Title :
Development of a simulation environment for Cerenkov luminescence imaging
Author :
Pagliazzi, Marco ; Ciarrocchi, Esther ; Del Guerra, Alberto ; Belcari, Nicola ; Boschi, Federico ; Spinelli, Antonello E.
Author_Institution :
Med. Phys. Dept., San Raffaele Sci. Inst., Milan, Italy
fDate :
Oct. 27 2013-Nov. 2 2013
Abstract :
In vivo Cerenkov luminescence imaging (CLI) is a demanding application requiring advanced pre-clinical small animal optical imaging devices. Here we propose a Monte Carlo based simulation workflow aimed to improve the development of an efficient Cerenkov optical imager for small animals. Our work makes use of a modular approach by considering open source, freely available or custom built software to solve the forward light propagation problem from source to detector in the following steps: i) simulation of the efficiency of Cerenkov light production of beta-emitting radionuclide in tissue using GEANT4 ii) optical transport of the simulated emitted photons through a precise mouse CT-segmented model using Molecular Optical Simulation Environment (MOSE), iii) free space transport of light from the mouse surface to a CCD sensor and simulation of the system response. Results showed the effects of the choice of lens and sensor based on system characteristics. An internal 90-Y source was simulated considering a mouse phantom and the Cerenkov light detection by a CCD. We conclude that the modular approach presented in this work combines the strengths of the different simulation codes used and thus provides a complete work frame for optical simulations.
Keywords :
CCD image sensors; Cherenkov radiation; Monte Carlo methods; bio-optics; biological tissues; biomedical optical imaging; light propagation; luminescence; medical computing; phantoms; public domain software; CCD sensor; Cerenkov light detection; Cerenkov light production; Cerenkov optical imager development; GEANT4; MOSE; Molecular Optical Simulation Environment; Monte Carlo based simulation workflow; advanced preclinical small animal optical imaging devices; beta-emitting radionuclide; biological tissue; custom built software; forward light propagation problem; free space transport; freely available software; in vivo Cerenkov luminescence imaging; internal 90-Y source; lens; modular approach; mouse CT-segmented model; mouse phantom; mouse surface; open source software; optical transport; simulated emitted photons; simulation codes; simulation environment; system characteristics; system response simulation; Biomedical optical imaging; Mice; Noise; Optical attenuators; Optical imaging; Optical sensors; Production;
Conference_Titel :
Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2013 IEEE
Conference_Location :
Seoul
Print_ISBN :
978-1-4799-0533-1
DOI :
10.1109/NSSMIC.2013.6829367