Quantitative and Computational Radiobiology for Precision Radiopharmaceutical Therapies

Fuente: arXiv
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Autores principales: Yusufaly, Tahir, Abdollahi, Hamid, Saboury, Babak, Rahmim, Arman
Formato: Preprint
Publicado: 2025
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author Yusufaly, Tahir
Abdollahi, Hamid
Saboury, Babak
Rahmim, Arman
author_facet Yusufaly, Tahir
Abdollahi, Hamid
Saboury, Babak
Rahmim, Arman
contents This article reviews the evolving field of radiobiology, emphasizing the need for advanced multiscale, mechanistic models to optimize radiopharmaceutical therapies (RPT). While the traditional linear-quadratic (LQ) model underpins external beam radiation therapy (EBRT), RPT's unique biological and spatial complexities demand new approaches. First-principles simulations of DNA damage, repair, and multicellular responses are crucial for understanding therapeutic efficacy and toxicity. The integration of these models into personalized, digital twin frameworks promises transformative clinical applications, but progress depends on deep mechanistic insights, experimental validation, and balancing model complexity with practicality for clinical use.
format Preprint
id arxiv_https___arxiv_org_abs_2509_17891
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantitative and Computational Radiobiology for Precision Radiopharmaceutical Therapies
Yusufaly, Tahir
Abdollahi, Hamid
Saboury, Babak
Rahmim, Arman
Medical Physics
Quantitative Methods
This article reviews the evolving field of radiobiology, emphasizing the need for advanced multiscale, mechanistic models to optimize radiopharmaceutical therapies (RPT). While the traditional linear-quadratic (LQ) model underpins external beam radiation therapy (EBRT), RPT's unique biological and spatial complexities demand new approaches. First-principles simulations of DNA damage, repair, and multicellular responses are crucial for understanding therapeutic efficacy and toxicity. The integration of these models into personalized, digital twin frameworks promises transformative clinical applications, but progress depends on deep mechanistic insights, experimental validation, and balancing model complexity with practicality for clinical use.
title Quantitative and Computational Radiobiology for Precision Radiopharmaceutical Therapies
topic Medical Physics
Quantitative Methods
url https://arxiv.org/abs/2509.17891