Simulation of complex DNA damage enhancement and biological effect validation for Proton-CAT

Fuente: arXiv
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Autores principales: Dong, Lang, An, Dechao, Wu, Junxiang, Wang, Tianle, Sun, Zhao, Kang, Jiajun, Wang, Xianliang, Li, Lintao, Lu, Shun, Qiu, Tianli, Zhang, Da, He, Zhencen, Hu, Zhimin
Formato: Preprint
Publicado: 2026
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author Dong, Lang
An, Dechao
Wu, Junxiang
Wang, Tianle
Sun, Zhao
Kang, Jiajun
Wang, Xianliang
Li, Lintao
Lu, Shun
Qiu, Tianli
Zhang, Da
He, Zhencen
Hu, Zhimin
author_facet Dong, Lang
An, Dechao
Wu, Junxiang
Wang, Tianle
Sun, Zhao
Kang, Jiajun
Wang, Xianliang
Li, Lintao
Lu, Shun
Qiu, Tianli
Zhang, Da
He, Zhencen
Hu, Zhimin
contents Proton therapy has been rapidly advancing due to its excellent conformal index, but its relatively low relative biological effect (RBE) has somewhat limited its therapeutic efficacy for certain tumors. To address this, we previously proposed a nitrogen-targeting Proton-Carbon-Alpha-Therapy (Proton-CAT) enhancement method. In this letter, we present combined multi-scale DNA damage simulations and in vitro cell experiments, further investigating the mechanism of the Proton-CAT. It has been show that $^{15}$N enrichment significantly enhances complex DNA damage induced by high linear energy transfer(LET) particles within tumor regions. Under 30\% $^{15}$N conditions, $α$ and $^{12}$C particle induced DSB++ increased by 175.19\% and 52.94\%, respectively. Furthermore, in vitro cell experiments using $^{15}$N-glutamine ($^{15}$N-Glu) as the $^{15}$N carrier indicated that high concentrations of $^{15}$N-Glu did not bring about significant cytotoxicity. Following 2 Gy irradiation, the cell viability in the 500 $μ$g/mL $^{15}$N-Glu treated group exhibited a net reduction of about 15.41\% compared to the control group.This indicates that the enhanced effect of Proton-CAT primarily stems from increased complex DNA damage. This work provides a theoretical basis and multi-scale research framework for the development of the Proton-CAT.
format Preprint
id arxiv_https___arxiv_org_abs_2604_26658
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Simulation of complex DNA damage enhancement and biological effect validation for Proton-CAT
Dong, Lang
An, Dechao
Wu, Junxiang
Wang, Tianle
Sun, Zhao
Kang, Jiajun
Wang, Xianliang
Li, Lintao
Lu, Shun
Qiu, Tianli
Zhang, Da
He, Zhencen
Hu, Zhimin
Medical Physics
Proton therapy has been rapidly advancing due to its excellent conformal index, but its relatively low relative biological effect (RBE) has somewhat limited its therapeutic efficacy for certain tumors. To address this, we previously proposed a nitrogen-targeting Proton-Carbon-Alpha-Therapy (Proton-CAT) enhancement method. In this letter, we present combined multi-scale DNA damage simulations and in vitro cell experiments, further investigating the mechanism of the Proton-CAT. It has been show that $^{15}$N enrichment significantly enhances complex DNA damage induced by high linear energy transfer(LET) particles within tumor regions. Under 30\% $^{15}$N conditions, $α$ and $^{12}$C particle induced DSB++ increased by 175.19\% and 52.94\%, respectively. Furthermore, in vitro cell experiments using $^{15}$N-glutamine ($^{15}$N-Glu) as the $^{15}$N carrier indicated that high concentrations of $^{15}$N-Glu did not bring about significant cytotoxicity. Following 2 Gy irradiation, the cell viability in the 500 $μ$g/mL $^{15}$N-Glu treated group exhibited a net reduction of about 15.41\% compared to the control group.This indicates that the enhanced effect of Proton-CAT primarily stems from increased complex DNA damage. This work provides a theoretical basis and multi-scale research framework for the development of the Proton-CAT.
title Simulation of complex DNA damage enhancement and biological effect validation for Proton-CAT
topic Medical Physics
url https://arxiv.org/abs/2604.26658