Dual-layer spectral CT for proton, helium, and carbon ion beam therapy planning of brain tumors.


Journal

Journal of applied clinical medical physics
ISSN: 1526-9914
Titre abrégé: J Appl Clin Med Phys
Pays: United States
ID NLM: 101089176

Informations de publication

Date de publication:
Jan 2022
Historique:
revised: 23 08 2021
received: 23 08 2021
accepted: 14 10 2021
pubmed: 2 11 2021
medline: 21 1 2022
entrez: 1 11 2021
Statut: ppublish

Résumé

Pretreatment computed tomography (CT) imaging is an essential component of the particle therapy treatment planning chain. Treatment planning and optimization with charged particles require accurate and precise estimations of ion beam range in tissues, characterized by the stopping power ratio (SPR). Reduction of range uncertainties arising from conventional CT-number-to-SPR conversion based on single-energy CT (SECT) imaging is of importance for improving clinical practice. Here, the application of a novel imaging and computational methodology using dual-layer spectral CT (DLCT) was performed toward refining patient-specific SPR estimates. A workflow for DLCT-based treatment planning was devised to evaluate SPR prediction for proton, helium, and carbon ion beam therapy planning in the brain. DLCT- and SECT-based SPR predictions were compared in homogeneous and heterogeneous anatomical regions. This study included eight patients scanned for diagnostic purposes with a DLCT scanner. For each patient, four different treatment plans were created, simulating tumors in different parts of the brain. For homogeneous anatomical regions, mean SPR differences of about 1% between the DLCT- and SECT-based approaches were found. In plans of heterogeneous anatomies, relative (absolute) proton range shifts of 0.6% (0.4 mm) in the mean and up to 4.4% (2.1 mm) at the distal fall-off were observed. In the investigated cohort, 12% of the evaluated organs-at-risk (OARs) presented differences in mean or maximum dose of more than 0.5 Gy (RBE) and up to 6.8 Gy (RBE) over the entire treatment. Range shifts and dose differences in OARs between DLCT and SECT in helium and carbon ion treatment plans were similar to protons. In the majority of investigated cases (75th percentile), SECT- and DLCT-based range estimations were within 0.6 mm. Nonetheless, the magnitude of patient-specific range deviations between SECT and DLCT was clinically relevant in heterogeneous anatomical sites, suggesting further study in larger, more diverse cohorts. Results indicate that patients with brain tumors may benefit from DLCT-based treatment planning.

Identifiants

pubmed: 34724327
doi: 10.1002/acm2.13465
pmc: PMC8803296
doi:

Substances chimiques

Protons 0
Helium 206GF3GB41
Carbon 7440-44-0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

e13465

Informations de copyright

© 2021 The Authors. Journal of Applied Clinical Medical Physics published by Wiley Periodicals, LLC on behalf of The American Association of Physicists in Medicine.

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Auteurs

Friderike K Longarino (FK)

German Cancer Research Center (DKFZ), Clinical Cooperation Unit Radiation Oncology, Heidelberg, Germany.
Department of Radiation Oncology, Heidelberg University Hospital, Heidelberg, Germany.
Department of Physics and Astronomy, Heidelberg University, Heidelberg, Germany.

Thomas Tessonnier (T)

Heidelberg Ion Beam Therapy Center (HIT), Heidelberg, Germany.

Stewart Mein (S)

Department of Radiation Oncology, Heidelberg University Hospital, Heidelberg, Germany.
Heidelberg Ion Beam Therapy Center (HIT), Heidelberg, Germany.
German Cancer Research Center (DKFZ), Translational Radiation Oncology, Heidelberg, Germany.
National Center for Radiation Research in Oncology (NCRO), Heidelberg Institute of Radiation Oncology (HIRO), Heidelberg, Germany.
National Center for Tumor Diseases (NCT), Heidelberg, Germany.

Semi B Harrabi (SB)

Department of Radiation Oncology, Heidelberg University Hospital, Heidelberg, Germany.
Heidelberg Ion Beam Therapy Center (HIT), Heidelberg, Germany.
National Center for Radiation Research in Oncology (NCRO), Heidelberg Institute of Radiation Oncology (HIRO), Heidelberg, Germany.
National Center for Tumor Diseases (NCT), Heidelberg, Germany.

Jürgen Debus (J)

German Cancer Research Center (DKFZ), Clinical Cooperation Unit Radiation Oncology, Heidelberg, Germany.
Department of Radiation Oncology, Heidelberg University Hospital, Heidelberg, Germany.
Heidelberg Ion Beam Therapy Center (HIT), Heidelberg, Germany.
National Center for Radiation Research in Oncology (NCRO), Heidelberg Institute of Radiation Oncology (HIRO), Heidelberg, Germany.
National Center for Tumor Diseases (NCT), Heidelberg, Germany.
Partner Site Heidelberg, German Cancer Consortium (DKTK), Heidelberg, Germany.

Wolfram Stiller (W)

Diagnostic and Interventional Radiology (DIR), Heidelberg University Hospital, Heidelberg, Germany.

Andrea Mairani (A)

Department of Radiation Oncology, Heidelberg University Hospital, Heidelberg, Germany.
Heidelberg Ion Beam Therapy Center (HIT), Heidelberg, Germany.
National Center for Tumor Diseases (NCT), Heidelberg, Germany.
Medical Physics, National Centre of Oncological Hadrontherapy (CNAO), Pavia, Italy.

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Classifications MeSH