Articolo in rivista, 2021, ENG, 10.3390/cancers13194953

A multi-scale and multi-technique approach for the characterization of the effects of spatially fractionated X-ray radiation therapies in a preclinical model

Romano, Mariele; Bravin, Alberto; Mittone, Alberto; Eckhardt, Alicia; Barbone, Giacomo E.; Sancey, Lucie; Dinkel, Julien; Bartzsch, Stefan; Ricke, Jens; Alunni-Fabbroni, Marianna; Hirner-Eppeneder, Heidrun; Karpov, Dmitry; Giannini, Cinzia; Bunk, Oliver; Bouchet, Audrey; Ruf, Viktoria; Giese, Armin; Coan, Paola

Ludwig Maximilians Univ Munchen; European Synchrotron Radiat Facil; Univ Milano Bicocca; CELLS ALBA Synchrotron; Ludwig Maximilians Univ Munchen; Ctr Rech UGA INSERM U1209 CNRS UMR5309; Tech Univ Munich; Helmholtz Zentrum Munchen; Paul Scherrer Inst; CNR; Inserm U1296 Unit Radiat Def; Ludwig Maximilians Univ Munchen

The purpose of this study is to use a multi-technique approach to detect the effects of spatially fractionated X-ray Microbeam (MRT) and Minibeam Radiation Therapy (MB) and to compare them to seamless Broad Beam (BB) irradiation. Healthy- and Glioblastoma (GBM)-bearing male Fischer rats were irradiated in-vivo on the right brain hemisphere with MRT, MB and BB delivering three different doses for each irradiation geometry. Brains were analyzed post mortem by multi-scale X-ray Phase Contrast Imaging-Computed Tomography (XPCI-CT), histology, immunohistochemistry, X-ray Fluorescence (XRF), Small- and Wide-Angle X-ray Scattering (SAXS/WAXS). XPCI-CT discriminates with high sensitivity the effects of MRT, MB and BB irradiations on both healthy and GBM-bearing brains producing a first-time 3D visualization and morphological analysis of the radio-induced lesions, MRT and MB induced tissue ablations, the presence of hyperdense deposits within specific areas of the brain and tumor evolution or regression with respect to the evaluation made few days post-irradiation with an in-vivo magnetic resonance imaging session. Histology, immunohistochemistry, SAXS/WAXS and XRF allowed identification and classification of these deposits as hydroxyapatite crystals with the coexistence of Ca, P and Fe mineralization, and the multi-technique approach enabled the realization, for the first time, of the map of the differential radiosensitivity of the different brain areas treated with MRT and MB. 3D XPCI-CT datasets enabled also the quantification of tumor volumes and Ca/Fe deposits and their full-organ visualization. The multi-scale and multi-technique approach enabled a detailed visualization and classification in 3D of the radio-induced effects on brain tissues bringing new essential information towards the clinical implementation of the MRT and MB radiation therapy techniques.

Cancers (Basel) 13 (19)

Keywords

X-ray phase-contrast imaging, glioblastoma, animal model, hydroxyapatite, virtual histology, FLASH, spatially fractionated radiotherapy, MRT, WAXS

CNR authors

Giannini Cinzia

CNR institutes

IC – Istituto di cristallografia

ID: 481277

Year: 2021

Type: Articolo in rivista

Creation: 2023-05-10 10:18:19.000

Last update: 2023-05-10 10:19:05.000

CNR authors

External IDs

CNR OAI-PMH: oai:it.cnr:prodotti:481277

DOI: 10.3390/cancers13194953

ISI Web of Science (WOS): 000708200800001