Caffeine ameliorates radiation-induced skin reactions in mice but does not influence tumour radiation response

2002 ◽  
Vol 22 (1) ◽  
pp. 63-69 ◽  
Author(s):  
S A Hebbar ◽  
A K Mitra ◽  
K C George ◽  
N C Verma
2019 ◽  
Vol 19 (4) ◽  
pp. 365-369 ◽  
Author(s):  
Leona McAlinden ◽  
Andrea Mullan ◽  
Paul Shepherd

AbstractAim:Breast cancer patients experience skin reactions during radiotherapy. Radiation-induced skin reactions can result in treatment delivery being interrupted. The aim of this paper is to evaluate the skincare management of patients receiving radiotherapy for breast cancer in order to inform best practice.Method:A literature search was undertaken using USearch and HONNI in support of the first-hand evidence gained from the supervised on-treatment review of patients receiving radiotherapy for breast cancer.Results:There is evidence to suggest that the skincare advice given to patients varies widely between departments in the UK with many not following nationally recommended guidelines. Studies demonstrate that there are ways to reduce skin reactions and that there are a range of effective management strategies being adopted. Prophylactic skincare has been explored to improve the resilience of the skin prior to commencing radiotherapy.Findings:Further investigation is required in order to clearly establish the optimum national skincare management for breast cancer patients. More studies are required to test the effectiveness and viability of prophylactic measures. Skincare guidance needs to be robustly developed and effectively promoted by therapeutic radiographers for radiotherapy patients to benefit from reduced, radiation-induced, skin reactions.


2018 ◽  
Author(s):  
Ricciotti Emanuela ◽  
Dimitra Sarantopoulou ◽  
Gregory R. Grant ◽  
Jenine K. Sanzari ◽  
Gabriel S. Krigsfeld ◽  
...  

AbstractPurpose. The cardiovascular biology of proton radiotherapy is not well understood. We aimed to compare the genomic dose-response to proton and gamma radiation of the mouse aorta to assess whether their vascular effects may diverge.Materials and methods.We performed comparative RNA sequencing of the aorta following (4 hrs) total-body proton and gamma irradiation (0.5 - 200 cGy whole body dose, 10 dose levels) of conscious mice. A trend analysis identified genes that showed a dose response.Results.While fewer genes were dose-responsive to proton than gamma radiation (29 vs. 194 genes;q-value ≤ 0.1), the magnitude of the effect was greater. Highly responsive genes were enriched for radiation response pathways (DNA damage, apoptosis, cellular stress and inflammation;p-value ≤ 0.01). Gamma, but not proton radiation induced additionally genes in vasculature specific pathways. Genes responsive to both radiation types showed almost perfectly superimposable dose-response relationships.Conclusions.Despite the activation of canonical radiation response pathways by both radiation types, we detected marked differences in the genomic response of the murine aorta. Models of cardiovascular risk based on photon radiation may not accurately predict the risk associated with proton radiation.


2017 ◽  
Author(s):  
Thomas D. Lewin ◽  
Philip K Maini ◽  
Eduardo G Moros ◽  
Heiko Enderling ◽  
Helen M Byrne

AbstractCurrent protocols for delivering radiotherapy are based primarily on tumour stage and nodal and metastases status, even though it is well known that tumours and their microenvironments are highly heterogeneous. It is well established that the local oxygen tension plays an important role in radiation-induced cell death, with hypoxic tumour regions responding poorly to irradiation. Therefore, to improve radiation response, it is important to understand more fully the spatiotemporal distribution of oxygen within a growing tumour before and during fractionated radiation. To this end, we have extended a spatially-resolved mathematical model of tumour growth first proposed by Greenspan (Stud. Appl. Math., 1972) to investigate the effects of oxygen heterogeneity on radiation-induced cell death. In more detail, cell death due to radiation at each location in the tumour, as determined by the well-known linear-quadratic model, is assumed also to depend on the local oxygen concentration. The oxygen concentration is governed by a reaction-diffusion equation that is coupled to an integro-differential equation that determines the size of the assumed spherically-symmetric tumour. We combine numerical and analytical techniques to investigate radiation response of tumours with different intra-tumoral oxygen distribution profiles. Model simulations reveal a rapid transient increase in hypoxia upon re-growth of the tumour spheroid post-irradiation. We investigate the response to different radiation fractionation schedules and identify a tumour-specific relationship between inter-fraction time and dose per fraction to achieve cure. The rich dynamics exhibited by the model suggest that spatial heterogeneity may be important for predicting tumour response to radiotherapy for clinical applications.


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