Performance Characteristics of the NeuroEXPLORER, a Next-Generation Human Brain PET/CT Imager

被引:32
作者
Li, Hongdi [1 ]
Badawi, Ramsey D. [2 ]
Cherry, Simon R. [2 ]
Fontaine, Kathryn [3 ]
He, Liuchun [4 ]
Henry, Shannan [3 ]
Hillmer, Ansel T. [3 ]
Hu, Lingzhi [1 ]
Khattar, Nikkita [3 ]
Leung, Edwin K. [1 ,2 ]
Li, Tiantian [1 ,2 ]
Li, Yusheng [1 ]
Liu, Chi [3 ]
Liu, Peng [4 ]
Lu, Zhenrui [4 ]
Majewski, Stanislaw [2 ]
Matuskey, David [3 ]
Morris, Evan D. [3 ]
Mulnix, Tim [3 ]
Omidvari, Negar [2 ]
Samanta, Suranjana [1 ]
Selfridge, Aaron [1 ,2 ]
Sun, Xishan [1 ]
Toyonaga, Takuya [3 ]
Volpi, Tommaso [3 ]
Zeng, Tianyi [3 ]
Jones, Terry [2 ]
Qi, Jinyi [2 ]
Carson, Richard E. [3 ]
机构
[1] United Imaging Healthcare North Amer, Houston, TX USA
[2] Univ Calif Davis, Davis, CA USA
[3] Yale Univ, New Haven, CT 06520 USA
[4] United Imaging Healthcare, Shanghai, Peoples R China
关键词
brain PET; NEMA; NeuroEXPLORER; DOI; high resolution; RESOLUTION; TOMOGRAPHY;
D O I
10.2967/jnumed.124.267767
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
The collaboration of Yale, the University of California, Davis, and United Imaging Healthcare has successfully developed the NeuroEXPLORER, a dedicated human brain PET imager with high spatial resolution, high sensitivity, and a built-in 3-dimensional camera for markerless continuous motion tracking. It has high depth-of-interaction and time-of-flight resolutions, along with a 52.4-cm transverse field of view (FOV) and an extended axial FOV (49.5 cm) to enhance sensitivity. Here, we present the physical characterization, performance evaluation, and first human images of the NeuroEXPLORER. Methods: Measurements of spatial resolution, sensitivity, count rate performance, energy and timing resolution, and image quality were performed adhering to the National Electrical Manufacturers Association (NEMA) NU 2-2018 standard. The system's performance was demonstrated through imaging studies of the Hoffman 3-dimensional brain phantom and the mini-Derenzo phantom. Initial 18F-FDG images from a healthy volunteer are presented. Results: With filtered backprojection reconstruction, the radial and tangential spatial resolutions (full width at half maximum) averaged 1.64, 2.06, and 2.51 mm, with axial resolutions of 2.73, 2.89, and 2.93 mm for radial offsets of 1, 10, and 20 cm, respectively. The average timeof-flight resolution was 236 ps, and the energy resolution was 10.5%. NEMA sensitivities were 46.0 and 47.6 kcps/MBq at the center and 10-cm offset, respectively. A sensitivity of 11.8% was achieved at the FOV center. The peak noise-equivalent count rate was 1.31 Mcps at 58.0 kBq/mL, and the scatter fraction at 5.3 kBq/mL was 36.5%. The maximum count rate error at the peak noise-equivalent count rate was less than 5%. At 3 iterations, the NEMA image-quality contrast recovery coefficients varied from 74.5% (10-mm sphere) to 92.6% (37-mm sphere), and background variability ranged from 3.1% to 1.4% at a contrast of 4.0:1. An example human brain 18F-FDG image exhibited very high resolution, capturing intricate details in the cortex and subcortical structures. Conclusion: The NeuroEXPLORER offers high sensitivity and high spatial resolution. With its long axial length, it also enables high-quality spinal cord imaging and image-derived input functions from the carotid arteries. These performance enhancements will substantially broaden the range of human brain PET paradigms, protocols, and thereby clinical research applications.
引用
收藏
页码:1320 / 1326
页数:7
相关论文
共 31 条
[1]   Performance evaluation of VRAIN: a brain-dedicated PET with a hemispherical detector arrangement [J].
Akamatsu, Go ;
Takahashi, Miwako ;
Tashima, Hideaki ;
Iwao, Yuma ;
Yoshida, Eiji ;
Wakizaka, Hidekatsu ;
Kumagai, Masaaki ;
Yamashita, Taichi ;
Yamaya, Taiga .
PHYSICS IN MEDICINE AND BIOLOGY, 2022, 67 (22)
[2]   First Human Imaging Studies with the EXPLORER Total-Body PET Scanner [J].
Badawi, Ramsey D. ;
Shi, Hongcheng ;
Hu, Pengcheng ;
Chen, Shuguang ;
Xu, Tianyi ;
Price, Patricia M. ;
Ding, Yu ;
Spencer, Benjamin A. ;
Nardo, Lorenzo ;
Liu, Weiping ;
Bao, Jun ;
Jones, Terry ;
Li, Hongdi ;
Cherry, Simon R. .
JOURNAL OF NUCLEAR MEDICINE, 2019, 60 (03) :299-303
[3]   PET/CT in diagnosis of dementia [J].
Berti, Valentina ;
Pupi, Alberto ;
Mosconi, Lisa .
PET/CT APPLICATIONS IN NON-NEOPLASTIC CONDITIONS, 2011, 1228 :81-92
[4]  
Bharkhada D, 2017, IEEE NUCL SCI S MEDI
[5]   Development of Dedicated Brain PET Imaging Devices: Recent Advances and Future Perspectives [J].
Catana, Ciprian .
JOURNAL OF NUCLEAR MEDICINE, 2019, 60 (08) :1044-1052
[6]   Performance evaluation of the ECAT HRRT: an LSO-LYSO double layer high resolution, high sensitivity scanner [J].
de Jong, Hugo W. A. M. ;
van Velden, Floris H. P. ;
Kloet, Reina W. ;
Buijs, Fred L. ;
Boellaard, Ronald ;
Lammertsma, Adriaan A. .
PHYSICS IN MEDICINE AND BIOLOGY, 2007, 52 (05) :1505-1526
[7]   Exact and approximate rebinning algorithms for 3-D PET data [J].
Defrise, M ;
Kinahan, PE ;
Townsend, DW ;
Michel, C ;
Sibomana, M ;
Newport, DF .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 1997, 16 (02) :145-158
[8]   Development and evaluation of a new high-TOF-resolution all-digital brain PET system [J].
Fang, Lei ;
Zhang, Bo ;
Li, Bingxuan ;
Zhang, Xiangsong ;
Zhou, Xiaoyun ;
Yang, Jigang ;
Li, Ang ;
Shi, Xinchong ;
Liu, Yuqing ;
Kreissl, Michael ;
D'Ascenzo, Nicola ;
Xiao, Peng ;
Xie, Qingguo .
PHYSICS IN MEDICINE AND BIOLOGY, 2024, 69 (02)
[9]  
Feng T, 2022, Depth-of-interaction reconstruction in NeuroEXPLORER
[10]   Performance Simulation of an Ultrahigh Resolution Brain PET Scanner Using 1.2-mm Pixel Detectors [J].
Gaudin, Emilie ;
Toussaint, Maxime ;
Thibaudeau, Christian ;
Pallie, Maxime ;
Fontaine, Rejean ;
Lecomte, Roger .
IEEE TRANSACTIONS ON RADIATION AND PLASMA MEDICAL SCIENCES, 2019, 3 (03) :334-342