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Whole-body PET/MRI of Pediatric Patients: The Details That Matter
Published on: December 19, 2017
Quantitative Evaluation of Segmentation- and Atlas-Based Attenuation Correction for PET/MR on Pediatric Patients
Ilja Bezrukov1, Holger Schmidt2, Sergios Gatidis2
1Werner Siemens Imaging Center, Department of Preclinical Imaging and Radiopharmacy, Eberhard-Karls University Tübingen, Tübingen, Germany Department of Empirical Inference, Max Planck Institute for Intelligent Systems, Tübingen, Germany; and ilja.bezrukov@med.uni-tuebingen.de.
Insights
A pediatric atlas improved PET/MR attenuation correction accuracy in children, reducing errors in bone imaging. This enhances quantitative accuracy for pediatric PET scans, especially in bone marrow and femur regions.
Area of Science:
- Medical Imaging
- Radiology
- Nuclear Medicine
Background:
- Combined PET/MR imaging is crucial for pediatric applications.
- Existing MR-based attenuation correction (AC) methods are not optimized for pediatric patients.
- Variability in pediatric anatomy and attenuation coefficients impacts AC accuracy.
Purpose of the Study:
- To assess the impact of inter- and intrapatient variability on pediatric PET/MR AC.
- To evaluate the quantification accuracy of MR-based AC methods with and without bone prediction using adult and pediatric atlases.
- To compare the performance of SEGbase, SEGwBONEad, and SEGwBONEpe methods on pediatric PET data.
Main Methods:
- Assessed attenuation coefficient variability in pediatric and adult CT datasets.
- Evaluated anatomic variability on attenuation maps generated using adult and pediatric atlases.
- Quantified PET accuracy using physiologic and elevated uptake regions in pediatric patient data.
Main Results:
- Significant differences in attenuation coefficients were found between adult and pediatric lung and femur tissues.
- A pediatric atlas improved bone tissue attenuation map prediction and bone structure delineation.
- The SEGwBONEpe method reduced mean errors in bone marrow and femur-adjacent VOIs from -14%/-23% to 0%/-1%.
Conclusions:
- A dedicated pediatric atlas enhances MR-based AC in osseous regions for pediatric PET/MR imaging.
- Improved accuracy in bone regions reduces bias and enhances quantitative PET results.
- Further optimization for lung regions may require patient-specific attenuation coefficients.
Unlabelled:
Pediatric imaging is regarded as a key application for combined PET/MR imaging systems. Because existing MR-based attenuation-correction methods were not designed specifically for pediatric patients, we assessed the impact of 2 potentially influential factors: inter- and intrapatient variability of attenuation coefficients and anatomic variability. Furthermore, we evaluated the quantification accuracy of 3 methods for MR-based attenuation correction without (SEGbase) and with bone prediction using an adult and a pediatric atlas (SEGwBONEad and SEGwBONEpe, respectively) on PET data of pediatric patients.
Methods:
The variability of attenuation coefficients between and within pediatric (5-17 y, n = 17) and adult (27-66 y, n = 16) patient collectives was assessed on volumes of interest (VOIs) in CT datasets for different tissue types. Anatomic variability was assessed on SEGwBONEad/pe attenuation maps by computing mean differences to CT-based attenuation maps for regions of bone tissue, lungs, and soft tissue. PET quantification was evaluated on VOIs with physiologic uptake and on 80% isocontour VOIs with elevated uptake in the thorax and abdomen/pelvis. Inter- and intrapatient variability of the bias was assessed for each VOI group and method.
Results:
Statistically significant differences in mean VOI Hounsfield unit values and linear attenuation coefficients between adult and pediatric collectives were found in the lungs and femur. The prediction of attenuation maps using the pediatric atlas showed a reduced error in bone tissue and better delineation of bone structure. Evaluation of PET quantification accuracy showed statistically significant mean errors in mean standardized uptake values of -14% ± 5% and -23% ± 6% in bone marrow and femur-adjacent VOIs with physiologic uptake for SEGbase, which could be reduced to 0% ± 4% and -1% ± 5% using SEGwBONEpe attenuation maps. Bias in soft-tissue VOIs was less than 5% for all methods. Lung VOIs showed high SDs in the range of 15% for all methods. For VOIs with elevated uptake, mean and SD were less than 5% except in the thorax.
Conclusion:
The use of a dedicated atlas for the pediatric patient collective resulted in improved attenuation map prediction in osseous regions and reduced interpatient bias variation in femur-adjacent VOIs. For the lungs, in which intrapatient variation was higher for the pediatric collective, a patient- or group-specific attenuation coefficient might improve attenuation map accuracy. Mean errors of -14% and -23% in bone marrow and femur-adjacent VOIs can affect PET quantification in these regions when bone tissue is ignored.
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