Home LiteratureArticle Details
PMID: 21606941 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Review

Targeting hypoxia in cancer therapy.

Nature reviews. Cancer ·Vol. 11 ·No. 6 ·2011-06-00 ·Pages 393-410

Wilson WR, Hay MP

Abstract

Hypoxia is a feature of most tumours, albeit with variable incidence and severity within a given patient population. It is a negative prognostic and predictive factor owing to its multiple contributions to chemoresistance, radioresistance, angiogenesis, vasculogenesis, invasiveness, metastasis, resistance to cell death, altered metabolism and genomic instability. Given its central role in tumour progression and resistance to therapy, tumour hypoxia might well be considered the best validated target that has yet to be exploited in oncology. However, despite an explosion of information on hypoxia, there are still major questions to be addressed if the long-standing goal of exploiting tumour hypoxia is to be realized. Here, we review the two main approaches, namely bioreductive prodrugs and inhibitors of molecular targets upon which hypoxic cell survival depends. We address the particular challenges and opportunities these overlapping strategies present, and discuss the central importance of emerging diagnostic tools for patient stratification in targeting hypoxia.

MeSH Terms
Antineoplastic Agents/therapeutic use Biomarkers, Tumor Cell Hypoxia/drug effects Humans Molecular Targeted Therapy Neoplasms/blood supply,drug therapy,metabolism Prodrugs/therapeutic use Prognosis Reactive Oxygen Species/metabolism
Chemicals
Antineoplastic Agents Biomarkers, Tumor Prodrugs Reactive Oxygen Species
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Wilson William R
Auckland Cancer Society Research Centre, The University of Auckland, Auckland, New Zealand. wr.wilson@auckland.ac.nz
Hay Michael P
References (180)
180 references, click to expand
  1. Exploiting tumor hypoxia through bioreductive release of diffusible cytotoxins: the cobalt(III)-nitrogen mustard complex SN 24771.
    Int J Radiat Oncol Biol Phys. 1994 May 15;29(2):323-7 PMID: 8195027
  2. The role of catalytic superoxide formation in the O2 inhibition of nitroreductase.
    Biochem Biophys Res Commun. 1975 Dec 15;67(4):1267-74 PMID: 173338
  3. Evaluation of HIF-1 inhibitors as anticancer agents.
    Drug Discov Today. 2007 Oct;12(19-20):853-9 PMID: 17933687
  4. Carbonic anhydrase IX expression, hypoxia, and prognosis in patients with uterine cervical carcinomas.
    Clin Cancer Res. 2003 Nov 15;9(15):5666-74 PMID: 14654550
  5. Targeting HIF-1 for cancer therapy.
    Nat Rev Cancer. 2003 Oct;3(10):721-32 PMID: 13130303
  6. Beyond rapalog therapy: preclinical pharmacology and antitumor activity of WYE-125132, an ATP-competitive and specific inhibitor of mTORC1 and mTORC2.
    Cancer Res. 2010 Jan 15;70(2):621-31 PMID: 20068177
  7. Preferential activation of mitomycin C to cytotoxic metabolites by hypoxic tumor cells.
    Cancer Res. 1980 Jul;40(7):2356-60 PMID: 7388797
  8. Efficient hypoxic activation of the anticancer agent AQ4N by CYP2S1 and CYP2W1.
    Mol Pharmacol. 2010 Sep;78(3):497-502 PMID: 20566689
  9. AQ4N: a new approach to hypoxia-activated cancer chemotherapy.
    Br J Cancer. 2000 Dec;83(12):1589-93 PMID: 11104551
  10. Bystander effects of bioreductive drugs: potential for exploiting pathological tumor hypoxia with dinitrobenzamide mustards.
    Radiat Res. 2007 Jun;167(6):625-36 PMID: 17523848
  11. Aerobic reduction of 5-nitro-2-furaldehyde semicarbazone by rat liver xanthine dehydrogenase.
    Biochem Pharmacol. 1984 Mar 1;33(5):799-805 PMID: 6585203
  12. Bnip3 mediates the hypoxia-induced inhibition on mammalian target of rapamycin by interacting with Rheb.
    J Biol Chem. 2007 Dec 7;282(49):35803-13 PMID: 17928295
  13. Metabolic activation of the antitumor drug 5-(Aziridin-1-yl)-2,4-dinitrobenzamide (CB1954) by NO synthases.
    Chem Res Toxicol. 2008 Apr;21(4):836-43 PMID: 18370414
  14. Phase I pharmacokinetic and pharmacodynamic study of the bioreductive drug RH1.
    Ann Oncol. 2011 Jul;22(7):1653-1660 PMID: 21378203
  15. Design of anticancer prodrugs for reductive activation.
    Med Res Rev. 2009 Jan;29(1):29-64 PMID: 18688784
  16. MITOMYCINS AND PORFIROMYCIN: CHEMICAL MECHANISM OF ACTIVATION AND CROSS-LINKING OF DNA.
    Science. 1964 Jul 3;145(3627):55-8 PMID: 14162693
  17. Regulation of mTOR function in response to hypoxia by REDD1 and the TSC1/TSC2 tumor suppressor complex.
    Genes Dev. 2004 Dec 1;18(23):2893-904 PMID: 15545625
  18. Hypoxia and metabolism. Hypoxia, DNA repair and genetic instability.
    Nat Rev Cancer. 2008 Mar;8(3):180-92 PMID: 18273037
  19. Detection of reactive oxygen species via endogenous oxidative pentose phosphate cycle activity in response to oxygen concentration: implications for the mechanism of HIF-1alpha stabilization under moderate hypoxia.
    J Biol Chem. 2007 Dec 21;282(51):36790-6 PMID: 17666400
  20. Drug penetration in solid tumours.
    Nat Rev Cancer. 2006 Aug;6(8):583-92 PMID: 16862189
  21. Utility of DNA repair protein foci for the detection of putative BRCA1 pathway defects in breast cancer biopsies.
    Mol Cancer Res. 2009 Aug;7(8):1304-9 PMID: 19671671
  22. HIF-1alpha modulates energy metabolism in cancer cells by inducing over-expression of specific glycolytic isoforms.
    Mini Rev Med Chem. 2009 Aug;9(9):1084-101 PMID: 19689405
  23. Detection and characterization of tumor hypoxia using pO2 histography.
    Antioxid Redox Signal. 2007 Aug;9(8):1221-35 PMID: 17536958
  24. Multimodality imaging of hypoxia in preclinical settings.
    Q J Nucl Med Mol Imaging. 2010 Jun;54(3):259-80 PMID: 20639813
  25. SR 4233 (tirapazamine): a new anticancer drug exploiting hypoxia in solid tumours.
    Br J Cancer. 1993 Jun;67(6):1163-70 PMID: 8512801
  26. CHK2-dependent phosphorylation of BRCA1 in hypoxia.
    Radiat Res. 2006 Oct;166(4):646-51 PMID: 17007555
  27. Hypoxia-selective antitumor agents. 7. Metal complexes of aliphatic mustards as a new class of hypoxia-selective cytotoxins. Synthesis and evaluation of cobalt(III) complexes of bidentate mustards.
    J Med Chem. 1993 Jun 25;36(13):1839-46 PMID: 8515422
  28. Reductive activation of mitomycin C by NADH:cytochrome b5 reductase.
    Cancer Res. 1993 Oct 15;53(20):4907-12 PMID: 8402680
  29. XBP1 is essential for survival under hypoxic conditions and is required for tumor growth.
    Cancer Res. 2004 Sep 1;64(17):5943-7 PMID: 15342372
  30. Homologous recombination is the principal pathway for the repair of DNA damage induced by tirapazamine in mammalian cells.
    Cancer Res. 2008 Jan 1;68(1):257-65 PMID: 18172318
  31. Hypoxia in larynx carcinomas assessed by pimonidazole binding and the value of CA-IX and vascularity as surrogate markers of hypoxia.
    Eur J Cancer. 2009 Nov;45(16):2906-14 PMID: 19699082
  32. Oxygen and exposure kinetics as factors influencing the cytotoxicity of porfiromycin, a mitomycin C analogue, in Chinese hamster ovary cells.
    Cancer Res. 1988 Oct 15;48(20):5655-9 PMID: 3167822
  33. Comparison of hypoxia-induced replication arrest with hydroxyurea and aphidicolin-induced arrest.
    Mutat Res. 2003 Nov 27;532(1-2):205-13 PMID: 14643437
  34. Reductive heme-dependent activation of the n-oxide prodrug AQ4N by nitric oxide synthase.
    J Med Chem. 2008 Aug 28;51(16):5118-20 PMID: 18681417
  35. Hypoxic cell sensitisers in radiotherapy.
    Lancet. 1976 Jan 24;1(7952):186-8 PMID: 54693
  36. Hypoxia-selective antitumor agents. 12. Nitrobenzyl quaternary salts as bioreductive prodrugs of the alkylating agent mechlorethamine.
    J Med Chem. 1996 Mar 1;39(5):1084-94 PMID: 8676343
  37. Hypoxia-induced genetic instability--a calculated mechanism underlying tumor progression.
    J Mol Med (Berl). 2007 Feb;85(2):139-48 PMID: 17180667
  38. Coordination of ER and oxidative stress signaling: the PERK/Nrf2 signaling pathway.
    Int J Biochem Cell Biol. 2006 Mar;38(3):317-32 PMID: 16290097
  39. Oxygen dependence and extravascular transport of hypoxia-activated prodrugs: comparison of the dinitrobenzamide mustard PR-104A and tirapazamine.
    Int J Radiat Oncol Biol Phys. 2007 Oct 1;69(2):560-71 PMID: 17869669
  40. Natural and synthetic quinones and their reduction by the quinone reductase enzyme NQO1: from synthetic organic chemistry to compounds with anticancer potential.
    Org Biomol Chem. 2008 Feb 21;6(4):637-56 PMID: 18264564
  41. Targeting tumors with hypoxia-activated cytotoxins.
    Front Biosci. 2007 May 01;12:3483-501 PMID: 17485316
  42. Characterization of the cancer chemopreventive NRF2-dependent gene battery in human keratinocytes: demonstration that the KEAP1-NRF2 pathway, and not the BACH1-NRF2 pathway, controls cytoprotection against electrophiles as well as redox-cycling compounds.
    Carcinogenesis. 2009 Sep;30(9):1571-80 PMID: 19608619
  43. Response of multiple recurrent TaT1 bladder cancer to intravesical apaziquone (EO9): comparative analysis of tumor recurrence rates.
    Urology. 2009 May;73(5):1083-6 PMID: 19232688
  44. Nitric oxide synthase activity in human breast cancer.
    Br J Cancer. 1995 Jul;72(1):41-4 PMID: 7541238
  45. Network medicine: a network-based approach to human disease.
    Nat Rev Genet. 2011 Jan;12(1):56-68 PMID: 21164525
  46. Potent and selective inhibitors of the inositol-requiring enzyme 1 endoribonuclease.
    J Biol Chem. 2011 Apr 8;286(14):12743-55 PMID: 21303903
  47. Unusual oxygen concentration dependence of toxicity of SR-4233, a hypoxic cell toxin.
    Cancer Res. 1993 Sep 1;53(17):3992-7 PMID: 8358728
  48. HIF-1 as a target for drug development.
    Nat Rev Drug Discov. 2003 Oct;2(10):803-11 PMID: 14526383
  49. Gene expression profile of BRCAness that correlates with responsiveness to chemotherapy and with outcome in patients with epithelial ovarian cancer.
    J Clin Oncol. 2010 Aug 1;28(22):3555-61 PMID: 20547991
  50. PET of hypoxia with 89Zr-labeled cG250-F(ab')2 in head and neck tumors.
    J Nucl Med. 2010 Jul;51(7):1076-83 PMID: 20554724
  51. Nitroaromatic betulin derivatives as redox cycling agents.
    Biochem Mol Biol Int. 1997 Jun;42(2):391-7 PMID: 9238538
  52. Synthesis and biological properties of bioreductively targeted nitrothienyl prodrugs of combretastatin A-4.
    Mol Cancer Ther. 2006 Nov;5(11):2886-94 PMID: 17121936
  53. Effects of acute versus chronic hypoxia on DNA damage responses and genomic instability.
    Cancer Res. 2010 Feb 1;70(3):925-35 PMID: 20103649
  54. Cure of mice bearing advanced plasma cell tumours with aniline mustard: the relationship between glucuronidase activity and tumour sensitivity.
    Nature. 1966 May 21;210(5038):866-7 PMID: 5958471
  55. Differential toxic mechanisms of 2-deoxy-D-glucose versus 2-fluorodeoxy-D-glucose in hypoxic and normoxic tumor cells.
    Antioxid Redox Signal. 2007 Sep;9(9):1383-90 PMID: 17627467
  56. Structural adaptation and heterogeneity of normal and tumor microvascular networks.
    PLoS Comput Biol. 2009 May;5(5):e1000394 PMID: 19478883
  57. In vivo profiling of hypoxic gene expression in gliomas using the hypoxia marker EF5 and laser-capture microdissection.
    Cancer Res. 2011 Feb 1;71(3):779-89 PMID: 21266355
  58. A hypoxia-responsive element mediates a novel pathway of activation of the inducible nitric oxide synthase promoter.
    J Exp Med. 1995 Dec 1;182(6):1683-93 PMID: 7500013
  59. Structure of the dual enzyme Ire1 reveals the basis for catalysis and regulation in nonconventional RNA splicing.
    Cell. 2008 Jan 11;132(1):89-100 PMID: 18191223
  60. The HIF-1-active microenvironment: an environmental target for cancer therapy.
    Adv Drug Deliv Rev. 2009 Jul 2;61(7-8):623-32 PMID: 19409433
  61. Hypoxia-induced energy stress regulates mRNA translation and cell growth.
    Mol Cell. 2006 Feb 17;21(4):521-31 PMID: 16483933
  62. Cancer stem cells, hypoxia and metastasis.
    Semin Radiat Oncol. 2009 Apr;19(2):106-11 PMID: 19249648
  63. Normalization of tumor vasculature: an emerging concept in antiangiogenic therapy.
    Science. 2005 Jan 7;307(5706):58-62 PMID: 15637262
  64. 17beta-Oestradiol treatment modulates nitric oxide synthase activity in MDA231 tumour with implications on growth and radiation response.
    Br J Cancer. 2002 Jan 7;86(1):136-42 PMID: 11857025
  65. ATR/ATM targets are phosphorylated by ATR in response to hypoxia and ATM in response to reoxygenation.
    J Biol Chem. 2003 Apr 4;278(14):12207-13 PMID: 12519769
  66. AR-C155858 is a potent inhibitor of monocarboxylate transporters MCT1 and MCT2 that binds to an intracellular site involving transmembrane helices 7-10.
    Biochem J. 2010 Jan 15;425(3):523-30 PMID: 19929853
  67. Macrophage responses to hypoxia: implications for tumor progression and anti-cancer therapies.
    Am J Pathol. 2005 Sep;167(3):627-35 PMID: 16127144
  68. The plasma membrane lactate transporter MCT4, but not MCT1, is up-regulated by hypoxia through a HIF-1alpha-dependent mechanism.
    J Biol Chem. 2006 Apr 7;281(14):9030-7 PMID: 16452478
  69. Maintaining genome stability at the replication fork.
    Nat Rev Mol Cell Biol. 2010 Mar;11(3):208-19 PMID: 20177396
  70. Targeting lactate-fueled respiration selectively kills hypoxic tumor cells in mice.
    J Clin Invest. 2008 Dec;118(12):3930-42 PMID: 19033663
  71. Intersection of interferon and hypoxia signal transduction pathways in nitric oxide-induced tumor apoptosis.
    Cancer Res. 2001 May 1;61(9):3682-8 PMID: 11325839
  72. Oxygen-mediated endocytosis in cancer.
    J Cell Mol Med. 2010 Mar;14(3):496-503 PMID: 20082654
  73. Hypoxia: importance in tumor biology, noninvasive measurement by imaging, and value of its measurement in the management of cancer therapy.
    Int J Radiat Biol. 2006 Oct;82(10):699-757 PMID: 17118889
  74. Cycling hypoxia and free radicals regulate angiogenesis and radiotherapy response.
    Nat Rev Cancer. 2008 Jun;8(6):425-37 PMID: 18500244
  75. Nuclear factor Nrf2 and antioxidant response element regulate NRH:quinone oxidoreductase 2 (NQO2) gene expression and antioxidant induction.
    Free Radic Biol Med. 2006 Apr 1;40(7):1119-30 PMID: 16545679
  76. Targeting the multiple myeloma hypoxic niche with TH-302, a hypoxia-activated prodrug.
    Blood. 2010 Sep 2;116(9):1524-7 PMID: 20530289
  77. The unfolded protein response protects human tumor cells during hypoxia through regulation of the autophagy genes MAP1LC3B and ATG5.
    J Clin Invest. 2010 Jan;120(1):127-41 PMID: 20038797
  78. Hypoxia-inducible carbonic anhydrase IX and XII promote tumor cell growth by counteracting acidosis through the regulation of the intracellular pH.
    Cancer Res. 2009 Jan 1;69(1):358-68 PMID: 19118021
  79. Targeting hypoxic cells through the DNA damage response.
    Clin Cancer Res. 2010 Dec 1;16(23):5624-9 PMID: 20876254
  80. Bioreductively-activated prodrugs for targeting hypoxic tissues: elimination of aspirin from 2-nitroimidazole derivatives.
    Bioorg Med Chem Lett. 1999 May 3;9(9):1267-72 PMID: 10340612
  81. Mitochondrial complex III is required for hypoxia-induced ROS production and cellular oxygen sensing.
    Cell Metab. 2005 Jun;1(6):401-8 PMID: 16054089
  82. Hypoxia targeted gene therapy to increase the efficacy of tirapazamine as an adjuvant to radiotherapy: reversing tumor radioresistance and effecting cure.
    Cancer Res. 2004 Feb 15;64(4):1396-402 PMID: 14973055
  83. Inducible nitric oxide synthase with transitional cell carcinoma of the bladder.
    J Urol. 1999 Feb;161(2):630-4 PMID: 9915473
  84. Hypoxic tumors and their effect on immune cells and cancer therapy.
    Methods Mol Biol. 2010;651:1-29 PMID: 20686957
  85. Transcriptional control of the tumor- and hypoxia-marker carbonic anhydrase 9: A one transcription factor (HIF-1) show?
    Biochim Biophys Acta. 2009 Apr;1795(2):162-72 PMID: 19344680
  86. Preferential cytotoxicity of bortezomib toward hypoxic tumor cells via overactivation of endoplasmic reticulum stress pathways.
    Cancer Res. 2008 Nov 15;68(22):9323-30 PMID: 19010906
  87. In vivo role of NAD(P)H:quinone oxidoreductase 1 in metabolic activation of mitomycin C and bone marrow cytotoxicity.
    Cancer Res. 2007 Sep 1;67(17):7966-71 PMID: 17804703
  88. NRH:quinone oxidoreductase 2 (NQO2) catalyzes metabolic activation of quinones and anti-tumor drugs.
    Biochem Pharmacol. 2006 Jul 28;72(3):366-76 PMID: 16765324
  89. Oxygen dependence of the metabolic activation and cytotoxicity of tirapazamine: implications for extravascular transport and activity in tumors.
    Radiat Res. 2004 Jun;161(6):656-66 PMID: 15161354
  90. The control of the metabolic switch in cancers by oncogenes and tumor suppressor genes.
    Science. 2010 Dec 3;330(6009):1340-4 PMID: 21127244
  91. Radiolytic and cellular reduction of a novel hypoxia-activated cobalt(III) prodrug of a chloromethylbenzindoline DNA minor groove alkylator.
    Biochem Pharmacol. 2006 Jun 14;71(12):1683-94 PMID: 16620789
  92. Hypoxia predicts aggressive growth and spontaneous metastasis formation from orthotopically grown primary xenografts of human pancreatic cancer.
    Cancer Res. 2011 Apr 15;71(8):3110-20 PMID: 21343390
  93. Synthetic lethal screen identification of chemosensitizer loci in cancer cells.
    Nature. 2007 Apr 12;446(7137):815-9 PMID: 17429401
  94. Chemical radiosensitizers for use in radiotherapy.
    Clin Oncol (R Coll Radiol). 2007 Aug;19(6):397-417 PMID: 17478086
  95. The FAD- and O(2)-dependent reaction cycle of Ero1-mediated oxidative protein folding in the endoplasmic reticulum.
    Mol Cell. 2002 Nov;10(5):983-94 PMID: 12453408
  96. Use of three-dimensional tissue cultures to model extravascular transport and predict in vivo activity of hypoxia-targeted anticancer drugs.
    J Natl Cancer Inst. 2006 Aug 16;98(16):1118-28 PMID: 16912264
  97. Bioreductively activated lysyl oxidase inhibitors against hypoxic tumours.
    ChemMedChem. 2009 Oct;4(10):1590-4 PMID: 19685543
  98. DNA repair pathways as targets for cancer therapy.
    Nat Rev Cancer. 2008 Mar;8(3):193-204 PMID: 18256616
  99. Pharmacokinetic/pharmacodynamic modeling identifies SN30000 and SN29751 as tirapazamine analogues with improved tissue penetration and hypoxic cell killing in tumors.
    Clin Cancer Res. 2010 Oct 15;16(20):4946-57 PMID: 20732963
  100. Preferential cytotoxicity of 5-thio-D-glucose against hypoxic tumor cells.
    J Natl Cancer Inst. 1976 Sep;57(3):603-5 PMID: 824455
  101. Potential bioreductive alkylating agents. 1. Benzoquinone derivatives.
    J Med Chem. 1972 Dec;15(12):1247-52 PMID: 4635968
  102. Regulation of cancer cell metabolism.
    Nat Rev Cancer. 2011 Feb;11(2):85-95 PMID: 21258394
  103. Restoring p53 function in cancer: novel therapeutic approaches for applying the brakes to tumorigenesis.
    Recent Pat Anticancer Drug Discov. 2010 Jan;5(1):1-13 PMID: 19663772
  104. Metabolism of SR 4233 by Chinese hamster ovary cells: basis of selective hypoxic cytotoxicity.
    Cancer Res. 1988 Nov 1;48(21):5947-52 PMID: 3167847
  105. A novel inhibitor of glucose uptake sensitizes cells to FAS-induced cell death.
    Mol Cancer Ther. 2008 Nov;7(11):3546-55 PMID: 19001437
  106. Roles of DNA repair and reductase activity in the cytotoxicity of the hypoxia-activated dinitrobenzamide mustard PR-104A.
    Mol Cancer Ther. 2009 Jun;8(6):1714-23 PMID: 19509245
  107. A general mechanism for microsomal activation of quinone anticancer agents to free radicals.
    Cancer Res. 1978 Jun;38(6):1745-50 PMID: 25710
  108. Involvement of human cytochromes P450 (CYP) in the reductive metabolism of AQ4N, a hypoxia activated anthraquinone di-N-oxide prodrug.
    Int J Radiat Oncol Biol Phys. 1998 Nov 1;42(4):763-7 PMID: 9845092
  109. Hypoxia promotes invasive growth by transcriptional activation of the met protooncogene.
    Cancer Cell. 2003 Apr;3(4):347-61 PMID: 12726861
  110. Regulation of autophagy through multiple independent hypoxic signaling pathways.
    Curr Mol Med. 2009 May;9(4):417-24 PMID: 19519399
  111. Cells at intermediate oxygen levels can be more important than the "hypoxic fraction" in determining tumor response to fractionated radiotherapy.
    Radiat Res. 1997 May;147(5):541-50 PMID: 9146699
  112. Hypoxia-mediated selection of cells with diminished apoptotic potential in solid tumours.
    Nature. 1996 Jan 4;379(6560):88-91 PMID: 8538748
  113. Extravascular diffusion of tirapazamine: effect of metabolic consumption assessed using the multicellular layer model.
    Int J Radiat Oncol Biol Phys. 1998 Oct 1;42(3):641-9 PMID: 9806526
  114. Monocarboxylate transporter MCT1 is a target for immunosuppression.
    Nat Chem Biol. 2005 Dec;1(7):371-6 PMID: 16370372
  115. Hypoxia-induced expression of carbonic anhydrase 9 is dependent on the unfolded protein response.
    J Biol Chem. 2009 Sep 4;284(36):24204-12 PMID: 19564335
  116. DNA strand damage product analysis provides evidence that the tumor cell-specific cytotoxin tirapazamine produces hydroxyl radical and acts as a surrogate for O(2).
    J Am Chem Soc. 2007 Oct 24;129(42):12870-7 PMID: 17900117
  117. Immunodetection of NAD(P)H:quinone oxidoreductase 1 (NQO1) in human tissues.
    Free Radic Biol Med. 2000 Aug;29(3-4):246-53 PMID: 11035253
  118. The experimental development of bioreductive drugs and their role in cancer therapy.
    Cancer Metastasis Rev. 1993 Jun;12(2):73-82 PMID: 8375022
  119. Electron transfer and oxidative stress as key factors in the design of drugs selectively active in hypoxia.
    Curr Med Chem. 2001 Jun;8(7):739-61 PMID: 11375747
  120. Evaluation of bioreductive drugs in multicell spheroids.
    Int J Radiat Oncol Biol Phys. 1992;22(4):689-92 PMID: 1544838
  121. Preconditioning of the tumor vasculature and tumor cells by intermittent hypoxia: implications for anticancer therapies.
    Cancer Res. 2006 Dec 15;66(24):11736-44 PMID: 17178869
  122. Ribonucleotide reductases.
    Annu Rev Biochem. 2006;75:681-706 PMID: 16756507
  123. Down-regulation of Rad51 and decreased homologous recombination in hypoxic cancer cells.
    Mol Cell Biol. 2004 Oct;24(19):8504-18 PMID: 15367671
  124. Efficacy of 2-halogen substituted D-glucose analogs in blocking glycolysis and killing "hypoxic tumor cells".
    Cancer Chemother Pharmacol. 2006 Dec;58(6):725-34 PMID: 16555088
  125. Assessment of tumour hypoxia for prediction of response to therapy and cancer prognosis.
    J Cell Mol Med. 2010 Jan;14(1-2):18-29 PMID: 19840191
  126. Hsp90 regulates a von Hippel Lindau-independent hypoxia-inducible factor-1 alpha-degradative pathway.
    J Biol Chem. 2002 Aug 16;277(33):29936-44 PMID: 12052835
  127. Nitric oxide synthases catalyze the activation of redox cycling and bioreductive anticancer agents.
    Cancer Res. 1999 Apr 15;59(8):1929-34 PMID: 10213502
  128. Measurement of delivery and metabolism of tirapazamine to tumour tissue using the multilayered cell culture model.
    Cancer Chemother Pharmacol. 1999;43(3):213-20 PMID: 9923551
  129. Radiation activates HIF-1 to regulate vascular radiosensitivity in tumors: role of reoxygenation, free radicals, and stress granules.
    Cancer Cell. 2004 May;5(5):429-41 PMID: 15144951
  130. MITOMYCIN C: CHEMICAL AND BIOLOGICAL STUDIES ON ALKYLATION.
    Science. 1963 Nov 29;142(3596):1181-3 PMID: 14069241
  131. Dissecting the role of multiple reductases in bioactivation and cytotoxicity of the antitumor agent 2,5-diaziridinyl-3-(hydroxymethyl)-6-methyl-1,4-benzoquinone (RH1).
    Mol Pharmacol. 2008 Dec;74(6):1657-65 PMID: 18794327
  132. Regulation of autophagy by ATF4 in response to severe hypoxia.
    Oncogene. 2010 Aug 5;29(31):4424-35 PMID: 20514020
  133. Rationale for the use of aliphatic N-oxides of cytotoxic anthraquinones as prodrug DNA binding agents: a new class of bioreductive agent.
    Cancer Metastasis Rev. 1993 Jun;12(2):119-34 PMID: 8375016
  134. Combining bioreductive drugs and radiation for the treatment of solid tumors.
    Semin Radiat Oncol. 2003 Jan;13(1):42-52 PMID: 12520463
  135. Small-molecule activation of p53 blocks hypoxia-inducible factor 1alpha and vascular endothelial growth factor expression in vivo and leads to tumor cell apoptosis in normoxia and hypoxia.
    Mol Cell Biol. 2009 Apr;29(8):2243-53 PMID: 19223463
  136. The bioreductive prodrug PR-104A is activated under aerobic conditions by human aldo-keto reductase 1C3.
    Cancer Res. 2010 Feb 15;70(4):1573-84 PMID: 20145130
  137. The unfolded protein response and integrated stress response to anoxia.
    Clin Cancer Res. 2007 May 1;13(9):2537-40 PMID: 17473181
  138. Targeting tumor hypoxia: suppression of breast tumor growth and metastasis by novel carbonic anhydrase IX inhibitors.
    Cancer Res. 2011 May 1;71(9):3364-76 PMID: 21415165
  139. The aldo-keto reductase AKR1C3 contributes to 7,12-dimethylbenz(a)anthracene-3,4-dihydrodiol mediated oxidative DNA damage in myeloid cells: implications for leukemogenesis.
    Mutat Res. 2009 Mar 9;662(1-2):67-74 PMID: 19162045
  140. The nitroreductase enzyme in Walker cells that activates 5-(aziridin-1-yl)-2,4-dinitrobenzamide (CB 1954) to 5-(aziridin-1-yl)-4-hydroxylamino-2-nitrobenzamide is a form of NAD(P)H dehydrogenase (quinone) (EC 1.6.99.2).
    Biochem Pharmacol. 1988 Dec 15;37(24):4671-7 PMID: 3144286
  141. Inhibition of vasculogenesis, but not angiogenesis, prevents the recurrence of glioblastoma after irradiation in mice.
    J Clin Invest. 2010 Mar;120(3):694-705 PMID: 20179352
  142. Hypoxia signalling through mTOR and the unfolded protein response in cancer.
    Nat Rev Cancer. 2008 Nov;8(11):851-64 PMID: 18846101
  143. Targeting hypoxia cell signaling for cancer therapy.
    Cancer Metastasis Rev. 2007 Jun;26(2):341-52 PMID: 17415529
  144. Molecular and cellular regulation of glucose transporter (GLUT) proteins in cancer.
    J Cell Physiol. 2005 Mar;202(3):654-62 PMID: 15389572
  145. Physiologic and cytotoxic effects of tirapazamine in tumor-bearing mice.
    Radiat Oncol Investig. 1997;5(5):213-9 PMID: 9372543
  146. Tumour hypoxia induces a metabolic shift causing acidosis: a common feature in cancer.
    J Cell Mol Med. 2010 Apr;14(4):771-94 PMID: 20015196
  147. Human monoclonal antibodies targeting carbonic anhydrase IX for the molecular imaging of hypoxic regions in solid tumours.
    Br J Cancer. 2009 Aug 18;101(4):645-57 PMID: 19623173
  148. Genetically modified macrophages expressing hypoxia regulated cytochrome P450 and P450 reductase for the treatment of cancer.
    Int J Mol Med. 2011 Feb;27(2):173-80 PMID: 21165551
  149. Prognostic significance of [18F]-misonidazole positron emission tomography-detected tumor hypoxia in patients with advanced head and neck cancer randomly assigned to chemoradiation with or without tirapazamine: a substudy of Trans-Tasman Radiation Oncology Group Study 98.02.
    J Clin Oncol. 2006 May 1;24(13):2098-104 PMID: 16648512
  150. Increased cell killing by metronidazole and nitrofurazone of hypoxic compared to aerobic mammalian cells.
    Cancer Res. 1976 Mar;36(3):930-6 PMID: 1253180
  151. EZH2 promotes expansion of breast tumor initiating cells through activation of RAF1-β-catenin signaling.
    Cancer Cell. 2011 Jan 18;19(1):86-100 PMID: 21215703
  152. Hypoxia-selective 3-alkyl 1,2,4-benzotriazine 1,4-dioxides: the influence of hydrogen bond donors on extravascular transport and antitumor activity.
    J Med Chem. 2007 Dec 27;50(26):6654-64 PMID: 18052317
  153. Contextual synthetic lethality of cancer cell kill based on the tumor microenvironment.
    Cancer Res. 2010 Oct 15;70(20):8045-54 PMID: 20924112
  154. Hypoxia, clonal selection, and the role of HIF-1 in tumor progression.
    Crit Rev Biochem Mol Biol. 2000;35(2):71-103 PMID: 10821478
  155. Targeting the hypoxia-inducible factor (HIF) pathway in cancer.
    Expert Rev Mol Med. 2009 Aug 27;11:e26 PMID: 19709449
  156. Hypoxia-mediated down-regulation of Bid and Bax in tumors occurs via hypoxia-inducible factor 1-dependent and -independent mechanisms and contributes to drug resistance.
    Mol Cell Biol. 2004 Apr;24(7):2875-89 PMID: 15024076
  157. Molecular imaging of hypoxia with radiolabelled agents.
    Eur J Nucl Med Mol Imaging. 2009 Oct;36(10):1674-86 PMID: 19565239
  158. Bis-bioreductive agents as hypoxia-selective cytotoxins: nitracrine N-oxide.
    Int J Radiat Oncol Biol Phys. 1992;22(4):693-6 PMID: 1544839
  159. A marker of homologous recombination predicts pathologic complete response to neoadjuvant chemotherapy in primary breast cancer.
    Clin Cancer Res. 2010 Dec 15;16(24):6159-68 PMID: 20802015
  160. "Translating" tumor hypoxia: unfolded protein response (UPR)-dependent and UPR-independent pathways.
    Mol Cancer Res. 2006 Jul;4(7):423-36 PMID: 16849518
  161. Imaging the unfolded protein response in primary tumors reveals microenvironments with metabolic variations that predict tumor growth.
    Cancer Res. 2010 Jan 1;70(1):78-88 PMID: 20028872
  162. Selective treatment of hypoxic tumor cells in vivo: phosphate pre-prodrugs of nitro analogues of the duocarmycins.
    Angew Chem Int Ed Engl. 2011 Mar 7;50(11):2606-9 PMID: 21370347
  163. Chronic hypoxia decreases synthesis of homologous recombination proteins to offset chemoresistance and radioresistance.
    Cancer Res. 2008 Jan 15;68(2):605-14 PMID: 18199558
  164. Marked activity of irinotecan and rapamycin combination toward colon cancer cells in vivo and in vitro is mediated through cooperative modulation of the mammalian target of rapamycin/hypoxia-inducible factor-1alpha axis.
    Clin Cancer Res. 2009 Feb 15;15(4):1297-307 PMID: 19190131
  165. ER stress-regulated translation increases tolerance to extreme hypoxia and promotes tumor growth.
    EMBO J. 2005 Oct 5;24(19):3470-81 PMID: 16148948
  166. Tirapazamine, cisplatin, and radiation versus cisplatin and radiation for advanced squamous cell carcinoma of the head and neck (TROG 02.02, HeadSTART): a phase III trial of the Trans-Tasman Radiation Oncology Group.
    J Clin Oncol. 2010 Jun 20;28(18):2989-95 PMID: 20479425
  167. Oxygen-dependent ATF-4 stability is mediated by the PHD3 oxygen sensor.
    Blood. 2007 Nov 15;110(10):3610-7 PMID: 17684156
  168. Tumor hypoxia as a modifier of DNA strand break and cross-link repair.
    Curr Mol Med. 2009 May;9(4):401-10 PMID: 19519397
  169. A novel promoter element containing multiple overlapping xenobiotic and hypoxia response elements mediates induction of cytochrome P4502S1 by both dioxin and hypoxia.
    J Biol Chem. 2007 Apr 13;282(15):10881-93 PMID: 17277313
  170. Oxygen dependence of the cytotoxicity and metabolic activation of 4-alkylamino-5-nitroquinoline bioreductive drugs.
    Br J Cancer. 1994 Oct;70(4):596-603 PMID: 7917903
  171. 2-nitroimidazol-5-ylmethyl as a potential bioreductively activated prodrug system: reductively triggered release of the PARP inhibitor 5-bromoisoquinolinone.
    Bioorg Med Chem Lett. 1999 Jul 19;9(14):2031-6 PMID: 10450975
  172. Phase 1 study of the safety, tolerability, and pharmacokinetics of TH-302, a hypoxia-activated prodrug, in patients with advanced solid malignancies.
    Clin Cancer Res. 2011 May 1;17(9):2997-3004 PMID: 21415214
  173. Monocarboxylate transporter 4 regulates maturation and trafficking of CD147 to the plasma membrane in the metastatic breast cancer cell line MDA-MB-231.
    Cancer Res. 2007 May 1;67(9):4182-9 PMID: 17483329
  174. A novel design strategy for stable metal complexes of nitrogen mustards as bioreductive prodrugs.
    J Med Chem. 2004 Nov 4;47(23):5683-9 PMID: 15509167
  175. Identification of an Ire1alpha endonuclease specific inhibitor with cytotoxic activity against human multiple myeloma.
    Blood. 2011 Jan 27;117(4):1311-4 PMID: 21081713
  176. Prognostic value of tumor oxygenation in 397 head and neck tumors after primary radiation therapy. An international multi-center study.
    Radiother Oncol. 2005 Oct;77(1):18-24 PMID: 16098619
  177. 18F-EF5: a new PET tracer for imaging hypoxia in head and neck cancer.
    J Nucl Med. 2008 Dec;49(12):1944-51 PMID: 18997048
  178. Inhibition of ATR leads to increased sensitivity to hypoxia/reoxygenation.
    Cancer Res. 2004 Sep 15;64(18):6556-62 PMID: 15374968
  179. Spin trapping of radicals other than the *OH radical upon reduction of the anticancer agent tirapazamine by cytochrome P450 reductase.
    J Am Chem Soc. 2009 Oct 14;131(40):14220-1 PMID: 19772319
  180. Non-nuclear localized human NOSII enhances the bioactivation and toxicity of tirapazamine (SR4233) in vitro.
    Mol Pharmacol. 2003 Jun;63(6):1248-55 PMID: 12761334
Article Info
Journal
Nature reviews. Cancer
Abbr.
Nat Rev Cancer
ISSN
1474-1768
Published
2011-06-00
Pages
393-410
Language
English
Region
England
NLM ID
101124168
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com