Tomographic bioluminescence imaging by use of a combined optical-PET (OPET) system: a computer simulation feasibility study
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- 24 August 2005
- journal article
- research article
- Published by IOP Publishing in Physics in Medicine & Biology
- Vol. 50 (17) , 4225-4241
- https://doi.org/10.1088/0031-9155/50/17/021
Abstract
The feasibility and limits in performing tomographic bioluminescence imaging with a combined optical-PET (OPET) system were explored by simulating its image formation process. A micro-MRI based virtual mouse phantom was assigned appropriate tissue optical properties to each of its segmented internal organs at wavelengths spanning the emission spectrum of the firefly luciferase at 37 degrees C. The TOAST finite-element code was employed to simulate the diffuse transport of photons emitted from bioluminescence sources in the mouse. OPET measurements were simulated for single-point, two-point and distributed bioluminescence sources located in different organs such as the liver, the kidneys and the gut. An expectation maximization code was employed to recover the intensity and location of these simulated sources. It was found that spectrally resolved measurements were necessary in order to perform tomographic bioluminescence imaging. The true location of emission sources could be recovered if the mouse background optical properties were known a priori. The assumption of a homogeneous optical property background proved inadequate for describing photon transport in optically heterogeneous tissues and led to inaccurate source localization in the reconstructed images. The simulation results pointed out specific methodological challenges that need to be addressed before a practical implementation of OPET-based bioluminescence tomography is achieved.Keywords
This publication has 46 references indexed in Scilit:
- Development of a 4-D digital mouse phantom for molecular imaging researchMolecular Imaging & Biology, 2004
- Optical biopsy of bone tissue: a step toward the diagnosis of bone pathologiesJournal of Biomedical Optics, 2004
- In vivooptical characterization of human tissues from 610 to 1010 nm by time-resolved reflectance spectroscopyPhysics in Medicine & Biology, 2001
- Continuous changes in the optical properties of liver tissue during laser‐induced interstitial thermotherapyLasers in Surgery and Medicine, 2001
- A phantom with tissue‐like optical properties in the visible and near infrared for use in photomedicineLasers in Surgery and Medicine, 2001
- Three-dimensional diffuse optical mammography with ultrasound localization in a human subjectJournal of Biomedical Optics, 2000
- Physiological Parameter Values for Physiologically Based Pharmacokinetic ModelsToxicology and Industrial Health, 1997
- Time-gated transillumination of biological tissues and tissuelike phantomsApplied Optics, 1994
- Measurement of the optical properties of the skull in the wavelength range 650-950 nmPhysics in Medicine & Biology, 1993
- Solid angle subtended by a rectangular slitNuclear Instruments and Methods, 1971