Photoacoustic ultrasound (PAUS)--reconstruction tomography. , 1995, Medical physics.

[4]  Kexin Xu,et al.  A photoacoustic tomography system for imaging of biological tissues , 2005 .

[5]  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.

[6]  Xu Xiao Photoacoustic imaging in biomedicine , 2008 .

[7]  M. Entman,et al.  Myocardial ischemia and reperfusion: a murine model. , 1995, The American journal of physiology.

[8]  Lihong V. Wang,et al.  Photoacoustic tomography of a nanoshell contrast agent in the in vivo rat brain , 2004 .

[9]  Günther Paltauf,et al.  Photoacoustic microtomography using optical interferometric detection. , 2010, Journal of biomedical optics.

[10]  M. Kawasuji,et al.  Near-infrared monitoring of myocardial oxygenation during ischemic preconditioning. , 2000, The Annals of thoracic surgery.

[11]  Zhuang Liu,et al.  Carbon nanotubes as photoacoustic molecular imaging agents in living mice. , 2008, Nature nanotechnology.

[12]  M. Fishbein,et al.  The histopathologic evolution of myocardial infarction. , 1978, Chest.

[13]  A. Tam Applications of photoacoustic sensing techniques , 1986 .

[14]  Andrew G. Glen,et al.  APPL , 2001 .

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