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Published in: Cancer Immunology, Immunotherapy 12/2009

01-12-2009 | Original Article

Bortezomib pre-treatment prolongs interferon-alpha-induced STAT1 phosphorylation in melanoma cells

Authors: Gregory B. Lesinski, Kristen Benninger, Melanie Kreiner, Megan Quimper, Gregory Young, William E. Carson III

Published in: Cancer Immunology, Immunotherapy | Issue 12/2009

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Abstract

Bortezomib is a proteasome inhibitor that can synergize with interferon-alpha (IFN-α) to induce apoptosis in melanoma cells in vitro and inhibit tumor growth in vivo. We hypothesized that proteasome inhibition may be an effective means to sensitize melanoma cells to the direct effects of IFN-α. Pre-treatment of human melanoma cells with bortezomib led to significantly increased transcription of interferon-stimulated genes as determined by real-time PCR. Flow cytometric and immunoblot analyses indicated that the enhanced direct actions of IFN-α on melanoma cells were the result of prolonged phosphorylation of STAT1 (P-STAT1) on both the Tyrosine701 and Serine727 residues. In contrast, the enhanced IFN-α-induced P-STAT1 was not observed in peripheral blood mononuclear cells that were pre-treated with bortezomib. These data suggest that proteasome inhibition represents a mechanism to enhance the direct effects of IFN-α on melanoma cells thereby complementing its immunostimulatory properties.
Literature
1.
go back to reference American Cancer Society (2007) Cancer facts and figures for 2006. American Cancer Society, Atlanta American Cancer Society (2007) Cancer facts and figures for 2006. American Cancer Society, Atlanta
2.
go back to reference Kabbarah O, Chin L (2005) Revealing the genomic heterogeneity of melanoma. Cancer Cell 8(6):439–441PubMedCrossRef Kabbarah O, Chin L (2005) Revealing the genomic heterogeneity of melanoma. Cancer Cell 8(6):439–441PubMedCrossRef
3.
go back to reference Belardelli FM, Ferrantini E, Proietti et al (2002) Interferon-alpha in tumor immunity and immunotherapy. Cytokine Growth Factor Rev 13(2):119–134PubMedCrossRef Belardelli FM, Ferrantini E, Proietti et al (2002) Interferon-alpha in tumor immunity and immunotherapy. Cytokine Growth Factor Rev 13(2):119–134PubMedCrossRef
4.
go back to reference Gogas H, Ioannovich J, Dafni U et al (2006) Prognostic significance of autoimmunity during treatment of melanoma with interferon. N Engl J Med 354(7):709–718PubMedCrossRef Gogas H, Ioannovich J, Dafni U et al (2006) Prognostic significance of autoimmunity during treatment of melanoma with interferon. N Engl J Med 354(7):709–718PubMedCrossRef
5.
go back to reference Lesinski GB, Anghelina M, Zimmerer J et al (2003) The anti-tumor effects of interferon-alpha are abrogated in a STAT1-deficient mouse. J Clin Invest 112(2):170–180PubMed Lesinski GB, Anghelina M, Zimmerer J et al (2003) The anti-tumor effects of interferon-alpha are abrogated in a STAT1-deficient mouse. J Clin Invest 112(2):170–180PubMed
6.
go back to reference Moschos SJ, Edington HD, Land SR et al (2006) Neoadjuvant treatment of regional stage IIIB melanoma with high-dose interferon alfa-2b induces objective tumor regression in association with modulation of tumor infiltrating host cellular immune responses. J Clin Oncol 24(19):3164–3171PubMedCrossRef Moschos SJ, Edington HD, Land SR et al (2006) Neoadjuvant treatment of regional stage IIIB melanoma with high-dose interferon alfa-2b induces objective tumor regression in association with modulation of tumor infiltrating host cellular immune responses. J Clin Oncol 24(19):3164–3171PubMedCrossRef
7.
go back to reference Levy DE, Gilliland DG (2000) Divergent roles of STAT1 and STAT5 in malignancy as revealed by gene disruptions in mice. Oncogene 19(21):2505–2510PubMedCrossRef Levy DE, Gilliland DG (2000) Divergent roles of STAT1 and STAT5 in malignancy as revealed by gene disruptions in mice. Oncogene 19(21):2505–2510PubMedCrossRef
8.
go back to reference Pansky A, Hildebrand P, Fasler-Kan E et al (2000) Defective Jak-STAT signal transduction pathway in melanoma cells resistant to growth inhibition by interferon-alpha. Int J Cancer 85(5):720–725PubMedCrossRef Pansky A, Hildebrand P, Fasler-Kan E et al (2000) Defective Jak-STAT signal transduction pathway in melanoma cells resistant to growth inhibition by interferon-alpha. Int J Cancer 85(5):720–725PubMedCrossRef
9.
go back to reference Thyrell L, Erickson S, Zhivotovsky B et al (2002) Mechanisms of interferon-alpha induced apoptosis in malignant cells. Oncogene 21(8):1251–1262PubMedCrossRef Thyrell L, Erickson S, Zhivotovsky B et al (2002) Mechanisms of interferon-alpha induced apoptosis in malignant cells. Oncogene 21(8):1251–1262PubMedCrossRef
10.
go back to reference Jackson DP, Watling D, Rogers NC et al (2003) The JAK/STAT pathway is not sufficient to sustain the antiproliferative response in an interferon-resistant human melanoma cell line. Melanoma Res 13(3):219–229PubMedCrossRef Jackson DP, Watling D, Rogers NC et al (2003) The JAK/STAT pathway is not sufficient to sustain the antiproliferative response in an interferon-resistant human melanoma cell line. Melanoma Res 13(3):219–229PubMedCrossRef
11.
go back to reference Lesinski GB, Trefry J, Brasdovich M et al (2007) Melanoma cells exhibit variable signal transducer and activator of transcription 1 phosphorylation and a reduced response to IFN-alpha compared with immune effector cells. Clin Cancer Res 13(17):5010–5019PubMedCrossRef Lesinski GB, Trefry J, Brasdovich M et al (2007) Melanoma cells exhibit variable signal transducer and activator of transcription 1 phosphorylation and a reduced response to IFN-alpha compared with immune effector cells. Clin Cancer Res 13(17):5010–5019PubMedCrossRef
12.
go back to reference Lesinski GB, Raig ET, Guenterberg K et al (2008) IFN-alpha and bortezomib overcome Bcl-2 and Mcl-1 overexpression in melanoma cells by stimulating the extrinsic pathway of apoptosis. Cancer Res 68(20):8351–8360PubMedCrossRef Lesinski GB, Raig ET, Guenterberg K et al (2008) IFN-alpha and bortezomib overcome Bcl-2 and Mcl-1 overexpression in melanoma cells by stimulating the extrinsic pathway of apoptosis. Cancer Res 68(20):8351–8360PubMedCrossRef
13.
go back to reference Vermes I, Haanen C, Steffens-Nakken H et al (1995) A novel assay for apoptosis. Flow cytometric detection of phosphatidylserine expression on early apoptotic cells using fluorescein labelled Annexin V. J Immunol Methods 184(1):39–51PubMedCrossRef Vermes I, Haanen C, Steffens-Nakken H et al (1995) A novel assay for apoptosis. Flow cytometric detection of phosphatidylserine expression on early apoptotic cells using fluorescein labelled Annexin V. J Immunol Methods 184(1):39–51PubMedCrossRef
14.
go back to reference Kramer C (1956) Extension of multiple range tests to group means with unequal numbers of replications. Biometrics 12:309–310CrossRef Kramer C (1956) Extension of multiple range tests to group means with unequal numbers of replications. Biometrics 12:309–310CrossRef
15.
go back to reference Gollob JA, Sciambi CJ, Huang Z et al (2005) Gene expression changes and signaling events associated with the direct antimelanoma effect of IFN-gamma. Cancer Res 65(19):8869–8877PubMedCrossRef Gollob JA, Sciambi CJ, Huang Z et al (2005) Gene expression changes and signaling events associated with the direct antimelanoma effect of IFN-gamma. Cancer Res 65(19):8869–8877PubMedCrossRef
16.
go back to reference Pamment J, Ramsay E, Kelleher M et al (2002) Regulation of the IRF-1 tumour modifier during the response to genotoxic stress involves an ATM-dependent signalling pathway. Oncogene 21(51):7776–7785PubMedCrossRef Pamment J, Ramsay E, Kelleher M et al (2002) Regulation of the IRF-1 tumour modifier during the response to genotoxic stress involves an ATM-dependent signalling pathway. Oncogene 21(51):7776–7785PubMedCrossRef
17.
go back to reference Caraglia M, Vitale G, Marra M et al (2004) Alpha-interferon and its effects on signalling pathways within cells. Curr Protein Pept Sci 5(6):475–485PubMedCrossRef Caraglia M, Vitale G, Marra M et al (2004) Alpha-interferon and its effects on signalling pathways within cells. Curr Protein Pept Sci 5(6):475–485PubMedCrossRef
18.
go back to reference Chawla-Sarkar M, Lindner DJ, Liu YF et al (2003) Apoptosis and interferons: role of interferon-stimulated genes as mediators of apoptosis. Apoptosis 8(3):237–249PubMedCrossRef Chawla-Sarkar M, Lindner DJ, Liu YF et al (2003) Apoptosis and interferons: role of interferon-stimulated genes as mediators of apoptosis. Apoptosis 8(3):237–249PubMedCrossRef
19.
20.
go back to reference Hamilton AL, Eder JP, Pavlick AC et al (2005) Proteasome inhibition with bortezomib (PS-341): a phase I study with pharmacodynamic end points using a day 1 and day 4 schedule in a 14-day cycle. J Clin Oncol 23(25):6107–6116PubMedCrossRef Hamilton AL, Eder JP, Pavlick AC et al (2005) Proteasome inhibition with bortezomib (PS-341): a phase I study with pharmacodynamic end points using a day 1 and day 4 schedule in a 14-day cycle. J Clin Oncol 23(25):6107–6116PubMedCrossRef
21.
go back to reference Armeanu S, Krusch M, Baltz KM et al (2008) Direct and natural killer cell-mediated antitumor effects of low-dose bortezomib in hepatocellular carcinoma. Clin Cancer Res 14(11):3520–3528PubMedCrossRef Armeanu S, Krusch M, Baltz KM et al (2008) Direct and natural killer cell-mediated antitumor effects of low-dose bortezomib in hepatocellular carcinoma. Clin Cancer Res 14(11):3520–3528PubMedCrossRef
22.
go back to reference Voortman J, Resende TP, Abou El Hassan MA et al (2007) TRAIL therapy in non-small cell lung cancer cells: sensitization to death receptor-mediated apoptosis by proteasome inhibitor bortezomib. Mol Cancer Ther 6(7):2103–2112PubMedCrossRef Voortman J, Resende TP, Abou El Hassan MA et al (2007) TRAIL therapy in non-small cell lung cancer cells: sensitization to death receptor-mediated apoptosis by proteasome inhibitor bortezomib. Mol Cancer Ther 6(7):2103–2112PubMedCrossRef
23.
go back to reference Papageorgiou A, Kamat A, Benedict WF et al (2006) Combination therapy with IFN-alpha plus bortezomib induces apoptosis and inhibits angiogenesis in human bladder cancer cells. Mol Cancer Ther 5(12):3032–3041PubMedCrossRef Papageorgiou A, Kamat A, Benedict WF et al (2006) Combination therapy with IFN-alpha plus bortezomib induces apoptosis and inhibits angiogenesis in human bladder cancer cells. Mol Cancer Ther 5(12):3032–3041PubMedCrossRef
Metadata
Title
Bortezomib pre-treatment prolongs interferon-alpha-induced STAT1 phosphorylation in melanoma cells
Authors
Gregory B. Lesinski
Kristen Benninger
Melanie Kreiner
Megan Quimper
Gregory Young
William E. Carson III
Publication date
01-12-2009
Publisher
Springer-Verlag
Published in
Cancer Immunology, Immunotherapy / Issue 12/2009
Print ISSN: 0340-7004
Electronic ISSN: 1432-0851
DOI
https://doi.org/10.1007/s00262-009-0710-y

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