Motion simulation of radio-labeled cells in whole-body positron emission tomography.

Marquardt, N; Hengsbach, T; Mauritz, M; Wirth, B; Schäfers, K

Forschungsartikel (Zeitschrift) | Peer reviewed

Zusammenfassung

Cell tracking is a subject of active research gathering great interest in medicine and biology. Positron emission tomography (PET) is well suited for tracking radio-labeled cells in vivo due to its exceptional sensitivity and whole-body capability. For validation, ground-truth data are desirable that realistically mimic the flow of cells in a clinical situation. This study develops a workflow (CeFloPS) for simulating moving radio-labeled cells in a human phantom. From the XCAT phantom, the blood vessels are reduced to nodal networks along which cells can move and distribute to organs and tissues. The movement is directed by the blood flow, which is calculated in each node using the Hagen-Poiseuille equation and Kirchhoff's laws assuming laminar flow. Organs are voxelized and movement of cells from artery entry to vein exit is generated via a biased 3D random walk. The probabilities of cells moving or remaining in tissues are derived from rate constants of tracer kinetic-based compartment modeling. PET listmode data is generated using the Monte-Carlo simulation framework GATE based on the definition of a large-body PET scanner with cell paths as moving radioactive sources and the XCAT phantom providing attenuation data. From the flow simulation of 100,000 cells, 100 sample cells were further processed by GATE and listmode data was reconstructed into images for comparison. As demonstrated by comparisons of simulated and reconstructed cell distributions, CeFloPS is capable of simulating cell behavior in whole-body PET. It achieves this simulation in a way that is anatomically and physiologically reasonable, thereby providing valuable data for the development and validation of cell tracking algorithms.

Details zur Publikation

FachzeitschriftIEEE Transactions on Medical Imaging
Jahrgang / Bandnr. / VolumePP
StatusVeröffentlicht
Veröffentlichungsjahr2025 (26.09.2025)
Sprache, in der die Publikation verfasst istEnglisch
DOI10.1109/TMI.2025.3614767
Stichwörterpositron emission tomography; image reconstruction; cell flow simulation; whole body

Autor*innen der Universität Münster

Marquardt, Nils
European Institute of Molecular Imaging (EIMI)
Mauritz, Marco Jonas
Institut für Mathematische Stochastik
Schäfers, Klaus
European Institute of Molecular Imaging (EIMI)
Wirth, Benedikt
Professur für Biomedical Computing/Modelling (Prof. Wirth)