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Publikationer (4 of 4) Visa alla publikationer
Arjunan, M., Sharma Shamurailatpam, D., Patro, K. C., Kaushik, S. & Krishnan, G. (2025). Influence of spatial redistribution of heterogeneities in proton beam characteristics. Physica medica (Testo stampato), 129, Article ID 104882.
Öppna denna publikation i ny flik eller fönster >>Influence of spatial redistribution of heterogeneities in proton beam characteristics
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2025 (Engelska)Ingår i: Physica medica (Testo stampato), ISSN 1120-1797, E-ISSN 1724-191X, Vol. 129, artikel-id 104882Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

Objectives: The purpose of this study was to investigate the fundamental properties of spot-scanning proton beams and compare them to Monte Carlo (MC) simulations, both with and without CT calibration, using spatially diverse combinations of materials. Methods: A heterogeneous phantom was created by spatially distributing titanium, wax, and thermocol to generate six scenarios of heterogeneous combinations. Proton pencil beams ranging in energy from 100 to 226.2 MeV were directed perpendicular to each heterogeneous combination, and the exit proton was measured using a Lynx scintillation detector and a Zebra Multi-Layer-Ionization-Chamber for depth dose and spot profile measurements, respectively. The identical measurement configuration was duplicated in the RayStation-TPS. The measured and simulated RayStation-MC beam characteristics were compared. Results: The results showed that at 100 MeV, the mean standard deviation of spot size was 5.66 ± 0.27 mm, while at 226.2 MeV, it rapidly decreased to 3.37 ± 0.07 mm. The physical phantom showed a larger perturbation difference between measurement and MC simulation than the virtual phantom. MC overestimates ranges up to 1.5 % in virtual phantoms, but underestimates ranges up to 5 % in physical phantoms. Range perturbations over 1 mm occurred in 35.7 % of virtual phantom measurements and in 85.7 % of physical phantom measurements. Conclusions: Despite using a CT artefact reduction approach and an accurate Monte-Carlo dose calculation algorithm, perturbations in proton characteristics were still observed. It is essential to be aware of the limits of the TPS in managing such heterogeneous combinations. It is recommended to perform more validation checks on heterogeneous combinations than on individual materials.

Nyckelord
Dose uncertainty, Pencil beam scanning, Proton, Proton Uncertainties
Nationell ämneskategori
Radiologi och bildbehandling
Identifikatorer
urn:nbn:se:su:diva-240483 (URN)10.1016/j.ejmp.2024.104882 (DOI)001397357100001 ()39752801 (PubMedID)2-s2.0-85213847609 (Scopus ID)
Tillgänglig från: 2025-03-11 Skapad: 2025-03-11 Senast uppdaterad: 2025-03-11Bibliografiskt granskad
Kaushik, S., Vatterodt, N., Ödén, J., Fredriksson, A., Korreman, S. S. & Toma-Daşu, I. (2025). Synthetic computed tomography techniques for adaptive proton therapy in head and neck cancers. Physics and Imaging in Radiation Oncology, 36, Article ID 100847.
Öppna denna publikation i ny flik eller fönster >>Synthetic computed tomography techniques for adaptive proton therapy in head and neck cancers
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2025 (Engelska)Ingår i: Physics and Imaging in Radiation Oncology, E-ISSN 2405-6316, Vol. 36, artikel-id 100847Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

Head and neck (HN) radiotherapy often requires corrective interventions. This study evaluated three methods for synthetic computed tomography (CT) generation for adaptive HN planning using cone-beam CT (CBCT) images. CBCT images for 15 patients were paired with same-day repeat CT scans and robustly optimized proton plans were recalculated. The anatomy-preserving virtual CT (APvCT) method utilized organs-at-risk as deformation controlling structures. APvCT and conventional virtual CT methods showed lower mean absolute errors in CT number values compared to corrected CBCT; however, all synthetic CT methods were found suitable for proton dose recalculation with gamma passing rates greater than 96.7% (2%, 2 mm).

Nyckelord
Synthetic CT, CBCT image correction, Adaptive proton therapy, Head and neck cancer
Nationell ämneskategori
Cancer och onkologi Annan fysik
Identifikatorer
urn:nbn:se:su:diva-248211 (URN)10.1016/j.phro.2025.100847 (DOI)001599165100001 ()2-s2.0-105018645826 (Scopus ID)
Tillgänglig från: 2025-10-17 Skapad: 2025-10-17 Senast uppdaterad: 2026-05-05Bibliografiskt granskad
Kaushik, S., Stützer, K., Ödén, J., Fredriksson, A. & Toma-Daşu, I. (2024). Adaptive intensity modulated proton therapy using 4D robust planning: a proof-of-concept for the application of dose mimicking approach. Physics in Medicine and Biology, 69(18), Article ID 185010.
Öppna denna publikation i ny flik eller fönster >>Adaptive intensity modulated proton therapy using 4D robust planning: a proof-of-concept for the application of dose mimicking approach
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2024 (Engelska)Ingår i: Physics in Medicine and Biology, ISSN 0031-9155, E-ISSN 1361-6560, Vol. 69, nr 18, artikel-id 185010Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

Objective. A four-dimensional robust optimisation (4DRO) is usually employed when the tumour respiratory motion needs to be addressed. However, it is computationally demanding, and an automated method is preferable for adaptive planning to avoid manual trial-and-error. This study proposes a 4DRO technique based on dose mimicking for automated adaptive planning. Approach. Initial plans for 4DRO intensity modulated proton therapy were created on an average CT for four patients with clinical target volume (CTV) in the lung, oesophagus, or pancreas, respectively. These plans were robustly optimised using three phases of four-dimensional computed tomography (4DCT) and accounting for setup and density uncertainties. Weekly 4DCTs were used for adaptive replanning, using a constant relative biological effectiveness (cRBE) of 1.1. Two methods were used: (1) template-based adaptive (TA) planning and (2) dose-mimicking-based adaptive (MA) planning. The plans were evaluated using variable RBE (vRBE) weighted doses and biologically consistent dose accumulation (BCDA). Main results. MA and TA plans had comparable CTV coverage except for one patient where the MA plan had a higher D98 and lower D2 but with an increased D2 in few organs at risk (OARs). CTV D98 deviations in non-adaptive plans from the initial plans were up to −7.2 percentage points (p.p.) in individual cases and −1.8 p.p. when using BCDA. For the OARs, MA plans showed a reduced mean dose and D2 compared to the TA plans, with few exceptions. The vRBE-weighted accumulated doses had a mean dose and D2 difference of up to 0.3 Gy and 0.5 Gy, respectively, in the OARs with respect to cRBE-weighted doses. Significance. MA plans indicate better performance in target coverage and OAR dose sparing compared to the TA plans in 4DRO adaptive planning. Moreover, MA method is capable of handling both forms of anatomical variation, namely, changes in density and relative shifts in the position of OARs.

Nationell ämneskategori
Cancer och onkologi
Identifikatorer
urn:nbn:se:su:diva-235451 (URN)10.1088/1361-6560/ad75e0 (DOI)001311892500001 ()39214132 (PubMedID)2-s2.0-85204164738 (Scopus ID)
Forskningsfinansiär
EU, Horisont 2020, 955956
Tillgänglig från: 2024-11-13 Skapad: 2024-11-13 Senast uppdaterad: 2025-05-12Bibliografiskt granskad
Kaushik, S., Ödén, J., Sharma, D. S., Fredriksson, A. & Toma-Dasu, I. (2024). Generation and evaluation of anatomy-preserving virtual CT for online adaptive proton therapy. Medical Physics, 51(3), 1536-1546
Öppna denna publikation i ny flik eller fönster >>Generation and evaluation of anatomy-preserving virtual CT for online adaptive proton therapy
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2024 (Engelska)Ingår i: Medical Physics, ISSN 0094-2405, E-ISSN 2473-4209, Vol. 51, nr 3, s. 1536-1546Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

Background: Daily CTs generated by CBCT correction are required for daily replanning in online-adaptive proton therapy (APT) to effectively deal with inter-fractional changes. Out of the currently available methods, the suitability of a daily CT generation method for proton dose calculation also depends on the anatomical site.

Purpose: We propose an anatomy-preserving virtual CT (APvCT) method as a hybrid method of CBCT correction, which is especially suitable for large anatomy deformations. The accuracy of the hybrid method was assessed by comparison with the corrected CBCT (cCBCT) and virtual CT (vCT) methods in the context of online APT.

Methods: Seventy-one daily CBCTs of four prostate cancer patients treated with intensity modulated proton therapy (IMPT) were converted to daily CTs using cCBCT, vCT, and the newly proposed APvCT method. In APvCT, planning CT (pCT) were mapped to CBCT geometry using deformable image registration with boundary conditions on controlling regions of interest (ROIs) created with deep learning segmentation on cCBCT. The relative frequency distribution (RFD) of HU, mass density and stopping power ratio (SPR) values were assessed and compared with the pCT. The ROIs in the APvCT and vCT were compared with cCBCT in terms of Dice similarity coefficient (DSC) and mean distance-to-agreement (mDTA). For each patient, a robustly optimized IMPT plan was created on the pCT and subsequent daily adaptive plans on daily CTs. For dose distribution comparison on the same anatomy, the daily adaptive plans on cCBCT and vCT were recalculated on the corresponding APvCT. The dose distributions were compared in terms of isodose volumes and 3D global gamma-index passing rate (GPR) at γ(2%, 2 mm) criterion.

Results: For all patients, no noticeable difference in RFDs was observed amongst APvCT, vCT, and pCT except in cCBCT, which showed a noticeable difference. The minimum DSC value was 0.96 and 0.39 for contours in APvCT and vCT respectively. The average value of mDTA for APvCT was 0.01 cm for clinical target volume and ≤0.01 cm for organs at risk, which increased to 0.18 cm and ≤0.52 cm for vCT. The mean GPR value was 90.9%, 64.5%, and 67.0% for APvCT versus cCBCT, vCT versus cCBCT, and APvCT versus vCT, respectively. When recalculated on APvCT, the adaptive cCBCT and vCT plans resulted in mean GPRs of 89.5 ± 5.1% and 65.9 ± 19.1%, respectively. The mean DSC values for 80.0%, 90.0%, 95.0%, 98.0%, and 100.0% isodose volumes were 0.97, 0.97, 0.97, 0.95, and 0.91 for recalculated cCBCT plans, and 0.89, 0.88, 0.87, 0.85, and 0.81 for recalculated vCT plans. Hausdorff distance for the 100.0% isodose volume in some cases of recalculated cCBCT plans on APvCT exceeded 1.00 cm.

Conclusions: APvCT contours showed good agreement with reference contours of cCBCT which indicates anatomy preservation in APvCT. A vCT with erroneous anatomy can result in an incorrect adaptive plan. Further, slightly lower values of GPR between the APvCT and cCBCT-based adaptive plans can be explained by the difference in the cCBCT's SPR RFD from the pCT.

Nyckelord
adaptive proton therapy, virtual/synthetic CT | daily anatomical variation
Nationell ämneskategori
Radiologi och bildbehandling
Identifikatorer
urn:nbn:se:su:diva-226118 (URN)10.1002/mp.16941 (DOI)001143329900001 ()38230803 (PubMedID)2-s2.0-85182451194 (Scopus ID)
Tillgänglig från: 2024-02-06 Skapad: 2024-02-06 Senast uppdaterad: 2026-01-19
Organisationer
Identifikatorer
ORCID-id: ORCID iD iconorcid.org/0000-0002-8441-3595

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