DocumentCode
32384
Title
Optimization of a Model Corrected Blood Input Function From Dynamic FDG-PET Images of Small Animal Heart In Vivo
Author
Min Zhong ; Kundu, Bijoy K.
Author_Institution
Dept. of Phys., Univ. of Virginia, Charlottesville, VA, USA
Volume
60
Issue
5
fYear
2013
fDate
Oct. 2013
Firstpage
3417
Lastpage
3422
Abstract
Quantitative evaluation of dynamic Positron Emission Tomography (PET) of mouse heart in vivo is challenging due to the small size of the heart and limited intrinsic spatial resolution of the PET scanner. Here, we optimized a compartment model which can simultaneously correct for spill over and partial volume effects for both blood pool and the myocardium, compute kinetic rate parameters and generate model corrected blood input function (MCBIF) from ordered subset expectation maximization-maximum a posteriori (OSEM-MAP) cardiac and respiratory gated 18F-FDG PET images of mouse heart with attenuation correction in vivo, without any invasive blood sampling. Arterial blood samples were collected from a single mouse to indicate the feasibility of the proposed method. In order to establish statistical significance, venous blood samples from n=6 mice were obtained at 2 late time points, when SP contamination from the tissue to the blood is maximum. We observed that correct bounds and initial guesses for the PV and SP coefficients accurately model the wash-in and wash-out dynamics of the tracer from mouse blood. The residual plot indicated an average difference of about 1.7% between the blood samples and MCBIF. The downstream rate of myocardial FDG influx constant, Ki (0.15±0.03 min-1), compared well with Ki obtained from arterial blood samples (P=0.716). In conclusion, the proposed methodology is not only quantitative but also reproducible.
Keywords
blood; blood vessels; cardiology; medical image processing; optimisation; physiological models; pneumodynamics; positron emission tomography; statistical analysis; OSEM-MAP cardiac 18F-FDG PET images; PV coefficients; SP coefficients; SP contamination; arterial blood samples; attenuation correction in vivo; blood pool; compartment model; dynamic FDG-PET images; dynamic positron emission tomography; kinetic rate parameters; model corrected blood input function; mouse blood; mouse heart in vivo; myocardial FDG influx constant; myocardium; optimization; ordered subset expectation maximization-maximum a posteriori cardiac 18F-FDG PET images; partial volume effects; respiratory gated PET images; small animal heart in vivo; spatial resolution; statistical significance; tissue; venous blood samples; Blood; Kinetic theory; Logic gates; Mathematical model; Mice; Myocardium; Positron emission tomography; Blood input function; FDG-PET; OSEM-MAP; cardiac and respiratory gating; small animals; tracer kinetic modeling;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2013.2269032
Filename
6557092
Link To Document