Modeling prompt gamma (PG) emission, detection and imaging in real patient anatomy using a novel Compton camera for dose verification in proton therapy

dc.contributor.authorSharma, V R
dc.contributor.authorJiang, Z
dc.contributor.authorMossahebi, S
dc.contributor.authorShakeri, Ehsan
dc.contributor.authorChalise, A
dc.contributor.authorGobbert, Matthias
dc.contributor.authorPeterson, S W
dc.contributor.authorPolf, J C
dc.contributor.authorRen, L
dc.date.accessioned2026-03-26T14:26:21Z
dc.date.issued2025-06-10
dc.description.abstractObjective. Prompt gamma (PG) imaging is a promising modality for proton dose verification. Currently, there is a lack of effective tools to investigate the entire PG imaging process in patient anatomy, from PG emission to camera detection and image reconstruction, to evaluate and optimize its efficacy for dose verification in proton therapy. Approach. To address this gap, we developed a Monte-Carlo package, POLARIS J Monte Carlo (PJ-MC), that simulates the entire PG emission and imaging workflow in patient anatomy. We utilized Geant4 classes and G4-ancillary tools, employing the DCMTK external tool with G4PhantomParameterisation to convert patient CT data into voxelized geometries. Proton beams were modeled based on medical physics commissioning data. A novel two-stage POLARIS-J3 Compton-Camera was simulated under the patient couch for recording total, double, and triple scattered PG signals. Proton maximum range calculations from the PJ-MC are compared with dose calculations from a clinical treatment planning system. The detected PG signals data in the simulation were used to reconstruct PG images using Kernel- Weighted-Back-Projection algorithm. Main results. Analysis of gamma energy distribution showed a decay pattern with clear emission lines from nuclear reactions involving oxygen, carbon, nitrogen, and calcium. Neutron-induced reactions contribute significantly less-by an order of magnitude-compared to proton-induced reactions in various tissues. Mean absolute percentage error analysis showed that PG range verification was more stable when considering the range at 80 or 50 of Dₘₐₓ, as opposed to the range at the Dₘₐₓ, where energy gating slightly improves accuracy but may reduce localization due to photon loss. Results showed that patient anatomy can impact the location of hot spot in the PG images, affecting its accuracy for localizing Bragg peak. Significance. In summary, our simulation package provides additional insights into PG emission and imaging in patient anatomy and serves as a robust tool for evaluating and optimizing PG imaging, enhancing its precision for dose verification in proton therapy.
dc.description.sponsorshipV R S, J C P, L R acknowledge the support from National Institutes of Health under Grants No. R01-CA279013 and R01-EB032680. The simulated data used in this work was generated using the UMBC High Performance Computing Facility (hpcf.umbc.edu) and the financial contributions from NIH, NSF, CIRC, and UMBC. All authors declare that they have no known conflicts of interest in terms of competing financial interests or personal relationships that could have an influence or are relevant to the work reported in this paper.
dc.description.urihttps://iopscience.iop.org/article/10.1088/1361-6560/addf0d
dc.format.extent17 pages
dc.genrejournal articles
dc.genrepostprints
dc.identifierdoi:10.13016/m26ytk-dtgb
dc.identifier.citationSharma, V. R., Z. Jiang, S. Mossahebi, et al. “Modeling Prompt Gamma (PG) Emission, Detection and Imaging in Real Patient Anatomy Using a Novel Compton Camera for Dose Verification in Proton Therapy.” Physics in Medicine & Biology 70, no. 12 (2025): 125004. https://doi.org/10.1088/1361-6560/addf0d.
dc.identifier.urihttps://doi.org/10.1088/1361-6560/addf0d
dc.identifier.urihttp://hdl.handle.net/11603/42215
dc.language.isoen
dc.publisherIOP
dc.relation.isAvailableAtThe University of Maryland, Baltimore County (UMBC)
dc.relation.ispartofUMBC Student Collection
dc.relation.ispartofUMBC Mathematics and Statistics Department
dc.relation.ispartofUMBC Faculty Collection
dc.rightsThis Accepted Manuscript is available for reuse under a CC BY-NC-ND licence after the 12 month embargo period provided that all the terms of the licence are adhered to.
dc.subjectUMBC High Performance Computing Facility (HPCF)
dc.titleModeling prompt gamma (PG) emission, detection and imaging in real patient anatomy using a novel Compton camera for dose verification in proton therapy
dc.typeText
dcterms.creatorhttps://orcid.org/0000-0003-1745-2292
dcterms.creatorhttps://orcid.org/0009-0005-8779-3289

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