scholarly journals Iterative framework for image registration and partial volume correction in brain positron emission tomography

2020 ◽  
Vol 13 (4) ◽  
pp. 348-357
Author(s):  
Keisuke Matsubara ◽  
◽  
Masanobu Ibaraki ◽  
Miho Shidahara ◽  
Toshibumi Kinoshita

AbstractImprecise registration between positron emission tomography (PET) and anatomical magnetic resonance (MR) images is a critical source of error in MR imaging-guided partial volume correction (MR-PVC). Here, we propose a novel framework for image registration and partial volume correction, which we term PVC-optimized registration (PoR), to address imprecise registration. The PoR framework iterates PVC and registration between uncorrected PET and smoothed PV-corrected images to obtain precise registration. We applied PoR to the [11C]PiB PET data of 92 participants obtained from the Alzheimer’s Disease Neuroimaging Initiative database and compared the registration results, PV-corrected standardized uptake value (SUV) and its ratio to the cerebellum (SUVR), and intra-region coefficient of variation (CoV) between PoR and conventional registration. Significant differences in registration of as much as 2.74 mm and 3.02° were observed between the two methods (effect size <  − 0.8 or > 0.8), which resulted in considerable SUVR differences throughout the brain, reaching a maximal difference of 62.3% in the sensory motor cortex. Intra-region CoV was significantly reduced using the PoR throughout the brain. These results suggest that PoR reduces error as a result of imprecise registration in PVC and is a useful method for accurately quantifying the amyloid burden in PET.

2009 ◽  
Vol 36 (7) ◽  
pp. 3040-3049 ◽  
Author(s):  
Elisabetta De Bernardi ◽  
Elena Faggiano ◽  
Felicia Zito ◽  
Paolo Gerundini ◽  
Giuseppe Baselli

2016 ◽  
Vol 61 (22) ◽  
pp. 7975-7993 ◽  
Author(s):  
Benjamin A Thomas ◽  
Vesna Cuplov ◽  
Alexandre Bousse ◽  
Adriana Mendes ◽  
Kris Thielemans ◽  
...  

1997 ◽  
Vol 17 (1) ◽  
pp. 73-79 ◽  
Author(s):  
Hitoshi Fujita ◽  
Ernst Meyer ◽  
David C. Reutens ◽  
Hiroto Kuwabara ◽  
Alan C. Evans ◽  
...  

When used to measure blood flow, water leaves a residue in the vascular bed, which may contribute to the calculation of increased blood flow during functional activation of brain tissue. To assess the magnitude of this contribution with the two-compartment positron emission tomography (PET) method, we mapped the water clearance ( K1) of the brain as an index of cerebral blood flow (CBF) and the apparent vascular distribution of nonextracted H215O ( Vo). The latter map represented mainly the cerebral arterial and arteriolar volume. We also prepared subtraction maps (Δ K1, Δ Vo) of the response to vibrotactile stimulation of the fingertips of the right hand of six normal volunteers. Using magnetic resonance (MR) images of all subjects, the data were rendered into Talairach's stereotaxic coordinates and the averaged subtraction images (activation minus baseline) merged with the corresponding averaged MRI image. The Δ K1 map revealed the expected response in the primary sensory hand area; the Δ Vo response was located about 13 mm more anteriorly, close to the central fissure, most likely reflecting changes of the arteries feeding the primary sensory hand area. We conclude that cerebral perfusion and cerebrovascular responses to vibrotactile stimulation may occur in disparate locations that can be identified separately by using the two-compartment method.


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