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PMID: 16462769 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Heme oxygenase-1 protects tumor cells against photodynamic therapy-mediated cytotoxicity.

Oncogene ·Vol. 25 ·No. 24 ·2006-06-08 ·Pages 3365-74

Nowis D, Legat M, Grzela T, Niderla J, Wilczek E, Wilczynski GM, Głodkowska E, Mrówka P, Issat T, Dulak J, Józkowicz A, Waś H, Adamek M, Wrzosek A, Nazarewski S, Makowski M, Stokłosa T, Jakóbisiak M, Gołab J

Abstract

Photodynamic therapy is a promising antitumor treatment modality approved for the management of both early and advanced tumors. The mechanisms of its antitumor action include generation of singlet oxygen and reactive oxygen species that directly damage tumor cells and tumor vasculature. A number of mechanisms seem to be involved in the protective responses to PDT that include activation of transcription factors, heat shock proteins, antioxidant enzymes and antiapoptotic pathways. Elucidation of these mechanisms might result in the design of more effective combination strategies to improve the antitumor efficacy of PDT. Using DNA microarray analysis to identify stress-related genes induced by Photofrin-mediated PDT in colon adenocarcinoma C-26 cells, we observed a marked induction of heme oxygenase-1 (HO-1). Induction of HO-1 with hemin or stable transfection of C-26 with a plasmid vector encoding HO-1 increased resistance of tumor cells to PDT-mediated cytotoxicity. On the other hand, zinc (II) protoporphyrin IX, an HO-1 inhibitor, markedly augmented PDT-mediated cytotoxicity towards C-26 and human ovarian carcinoma MDAH2774 cells. Neither bilirubin, biliverdin nor carbon monoxide, direct products of HO-1 catalysed heme degradation, was responsible for cytoprotection. Importantly, desferrioxamine, a potent iron chelator significantly potentiated cytotoxic effects of PDT. Altogether our results indicate that HO-1 is involved in an important protective mechanism against PDT-mediated phototoxicity and administration of HO-1 inhibitors might be an effective way to potentiate antitumor effectiveness of PDT.

MeSH Terms
Animals Carbon Monoxide/chemistry,pharmacology Chelating Agents/pharmacology Dihematoporphyrin Ether/chemistry Heme/chemistry Heme Oxygenase-1/metabolism,physiology Humans Iron/pharmacology Mice Neoplasms/pathology Oligonucleotide Array Sequence Analysis Oxygen/metabolism Photochemotherapy/adverse effects Reactive Oxygen Species
Chemicals
Chelating Agents Reactive Oxygen Species Heme Carbon Monoxide Dihematoporphyrin Ether Iron Heme Oxygenase-1 Oxygen
Authors & Affiliations
19 authors, click to expand affiliations / ORCID
Nowis D
Department of Immunology, Center of Biostructure Research, The Medical University of Warsaw, Warsaw, Poland.
Legat M
Grzela T
Niderla J
Wilczek E
Wilczynski G M
Głodkowska E
Mrówka P
Issat T
Dulak J
Józkowicz A
Waś H
Adamek M
Wrzosek A
Nazarewski S
Makowski M
Stokłosa T
Jakóbisiak M
Gołab J
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Article Info
Journal
Oncogene
Abbr.
Oncogene
ISSN
0950-9232
Published
2006-06-08
Epub
2006-00-06
Pages
3365-74
Language
English
Region
England
NLM ID
8711562
PMCID
PMC1538962
Subset
IM
Grants
Wellcome Trust · 073974 · United Kingdom
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