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The Impact of Dose Rate on DNA Double-Strand Break Formation and Repair in Human Lymphocytes Exposed to Fast Neutron Irradiation.
Nair, Shankari; Engelbrecht, Monique; Miles, Xanthene; Ndimba, Roya; Fisher, Randall; du Plessis, Peter; Bolcaen, Julie; Nieto-Camero, Jaime; de Kock, Evan; Vandevoorde, Charlot.
Afiliação
  • Nair S; Department of Radiochemistry, South African Nuclear Energy Corporation, Pretoria 001, South Africa. shankari.nair@necsa.co.za.
  • Engelbrecht M; Radiobiology, Radiation Biophysics Division, Department of Nuclear Medicine, iThemba LABS, Cape Town 7131, South Africa. shankari.nair@necsa.co.za.
  • Miles X; Radiobiology, Radiation Biophysics Division, Department of Nuclear Medicine, iThemba LABS, Cape Town 7131, South Africa. mengelbrecht002@gmail.com.
  • Ndimba R; Department of Medical Biosciences, University of the Western Cape, Cape Town 7535, South Africa. mengelbrecht002@gmail.com.
  • Fisher R; Radiobiology, Radiation Biophysics Division, Department of Nuclear Medicine, iThemba LABS, Cape Town 7131, South Africa. xmuller@tlabs.ac.za.
  • du Plessis P; Radiobiology, Radiation Biophysics Division, Department of Nuclear Medicine, iThemba LABS, Cape Town 7131, South Africa. rminnis@tlabs.ac.za.
  • Bolcaen J; Radiobiology, Radiation Biophysics Division, Department of Nuclear Medicine, iThemba LABS, Cape Town 7131, South Africa. rfisher@tlabs.ac.za.
  • Nieto-Camero J; Radiobiology, Radiation Biophysics Division, Department of Nuclear Medicine, iThemba LABS, Cape Town 7131, South Africa. pdp@tlabs.ac.za.
  • de Kock E; Radiobiology, Radiation Biophysics Division, Department of Nuclear Medicine, iThemba LABS, Cape Town 7131, South Africa. jbolcaen@tlabs.ac.za.
  • Vandevoorde C; Radiobiology, Radiation Biophysics Division, Department of Nuclear Medicine, iThemba LABS, Cape Town 7131, South Africa. jaime@tlabs.ac.za.
Int J Mol Sci ; 20(21)2019 Oct 28.
Article em En | MEDLINE | ID: mdl-31661782
ABSTRACT
The lack of information on how biological systems respond to low-dose and low dose-rate exposures makes it difficult to accurately assess the carcinogenic risks. This is of critical importance to space radiation, which remains a serious concern for long-term manned space exploration. In this study, the γ-H2AX foci assay was used to follow DNA double-strand break (DSB) induction and repair following exposure to neutron irradiation, which is produced as secondary radiation in the space environment. Human lymphocytes were exposed to high dose-rate (HDR 0.400 Gy/min) and low dose-rate (LDR 0.015 Gy/min) p(66)/Be(40) neutrons. DNA DSB induction was investigated 30 min post exposure to neutron doses ranging from 0.125 to 2 Gy. Repair kinetics was studied at different time points after a 1 Gy neutron dose. Our results indicated that γ-H2AX foci formation was 40% higher at HDR exposure compared to LDR exposure. The maximum γ-H2AX foci levels decreased gradually to 1.65 ± 0.64 foci/cell (LDR) and 1.29 ± 0.45 (HDR) at 24 h postirradiation, remaining significantly higher than background levels. This illustrates a significant effect of dose rate on neutron-induced DNA damage. While no significant difference was observed in residual DNA damage after 24 h, the DSB repair half-life of LDR exposure was slower than that of HDR exposure. The results give a first indication that the dose rate should be taken into account for cancer risk estimations related to neutrons.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Reparo do DNA / Quebras de DNA de Cadeia Dupla / Nêutrons Rápidos Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Reparo do DNA / Quebras de DNA de Cadeia Dupla / Nêutrons Rápidos Idioma: En Ano de publicação: 2019 Tipo de documento: Article