Literature DB >> 28809605

Age Modifies the Effect of 2-MeV Fast Neutrons on Rat Mammary Carcinogenesis.

Tatsuhiko Imaoka1,2,3, Mayumi Nishimura1, Kazuhiro Daino1, Ayaka Hosoki4, Masaru Takabatake1,5, Toshiaki Kokubo6, Kazutaka Doi7, Kaye Showler8,5, Yukiko Nishimura1, Hitomi Moriyama1,5, Takamitsu Morioka1, Yoshiya Shimada9,3, Shizuko Kakinuma1.   

Abstract

The relative biological effectiveness (RBE) of neutrons depends on their physical nature (e.g., energy) and the biological context (e.g., end points, materials). From the perspective of radiological protection, age is an important biological context that influences radiation-related cancer risk, but very few studies have addressed its potential impact on neutron effects. We therefore investigated the influence of age on the effect of accelerator-generated fast neutrons (mean energy, ∼2 MeV) in an animal model of breast carcinogenesis. Female Sprague-Dawley rats at 1, 3 and 7 weeks of age were irradiated with fast neutrons at absorbed doses of 0.0485-0.97 Gy. All animals were kept under specific pathogen-free conditions and screened weekly for mammary tumors by palpation until they were 90 weeks old. Tumors were diagnosed based on histology. Mathematical modeling was used to analyze mammary cancer incidence, collectively using data from this study and a previously reported experiment on 137Cs gamma rays. The results indicate that neutron irradiation elevated the risk of palpable mammary carcinoma with a linear dose response, the slope of which depended on age at time of irradiation. The RBE of neutron radiation was 7.5 ± 3.4, 9.3 ± 3.5 and 26.1 ± 8.9 (mean ± SE) for animals exposed at 1, 3 and 7 weeks of age, respectively. Our results indicate that age of the animal is an important factor influencing the effect of fast neutrons on breast cancer risk.

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Year:  2017        PMID: 28809605     DOI: 10.1667/RR14829.1

Source DB:  PubMed          Journal:  Radiat Res        ISSN: 0033-7587            Impact factor:   2.841


  5 in total

Review 1.  Neutron dose and its measurement in proton therapy-current State of Knowledge.

Authors:  Roger Antoine Hälg; Uwe Schneider
Journal:  Br J Radiol       Date:  2020-01-21       Impact factor: 3.039

2.  Flying without a Net: Space Radiation Cancer Risk Predictions without a Gamma-ray Basis.

Authors:  Francis A Cucinotta
Journal:  Int J Mol Sci       Date:  2022-04-13       Impact factor: 6.208

Review 3.  Individual response of humans to ionising radiation: governing factors and importance for radiological protection.

Authors:  K E Applegate; W Rühm; A Wojcik; M Bourguignon; A Brenner; K Hamasaki; T Imai; M Imaizumi; T Imaoka; S Kakinuma; T Kamada; N Nishimura; N Okonogi; K Ozasa; C E Rübe; A Sadakane; R Sakata; Y Shimada; K Yoshida; S Bouffler
Journal:  Radiat Environ Biophys       Date:  2020-03-07       Impact factor: 1.925

4.  Differential effect of parity on rat mammary carcinogenesis after pre- or post-pubertal exposure to radiation.

Authors:  Masaru Takabatake; Kazuhiro Daino; Tatsuhiko Imaoka; Benjamin J Blyth; Toshiaki Kokubo; Yukiko Nishimura; Kaye Showler; Ayaka Hosoki; Hitomi Moriyama; Mayumi Nishimura; Shizuko Kakinuma; Masahiro Fukushi; Yoshiya Shimada
Journal:  Sci Rep       Date:  2018-09-25       Impact factor: 4.379

Review 5.  Adverse outcome pathways for ionizing radiation and breast cancer involve direct and indirect DNA damage, oxidative stress, inflammation, genomic instability, and interaction with hormonal regulation of the breast.

Authors:  Jessica S Helm; Ruthann A Rudel
Journal:  Arch Toxicol       Date:  2020-05-13       Impact factor: 5.153

  5 in total

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