Effects of hyperthermia on DNA repair pathways: one treatment to inhibit them all

The currently available arsenal of anticancer modalities includes many DNA damaging agents that can kill malignant cells. However, efficient DNA repair mechanisms protect both healthy and cancer cells against the effects of treatment and contribute to the development of drug resistance. Therefore, a...

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Published in:Radiation oncology (London, England) Vol. 10; no. 1; p. 165
Main Authors: Oei, Arlene L., Vriend, Lianne E. M., Crezee, Johannes, Franken, Nicolaas A. P., Krawczyk, Przemek M.
Format: Journal Article
Language:English
Published: London BioMed Central 07.08.2015
BioMed Central Ltd
Springer Nature B.V
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ISSN:1748-717X, 1748-717X
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Abstract The currently available arsenal of anticancer modalities includes many DNA damaging agents that can kill malignant cells. However, efficient DNA repair mechanisms protect both healthy and cancer cells against the effects of treatment and contribute to the development of drug resistance. Therefore, anti-cancer treatments based on inflicting DNA damage can benefit from inhibition of DNA repair. Hyperthermia – treatment at elevated temperature – considerably affects DNA repair, among other cellular processes, and can thus sensitize (cancer) cells to DNA damaging agents. This effect has been known and clinically applied for many decades, but how heat inhibits DNA repair and which pathways are targeted has not been fully elucidated. In this review we attempt to summarize the known effects of hyperthermia on DNA repair pathways relevant in clinical treatment of cancer. Furthermore, we outline the relationships between the effects of heat on DNA repair and sensitization of cells to various DNA damaging agents.
AbstractList The currently available arsenal of anticancer modalities includes many DNA damaging agents that can kill malignant cells. However, efficient DNA repair mechanisms protect both healthy and cancer cells against the effects of treatment and contribute to the development of drug resistance. Therefore, anti-cancer treatments based on inflicting DNA damage can benefit from inhibition of DNA repair. Hyperthermia – treatment at elevated temperature – considerably affects DNA repair, among other cellular processes, and can thus sensitize (cancer) cells to DNA damaging agents. This effect has been known and clinically applied for many decades, but how heat inhibits DNA repair and which pathways are targeted has not been fully elucidated. In this review we attempt to summarize the known effects of hyperthermia on DNA repair pathways relevant in clinical treatment of cancer. Furthermore, we outline the relationships between the effects of heat on DNA repair and sensitization of cells to various DNA damaging agents.
The currently available arsenal of anticancer modalities includes many DNA damaging agents that can kill malignant cells. However, efficient DNA repair mechanisms protect both healthy and cancer cells against the effects of treatment and contribute to the development of drug resistance. Therefore, anti-cancer treatments based on inflicting DNA damage can benefit from inhibition of DNA repair. Hyperthermia - treatment at elevated temperature - considerably affects DNA repair, among other cellular processes, and can thus sensitize (cancer) cells to DNA damaging agents. This effect has been known and clinically applied for many decades, but how heat inhibits DNA repair and which pathways are targeted has not been fully elucidated. In this review we attempt to summarize the known effects of hyperthermia on DNA repair pathways relevant in clinical treatment of cancer. Furthermore, we outline the relationships between the effects of heat on DNA repair and sensitization of cells to various DNA damaging agents. Keywords: Hyperthermia, DNA damage, DNA repair, Chemotherapy
ArticleNumber 165
Audience Academic
Author Vriend, Lianne E. M.
Oei, Arlene L.
Crezee, Johannes
Krawczyk, Przemek M.
Franken, Nicolaas A. P.
Author_xml – sequence: 1
  givenname: Arlene L.
  surname: Oei
  fullname: Oei, Arlene L.
  organization: Laboratory for Experimental Oncology and Radiobiology (LEXOR), Center for Experimental and Molecular Medicine, Academic Medical Center, University of Amsterdam, Department of Radiotherapy, Academic Medical Center, University of Amsterdam
– sequence: 2
  givenname: Lianne E. M.
  surname: Vriend
  fullname: Vriend, Lianne E. M.
  organization: Van Leeuwenhoek Centre for Advanced Microscopy (LCAM)-AMC, Department of Cell Biology and Histology, Academic Medical Center, University of Amsterdam
– sequence: 3
  givenname: Johannes
  surname: Crezee
  fullname: Crezee, Johannes
  organization: Department of Radiotherapy, Academic Medical Center, University of Amsterdam
– sequence: 4
  givenname: Nicolaas A. P.
  surname: Franken
  fullname: Franken, Nicolaas A. P.
  organization: Laboratory for Experimental Oncology and Radiobiology (LEXOR), Center for Experimental and Molecular Medicine, Academic Medical Center, University of Amsterdam, Department of Radiotherapy, Academic Medical Center, University of Amsterdam
– sequence: 5
  givenname: Przemek M.
  surname: Krawczyk
  fullname: Krawczyk, Przemek M.
  email: p.krawczyk@amc.uva.nl
  organization: Van Leeuwenhoek Centre for Advanced Microscopy (LCAM)-AMC, Department of Cell Biology and Histology, Academic Medical Center, University of Amsterdam
BackLink https://www.ncbi.nlm.nih.gov/pubmed/26245485$$D View this record in MEDLINE/PubMed
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ContentType Journal Article
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Issue 1
Keywords Chemotherapy
Hyperthermia
DNA repair
DNA damage
Language English
License Open Access This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
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PublicationTitle Radiation oncology (London, England)
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Snippet The currently available arsenal of anticancer modalities includes many DNA damaging agents that can kill malignant cells. However, efficient DNA repair...
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SubjectTerms Animals
Antineoplastic Agents - pharmacology
Biomedical and Life Sciences
Biomedicine
Cancer
Cancer Research
Chemotherapy
Clinical Radiation Oncology
DNA
DNA damage
DNA Damage - drug effects
DNA Damage - physiology
DNA repair
DNA Repair - physiology
Drug resistance
Genetic aspects
Health aspects
Humans
Hyperthermia, Induced
Imaging
Ionizing radiation
Mediation
Neoplasms - therapy
Oncology
Radiology
Radiotherapy
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Title Effects of hyperthermia on DNA repair pathways: one treatment to inhibit them all
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