Cargando…

Healthy Tissue Damage Following Cancer Ion Therapy: A Radiobiological Database Predicting Lymphocyte Chromosome Aberrations Based on the BIANCA Biophysical Model

Chromosome aberrations are widely considered among the best biomarkers of radiation health risk due to their relationship with late cancer incidence. In particular, aberrations in peripheral blood lymphocytes (PBL) can be regarded as indicators of hematologic toxicity, which is a major limiting fact...

Descripción completa

Detalles Bibliográficos
Autores principales: Embriaco, Alessia, Ramos, Ricardo, Carante, Mario, Ferrari, Alfredo, Sala, Paola, Vercesi, Valerio, Ballarini, Francesca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8509193/
https://www.ncbi.nlm.nih.gov/pubmed/34639218
http://dx.doi.org/10.3390/ijms221910877
_version_ 1784582277714411520
author Embriaco, Alessia
Ramos, Ricardo
Carante, Mario
Ferrari, Alfredo
Sala, Paola
Vercesi, Valerio
Ballarini, Francesca
author_facet Embriaco, Alessia
Ramos, Ricardo
Carante, Mario
Ferrari, Alfredo
Sala, Paola
Vercesi, Valerio
Ballarini, Francesca
author_sort Embriaco, Alessia
collection PubMed
description Chromosome aberrations are widely considered among the best biomarkers of radiation health risk due to their relationship with late cancer incidence. In particular, aberrations in peripheral blood lymphocytes (PBL) can be regarded as indicators of hematologic toxicity, which is a major limiting factor of radiotherapy total dose. In this framework, a radiobiological database describing the induction of PBL dicentrics as a function of ion type and energy was developed by means of the BIANCA (BIophysical ANalysis of Cell death and chromosome Aberrations) biophysical model, which has been previously applied to predict the effectiveness of therapeutic-like ion beams at killing tumour cells. This database was then read by the FLUKA Monte Carlo transport code, thus allowing us to calculate the Relative Biological Effectiveness (RBE) for dicentric induction along therapeutic C-ion beams. A comparison with previous results showed that, while in the higher-dose regions (e.g., the Spread-Out Bragg Peak, SOBP), the RBE for dicentrics was lower than that for cell survival. In the lower-dose regions (e.g., the fragmentation tail), the opposite trend was observed. This work suggests that, at least for some irradiation scenarios, calculating the biological effectiveness of a hadrontherapy beam solely based on the RBE for cell survival may lead to an underestimation of the risk of (late) damage to healthy tissues. More generally, following this work, BIANCA has gained the capability of providing RBE predictions not only for cell killing, but also for healthy tissue damage.
format Online
Article
Text
id pubmed-8509193
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-85091932021-10-13 Healthy Tissue Damage Following Cancer Ion Therapy: A Radiobiological Database Predicting Lymphocyte Chromosome Aberrations Based on the BIANCA Biophysical Model Embriaco, Alessia Ramos, Ricardo Carante, Mario Ferrari, Alfredo Sala, Paola Vercesi, Valerio Ballarini, Francesca Int J Mol Sci Article Chromosome aberrations are widely considered among the best biomarkers of radiation health risk due to their relationship with late cancer incidence. In particular, aberrations in peripheral blood lymphocytes (PBL) can be regarded as indicators of hematologic toxicity, which is a major limiting factor of radiotherapy total dose. In this framework, a radiobiological database describing the induction of PBL dicentrics as a function of ion type and energy was developed by means of the BIANCA (BIophysical ANalysis of Cell death and chromosome Aberrations) biophysical model, which has been previously applied to predict the effectiveness of therapeutic-like ion beams at killing tumour cells. This database was then read by the FLUKA Monte Carlo transport code, thus allowing us to calculate the Relative Biological Effectiveness (RBE) for dicentric induction along therapeutic C-ion beams. A comparison with previous results showed that, while in the higher-dose regions (e.g., the Spread-Out Bragg Peak, SOBP), the RBE for dicentrics was lower than that for cell survival. In the lower-dose regions (e.g., the fragmentation tail), the opposite trend was observed. This work suggests that, at least for some irradiation scenarios, calculating the biological effectiveness of a hadrontherapy beam solely based on the RBE for cell survival may lead to an underestimation of the risk of (late) damage to healthy tissues. More generally, following this work, BIANCA has gained the capability of providing RBE predictions not only for cell killing, but also for healthy tissue damage. MDPI 2021-10-08 /pmc/articles/PMC8509193/ /pubmed/34639218 http://dx.doi.org/10.3390/ijms221910877 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Embriaco, Alessia
Ramos, Ricardo
Carante, Mario
Ferrari, Alfredo
Sala, Paola
Vercesi, Valerio
Ballarini, Francesca
Healthy Tissue Damage Following Cancer Ion Therapy: A Radiobiological Database Predicting Lymphocyte Chromosome Aberrations Based on the BIANCA Biophysical Model
title Healthy Tissue Damage Following Cancer Ion Therapy: A Radiobiological Database Predicting Lymphocyte Chromosome Aberrations Based on the BIANCA Biophysical Model
title_full Healthy Tissue Damage Following Cancer Ion Therapy: A Radiobiological Database Predicting Lymphocyte Chromosome Aberrations Based on the BIANCA Biophysical Model
title_fullStr Healthy Tissue Damage Following Cancer Ion Therapy: A Radiobiological Database Predicting Lymphocyte Chromosome Aberrations Based on the BIANCA Biophysical Model
title_full_unstemmed Healthy Tissue Damage Following Cancer Ion Therapy: A Radiobiological Database Predicting Lymphocyte Chromosome Aberrations Based on the BIANCA Biophysical Model
title_short Healthy Tissue Damage Following Cancer Ion Therapy: A Radiobiological Database Predicting Lymphocyte Chromosome Aberrations Based on the BIANCA Biophysical Model
title_sort healthy tissue damage following cancer ion therapy: a radiobiological database predicting lymphocyte chromosome aberrations based on the bianca biophysical model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8509193/
https://www.ncbi.nlm.nih.gov/pubmed/34639218
http://dx.doi.org/10.3390/ijms221910877
work_keys_str_mv AT embriacoalessia healthytissuedamagefollowingcanceriontherapyaradiobiologicaldatabasepredictinglymphocytechromosomeaberrationsbasedonthebiancabiophysicalmodel
AT ramosricardo healthytissuedamagefollowingcanceriontherapyaradiobiologicaldatabasepredictinglymphocytechromosomeaberrationsbasedonthebiancabiophysicalmodel
AT carantemario healthytissuedamagefollowingcanceriontherapyaradiobiologicaldatabasepredictinglymphocytechromosomeaberrationsbasedonthebiancabiophysicalmodel
AT ferrarialfredo healthytissuedamagefollowingcanceriontherapyaradiobiologicaldatabasepredictinglymphocytechromosomeaberrationsbasedonthebiancabiophysicalmodel
AT salapaola healthytissuedamagefollowingcanceriontherapyaradiobiologicaldatabasepredictinglymphocytechromosomeaberrationsbasedonthebiancabiophysicalmodel
AT vercesivalerio healthytissuedamagefollowingcanceriontherapyaradiobiologicaldatabasepredictinglymphocytechromosomeaberrationsbasedonthebiancabiophysicalmodel
AT ballarinifrancesca healthytissuedamagefollowingcanceriontherapyaradiobiologicaldatabasepredictinglymphocytechromosomeaberrationsbasedonthebiancabiophysicalmodel