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Oxford Brookes University

RADIATION-INDUCED CHROMOSOME INSTABILITY AND INTERCELLULAR COMMUNICATION: THE ROLE OF DOSE RATE AND IMPLICATIONS FOR CARCINOGENESIS

Abstract

dc:description

The biological risks associated with low dose and low dose rate (LDR) radiation exposures are not yet well characterised. Experimental studies indicate that in addition to biological effects resulting from direct DNA damage, a variety of non-DNA targeted effects (NTE) including radiation-induced genomic instability (RIGI), genomic instability being a known enabling characteristic of cancer, may crucially contribute to the overall outcome. RIGI can induce delayed mutations, chromosomal damage and micronucleus formation in the progeny of cells many generations after the original radiation event. The work presented explores the role of dose and dose rate, as well as radiation quality, on RIGI. For low-LET x-rays, the induction of RIGI in normal primary human fibroblast (HF19) cells was investigated as a function of dose and dose rate and as a function of dose for high-LET alpha-particles. An additional aim was to investigate the potential role of reactive oxygen species (ROS), tumour necrosis factor-alpha (TNF-α) and transforming growth factor-beta (TGF-β1) in the induction of DNA damage and GI in HF19 cells following 0.1 and 1 Gy high dose rate (HDR) and low dose rate (LDR) x-ray irradiation. The x-ray data clearly show early DNA damage and RIGI many population doublings (PD) after exposure, not only after high dose and high dose rate exposures, but also at similar levels following low dose and low dose rate exposures. 0.1 Gy and 1 Gy LDR x-ray groups suggested more damage compared to the corresponding HDR groups. However, at 20 PD the HDR groups suggested higher induction of DNA damage compared to the equivalent LDR x-ray irradiation groups. A higher induction of ROS following 0.1 and 1 Gy LDR and HDR x-ray was also demonstrated providing a potential mechanism for induction of DNA damage and RIGI. The alpha-particle results indicate significant induction of early DNA damage and RIGI at 10 and 20 PD at doses down to 0.001 Gy, reducing at lower doses. At these low doses, not all cells would be traversed, but those that were traversed would receive significant energy deposition by the traversing particle. To conclude, our investigations have demonstrated that HF19 cells are susceptible to the induction of early DNA damage and RIGI, not only after a high dose and high dose rate exposure to low LET and high LET, but also following low dose, low dose rate exposures. The results suggest that the mechanism of radiation induced RIGI in HF19 cells can be correlated with the induction of ROS levels following exposure to 0.1 and 1 Gy LDR and HDR x-ray irradiation.

Degree

thesis:*
Grantor dc:publisher
Oxford Brookes University
Year dc:date
2017

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Elbakrawy, Eman Mohammed Ahmed
Contributors dc:contributor
  • Kadhim, Munira
  • Hill, Mark

Rights

dc:rights
Statement dc:rights
  • All rights reserved
Language dc:language
en

Identifiers

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OAI identifier oai:identifier
tle:04cbd68f-2365-4a20-b8bf-2cf508115441:d6bd9758-527a-46cd-bfe2-c433766e8fca:1

Chain of custody

source
Harvested from
Oxford Brookes University
Base URL
radar.brookes.ac.uk/radar/oai
Last updated
2026-07-24
Source record
OAI-PMH GetRecord
related terms
citation

Elbakrawy, Eman Mohammed Ahmed. RADIATION-INDUCED CHROMOSOME INSTABILITY AND INTERCELLULAR COMMUNICATION: THE ROLE OF DOSE RATE AND IMPLICATIONS FOR CARCINOGENESIS. Oxford Brookes University, 2017. https://doi.org/10.24384/dbgp-z219