Absolute Quantification for Small-Animal PET

被引:0
|
作者
Keereman, Vincent [1 ]
Van Holen, Roel [1 ]
Vanhove, Christian [1 ]
Mollet, Pieter [1 ]
Vandenberghe, Stefaan [1 ]
机构
[1] Univ Ghent, Dept Elect & Informat Syst, IBBT IBiTech, MEDISIP, B-9000 Ghent, Belgium
关键词
micro-PET; micro-CT; quantification; attenuation correction; POSITRON-EMISSION-TOMOGRAPHY; TUMOR RESPONSE;
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Quantification is important in preclinical PET studies. To achieve absolute quantification, an accurate reconstruction algorithm is necessary. Such an algorithm includes corrections for different effects such as geometric sensitivity of the scanner, detection efficiency, attenuation, scatter and random coincidences. In this work we present a method for performing absolute quantification on the LabPET system. All acquisitions were done on a GE Triumph system. This tri-modality system consists of a micro-PET (LabPET), micro-CT (X-O) and micro-SPECT (X-SPECT) scanner. Three PET scans were done. In the first scan 5 vials with different activity concentrations of F-18-FDG were scanned. The total activity inside the scanner was 80 MBq. The second scan was performed after 4 hours when the total activity in the scanner had decayed to 20 MBq. In the third scan 3 vials and 1 sphere were scanned with a total activity of 20 MBq. Before each PET scan a micro-CT scan was acquired. Point sources with a known activity were placed inside the field of view. The counts obtained in these point sources are used to obtain a correction factor for absolute sensitivity. Reconstruction was done using a 3D ML-EM reconstruction with micro-CT based attenuation correction. VOIs were drawn over the vials and the sphere in the reconstructed images. The total activity in the VOIs was calculated using the correction factor for absolute sensitivity. It was compared to the activity measured in a dose calibrator. The average quantification error was 56 %, 6.4 % and 0.6 % for the first, second and third scan. The high error in the first scan is explained by count rate effects, as 80 MBq can be considered a high activity level for this system. The feasibility of absolute quantification on the LabPET system was demonstrated. When the count rate is below 20 MBq absolute quantification is possible with an average quantification error smaller than 6.4 %.
引用
收藏
页码:3715 / 3719
页数:5
相关论文
共 50 条
  • [21] Advances in research - Small-animal imaging of tumour proliferation with PET
    Barthel, H
    Price, P
    Aboagye, EO
    [J]. LANCET ONCOLOGY, 2004, 5 (02): : 100 - 100
  • [22] Reconstruction algorithm with resolution deconvolution in a small-animal PET imager
    Tsyganov, EN
    Zinchenko, AI
    Slavine, NV
    Antich, PP
    Seliounine, SY
    Oz, OK
    Kulkami, PV
    Lewis, MA
    Mason, RP
    Parkey, RW
    [J]. SMALL ANIMAL SPECT IMAGING, 2005, : 163 - 175
  • [23] System Design Considerations for Collimation in a Small-Animal PET Scanner
    Li, Yusheng
    Matej, Samuel
    Karp, Joel S.
    Metzler, Scott D.
    [J]. 2012 IEEE NUCLEAR SCIENCE SYMPOSIUM AND MEDICAL IMAGING CONFERENCE RECORD (NSS/MIC), 2012, : 2838 - 2842
  • [24] Spatial Resolution and Sensitivity of the Inveon Small-Animal PET Scanner
    Visser, Eric P.
    Disselhorst, Jonathan A.
    Brom, Maarten
    Laverman, Peter
    Gotthardt, Martin
    Oyen, Wim J. G.
    Boerman, Otto C.
    [J]. JOURNAL OF NUCLEAR MEDICINE, 2009, 50 (01) : 139 - 147
  • [25] Characterization of a One-Ring Small-Animal PET Prototype
    Miranda, A.
    [J]. MEDICAL PHYSICS, 2013, 40 (06)
  • [26] Molecular imaging for transgenic mice using small-animal PET
    Maeda, Jun
    Ji, Bin
    Higuchi, Makoto
    Suhara, Tetsuya
    [J]. NEUROSCIENCE RESEARCH, 2008, 61 : S18 - S18
  • [27] Small-Animal PET: What Is It, and Why Do We Need It?
    Yao, Rutao
    Lecomte, Roger
    Crawford, Elpida S.
    [J]. JOURNAL OF NUCLEAR MEDICINE TECHNOLOGY, 2012, 4 (03) : 157 - 165
  • [28] Molecular imaging in neuroscience research with small-animal PET in rodents
    Xi, Wang
    Tian, Mei
    Zhang, Hong
    [J]. NEUROSCIENCE RESEARCH, 2011, 70 (02) : 133 - 143
  • [29] Quantification of Cerebral Glucose Metabolic Rate in Mice Using 18F-FDG and Small-Animal PET
    Yu, Amy S.
    Lin, Hong-Dun
    Huang, Sung-Cheng
    Phelps, Michael E.
    Wu, Hsiao-Ming
    [J]. JOURNAL OF NUCLEAR MEDICINE, 2009, 50 (06) : 966 - 973
  • [30] SMALL-ANIMAL TRAUMATIZER
    FRANCIS, RS
    [J]. JOURNAL OF APPLIED PHYSIOLOGY, 1985, 59 (02) : 658 - 659