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Feasibility of a portable PET system for interactive point-of-care (PoC) PET and ultrasound imaging.

Created on 14 Aug 2026

Authors

Samarth Aggarwal, Ling Cai, Suranjana Samanta, Yunlai Chen, Lindsey Hauck, Aaron Qi, Sergey Komarov, Quing Zhu, Vikas Prasad, Richard Laforest, Joseph A O'Sullivan, Yuan-Chuan Tai

Published in

Medical physics. Volume 53. Issue 8. Pages e70610.

Abstract

Positron emission tomography (PET) is a molecular imaging technology that has been used for detection and staging of diseases, and patient stratification to identify candidates for molecularly targeted drugs. Clinical PET/CT scanners are optimized for whole-body diagnostic imaging instead of real-time guidance of interventional procedures or point-of-care (PoC) imaging applications. With rapid advances in novel radio-theranostics, there is growing interest in versatile, accessible molecular imaging tools.
This study evaluates the feasibility of a compact PET device integrated with a clinical ultrasound (US) system to enhance the utility of molecular imaging in PoC settings. Key features being evaluated include: (1) image quality from a compact system with limited angle tomography; (2) interactive scanning to provide visual feedback; and (3) near real-time PET image reconstruction as data is being acquired.
The prototype PoC-PET system features a robotic arm (Kuka KR 10 R1100 sixx), a rotation stage, and eight time-of-flight (TOF) PET detector modules mounted on a trolley. The detectors comprise Lutetium Oxy-orthosilicate (LSO) arrays, silicon photomultiplier (SiPM) arrays, and front-end electronics. An optional US transducer is integrated between two PET detectors, forming a hybrid PET/US probe. The system acquires data in list-mode and reconstructs PET images using a GPU-accelerated list-mode maximum-likelihood expectation-maximization (MLEM) algorithm incorporating time-of-flight (TOF) information. Detector characterization and calibration were performed using a planar source containing 64Cu solution. A tumor phantom containing spherical lesions of different diameters (ranging from 3.3 mm to 11.4 mm) was filled with 18FDG solution with a tumor-to-background activity concentration ratio of 20:1. Images from the PoC-PET prototype are compared to reference images from a clinical PET/CT scanner (Siemens Biograph Vision). Additionally, an ultrasound-compatible silicone phantom containing 64Cu solution was imaged by the PoC-PET device and a clinical ultrasound scanner to compare the hybrid PET/US images and conventional PET/CT images. Lastly, Monte Carlo (MC) simulations were conducted to evaluate the feasibility of a scaled-up portable PET device for imaging organs in humans.
The TOF-PET detectors in the system have an energy resolution of 10.4 ± 0.4% full-width-at-half-maximum (FWHM) for 511 keV gamma-rays and a coincidence resolving time (CRT) of ∼267 ± 12 ps FWHM. Initial imaging results indicate that the compact PoC-PET prototype can produce PET images with a resolution that closely approximates clinical PET/CT resolution after data were acquired from 3 to 4 angles. The integrated PET/US images provide both molecular and structural visualization, matching the fidelity of conventional PET/CT systems. MC simulations show reconstructed PET images with insignificant artifacts for head-and-neck and torso imaging of humans using the scaled-up PoC-PET scanner.
A hybrid PET/US device for molecular imaging at PoC settings is feasible. Robotic-assisted scanning combined with TOF-PET detectors and list-mode image reconstruction enables high-quality imaging comparable to traditional PET/CT systems for any organ-of-interest. Real-time image reconstruction and automated fusion will support multi-modal interactive molecular imaging with visual feedback in the future.

PMID:
42598768
Bibliographic data and abstract were imported from PubMed on 14 Aug 2026.

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