Protein disulphide isomerase as a target for nanoparticle-mediated sensitisation of cancer cells to radiation


Autoria(s): Taggart, L E; McMahon, S J; Butterworth, K T; Currell, F J; Schettino, G; Prise, K M
Data(s)

15/04/2016

Resumo

<p>Radiation resistance and toxicity in normal tissues are limiting factors in the efficacy of radiotherapy. Gold nanoparticles (GNPs) have been shown to be effective at enhancing radiation-induced cell death, and were initially proposed to physically enhance the radiation dose deposited. However, biological responses of GNP radiosensitization based on physical assumptions alone are not predictive of radiosensitisation and therefore there is a fundamental research need to determine biological mechanisms of response to GNPs alone and in combination with ionising radiation. This study aimed to identify novel mechanisms of cancer cell radiosensitisation through the use of GNPs, focusing on their ability to induce cellular oxidative stress and disrupt mitochondrial function. Using N-acetyl-cysteine, we found mitochondrial oxidation to be a key event prior to radiation for the radiosensitisation of cancer cells and suggests the overall cellular effects of GNP radiosensitisation are a result of their interaction with protein disulphide isomerase (PDI). This investigation identifies PDI and mitochondrial oxidation as novel targets for radiosensitisation.</p>

Formato

application/pdf

Identificador

http://pure.qub.ac.uk/portal/en/publications/protein-disulphide-isomerase-as-a-target-for-nanoparticlemediated-sensitisation-of-cancer-cells-to-radiation(df064f02-f13c-4e57-881c-3c51fde04d47).html

http://dx.doi.org/10.1088/0957-4484/27/21/215101

http://pure.qub.ac.uk/ws/files/30190101/Taggart_2016_nano_27_21_215101.pdf

Idioma(s)

eng

Direitos

info:eu-repo/semantics/openAccess

Fonte

Taggart , L E , McMahon , S J , Butterworth , K T , Currell , F J , Schettino , G & Prise , K M 2016 , ' Protein disulphide isomerase as a target for nanoparticle-mediated sensitisation of cancer cells to radiation ' Nanotechnology , vol 27 , no. 21 , 215101 . DOI: 10.1088/0957-4484/27/21/215101

Tipo

article