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Published in: BMC Cancer 1/2009

Open Access 01-12-2009 | Research article

siRNA inhibition of telomerase enhances the anti-cancer effect of doxorubicin in breast cancer cells

Authors: Xuejun Dong, Anding Liu, Cindy Zer, Jianguo Feng, Zhuan Zhen, Mingfeng Yang, Li Zhong

Published in: BMC Cancer | Issue 1/2009

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Abstract

Background

Doxorubicin is an effective breast cancer drug but is hampered by a severe, dose-dependent toxicity. Concomitant administration of doxorubicin and another cancer drug may be able to sensitize tumor cells to the cytotoxicity of doxorubicin and lowers the therapeutic dosage. In this study, we examined the combined effect of low-dose doxorubicin and siRNA inhibition of telomerase on breast cancer cells. We found that when used individually, both treatments were rapid and potent apoptosis inducers; and when the two treatments were combined, we observed an enhanced and sustained apoptosis induction in breast cancer cells.

Methods

siRNA targeting the mRNA of the protein component of telomerase, the telomerase reverse transcriptase (hTERT), was transfected into two breast cancer cell lines. The siRNA inhibition was confirmed by RT-PCR and western blot on hTERT mRNA and protein levels, respectively, and by measuring the activity level of telomerase using the TRAP assay. The effect of the hTERT siRNA on the tumorigenicity of the breast cancer cells was also studied in vivo by injection of the siRNA-transfected breast cancer cells into nude mice.
The effects on cell viability, apoptosis and senescence of cells treated with hTERT siRNA, doxorubicin, and the combined treatment of doxorubicin and hTERT siRNA, were examined in vitro by MTT assay, FACS and SA-β-galactosidase staining.

Results

The hTERT siRNA effectively knocked down the mRNA and protein levels of hTERT, and reduced the telomerase activity to 30% of the untreated control. In vivo, the tumors induced by the hTERT siRNA-transfected cells were of reduced sizes, indicating that the hTERT siRNA also reduced the tumorigenic potential of the breast cancer cells. The siRNA treatment reduced cell viability by 50% in breast cancer cells within two days after transfection, while 0.5 μM doxorubicin treatment had a comparable effect but with a slower kinetics. The combination of hTERT siRNA and 0.5 μM doxorubicin killed twice as many cancer cells, showing a cumulative effect of the two treatments.

Conclusion

The study demonstrated the potential of telomerase inhibition as an effective treatment for breast cancer. When used in conjunction to doxorubicin, it could potentiate the cytotoxic effect of the drug to breast cancer cells.
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Literature
1.
go back to reference Moulder S, Hortobagyi GN: Advances in the treatment of breast cancer. Clin Pharmacol Ther. 2008, 83: 26-36.CrossRefPubMed Moulder S, Hortobagyi GN: Advances in the treatment of breast cancer. Clin Pharmacol Ther. 2008, 83: 26-36.CrossRefPubMed
2.
go back to reference McArthur HL, Hudis CA: Dose-dense therapy in the treatment of early-stage breast cancer: an overview of the data. Clin Breast Cancer. 2007, 8 (Suppl 1): S6-S10.CrossRefPubMed McArthur HL, Hudis CA: Dose-dense therapy in the treatment of early-stage breast cancer: an overview of the data. Clin Breast Cancer. 2007, 8 (Suppl 1): S6-S10.CrossRefPubMed
3.
go back to reference O'Shaughnessy J: Liposomal anthracyclines for breast cancer: overview. Oncologist. 2003, 8 (Suppl 2): 1-2.CrossRefPubMed O'Shaughnessy J: Liposomal anthracyclines for breast cancer: overview. Oncologist. 2003, 8 (Suppl 2): 1-2.CrossRefPubMed
4.
go back to reference Gonzalez-Angulo AM, Morales-Vasquez F, Hortobagyi GN: Overview of resistance to systemic therapy in patients with breast cancer. Adv Exp Med Biol. 2007, 608: 1-22.CrossRefPubMed Gonzalez-Angulo AM, Morales-Vasquez F, Hortobagyi GN: Overview of resistance to systemic therapy in patients with breast cancer. Adv Exp Med Biol. 2007, 608: 1-22.CrossRefPubMed
5.
go back to reference Bergh J, Jönsson PE, Glimelius B, Nygren P, SBU-group. Swedish Council of Technology Assessment in Health Care: A systematic overview of chemotherapy effects in breast cancer. Acta Oncol. 2001, 40: 253-81.CrossRefPubMed Bergh J, Jönsson PE, Glimelius B, Nygren P, SBU-group. Swedish Council of Technology Assessment in Health Care: A systematic overview of chemotherapy effects in breast cancer. Acta Oncol. 2001, 40: 253-81.CrossRefPubMed
6.
go back to reference Hortobágyi GN: Anthracyclines in the treatment of cancer. An overview. Drugs. 1997, 54 (Suppl 4): 1-7.CrossRefPubMed Hortobágyi GN: Anthracyclines in the treatment of cancer. An overview. Drugs. 1997, 54 (Suppl 4): 1-7.CrossRefPubMed
7.
go back to reference Tanaka T, Decuzzi P, Cristofanilli M, Sakamoto JH, Tasciotti E, Robertson FM, Ferrari M: Nanotechnology for breast cancer therapy. Biomed Microdevices. 2009, 11 (1): 49-63.CrossRefPubMed Tanaka T, Decuzzi P, Cristofanilli M, Sakamoto JH, Tasciotti E, Robertson FM, Ferrari M: Nanotechnology for breast cancer therapy. Biomed Microdevices. 2009, 11 (1): 49-63.CrossRefPubMed
8.
go back to reference Tewey KM, Rowe TC, Yang L, Halligan BD, Liu LF: Adriamycin-induced DNA damage mediated by mammalian DNA topoisomerase II. Science. 1984, 226: 466-8.CrossRefPubMed Tewey KM, Rowe TC, Yang L, Halligan BD, Liu LF: Adriamycin-induced DNA damage mediated by mammalian DNA topoisomerase II. Science. 1984, 226: 466-8.CrossRefPubMed
9.
go back to reference Armanios M, Greider CW: Telomerase and cancer stem cells. Cold Spring Harb Symp Quant Biol. 2005, 70: 205-8.CrossRefPubMed Armanios M, Greider CW: Telomerase and cancer stem cells. Cold Spring Harb Symp Quant Biol. 2005, 70: 205-8.CrossRefPubMed
10.
go back to reference Blackburn EH: Telomeres and telomerase: their mechanisms of action and the effects of altering their functions. FEBS Lett. 2005, 579 (4): 859-62.CrossRefPubMed Blackburn EH: Telomeres and telomerase: their mechanisms of action and the effects of altering their functions. FEBS Lett. 2005, 579 (4): 859-62.CrossRefPubMed
12.
go back to reference Mokbel K: The role of telomerase in breast cancer. Eur J Surg Oncol. 2000, 5: 509-14.CrossRef Mokbel K: The role of telomerase in breast cancer. Eur J Surg Oncol. 2000, 5: 509-14.CrossRef
13.
go back to reference Pendino F, Tarkanyi I, Dudognon C, Hillion J, Lanotte M, Aradi J, Ségal-Bendirdjian E: Telomeres and telomerase: Pharmacological targets for new anticancer strategies?. Curr Cancer Drug Targets. 2006, 6 (2): 147-80.CrossRefPubMed Pendino F, Tarkanyi I, Dudognon C, Hillion J, Lanotte M, Aradi J, Ségal-Bendirdjian E: Telomeres and telomerase: Pharmacological targets for new anticancer strategies?. Curr Cancer Drug Targets. 2006, 6 (2): 147-80.CrossRefPubMed
14.
go back to reference Meister G, Tuschl T: Mechanisms of gene silencing by double-stranded RNA. Nature. 2004, 431 (7006): 343-9.CrossRefPubMed Meister G, Tuschl T: Mechanisms of gene silencing by double-stranded RNA. Nature. 2004, 431 (7006): 343-9.CrossRefPubMed
15.
go back to reference Fjose A, Ellingsen S, Wargelius A, Seo HC: RNA interference: mechanisms and applications. Biotechnol Annu Rev. 2001, 7: 31-57.CrossRefPubMed Fjose A, Ellingsen S, Wargelius A, Seo HC: RNA interference: mechanisms and applications. Biotechnol Annu Rev. 2001, 7: 31-57.CrossRefPubMed
16.
go back to reference Tong AW, Zhang YA, Nemunaitis J: Small interfering RNA for experimental cancer therapy. Curr Opin Mol Ther. 2005, 7 (2): 114-124.PubMed Tong AW, Zhang YA, Nemunaitis J: Small interfering RNA for experimental cancer therapy. Curr Opin Mol Ther. 2005, 7 (2): 114-124.PubMed
17.
go back to reference Zhang YA, Nemunaitis J, Samuel SK, Chen P, Shen Y, Tong AW: Antitumor activity of an oncolytic adenovirus-delivered oncogene small interfering RNA. Cancer Res. 2006, 66 (19): 9736-43.CrossRefPubMed Zhang YA, Nemunaitis J, Samuel SK, Chen P, Shen Y, Tong AW: Antitumor activity of an oncolytic adenovirus-delivered oncogene small interfering RNA. Cancer Res. 2006, 66 (19): 9736-43.CrossRefPubMed
18.
go back to reference Gandellini P, Folini M, Bandiera R, De Cesare M, Binda M, Veronese S, Daidone MG, Zunino F, Zaffaroni N: Down-regulation of human telomerase reverse transcriptase through specific activation of RNAi pathway quickly results in cancer cell growth impairment. Biochem Pharmacol. 2007, 73 (11): 1703-14.CrossRefPubMed Gandellini P, Folini M, Bandiera R, De Cesare M, Binda M, Veronese S, Daidone MG, Zunino F, Zaffaroni N: Down-regulation of human telomerase reverse transcriptase through specific activation of RNAi pathway quickly results in cancer cell growth impairment. Biochem Pharmacol. 2007, 73 (11): 1703-14.CrossRefPubMed
19.
go back to reference Nakamura M, Masutomi K, Kyo S, Hashimoto M, Maida Y, Kanaya T, Tanaka M, Hahn WC, Inoue M: Efficient inhibition of human telomerase reverse transcriptase expression by RNA interference sensitizes cancer cells to ionizing radiation and chemotherapy. Hum Gene Ther. 2005, 16 (7): 859-68.CrossRefPubMed Nakamura M, Masutomi K, Kyo S, Hashimoto M, Maida Y, Kanaya T, Tanaka M, Hahn WC, Inoue M: Efficient inhibition of human telomerase reverse transcriptase expression by RNA interference sensitizes cancer cells to ionizing radiation and chemotherapy. Hum Gene Ther. 2005, 16 (7): 859-68.CrossRefPubMed
20.
go back to reference Natarajan S, Chen Z, Wancewicz EV, Monia BP, Corey DR: Telomerase reverse transcriptase (hTERT) mRNA and telomerase RNA (hTR) as targets for downregulation of telomerase activity. Oligonucleotides. 2004, 14 (4): 263-73.CrossRefPubMed Natarajan S, Chen Z, Wancewicz EV, Monia BP, Corey DR: Telomerase reverse transcriptase (hTERT) mRNA and telomerase RNA (hTR) as targets for downregulation of telomerase activity. Oligonucleotides. 2004, 14 (4): 263-73.CrossRefPubMed
21.
go back to reference Mo Y, Gan Y, Song S, Johnston J, Xiao X, Wientjes MG, Au JL: Simultaneous targeting of telomeres and telomerase as a cancer therapeutic approach. Cancer Res. 2003, 63 (3): 579-85.PubMed Mo Y, Gan Y, Song S, Johnston J, Xiao X, Wientjes MG, Au JL: Simultaneous targeting of telomeres and telomerase as a cancer therapeutic approach. Cancer Res. 2003, 63 (3): 579-85.PubMed
22.
go back to reference de Souza Nascimento P, Alves G, Fiedler W: Telomerase inhibition by an siRNA directed against hTERT leads to telomere attrition in HT29 cells. Oncol Rep. 2006, 16 (2): 423-428.PubMed de Souza Nascimento P, Alves G, Fiedler W: Telomerase inhibition by an siRNA directed against hTERT leads to telomere attrition in HT29 cells. Oncol Rep. 2006, 16 (2): 423-428.PubMed
23.
go back to reference Zhang PH, Zou L, Tu ZG: RNAi-hTERT inhibition hepatocellular carcinoma cell proliferation via decreasing telomerase activity. J Surg Res. 2006, 131 (1): 143-9.CrossRefPubMed Zhang PH, Zou L, Tu ZG: RNAi-hTERT inhibition hepatocellular carcinoma cell proliferation via decreasing telomerase activity. J Surg Res. 2006, 131 (1): 143-9.CrossRefPubMed
24.
go back to reference Livak KJ, Schmittgen TD: Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. Methods. 2001, 25 (4): 402-8.CrossRefPubMed Livak KJ, Schmittgen TD: Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. Methods. 2001, 25 (4): 402-8.CrossRefPubMed
25.
go back to reference Kirkpatrick KL, Clark G, Ghilchick M, Newbold RF, Mokbel K: hTERT mRNA expression correlates with telomerase activity in human breast cancer. Eur J Surg Oncol. 2003, 29 (4): 321-6.CrossRefPubMed Kirkpatrick KL, Clark G, Ghilchick M, Newbold RF, Mokbel K: hTERT mRNA expression correlates with telomerase activity in human breast cancer. Eur J Surg Oncol. 2003, 29 (4): 321-6.CrossRefPubMed
26.
go back to reference Veldman RJ, Koning GA, van Hell A, Zerp S, Vink SR, Storm G, Verheij M, van Blitterswijk WJ: Coformulated N-octanoyl-glucosylceramide improves cellular delivery and cytotoxicity of liposomal doxorubicin. J Pharmacol Exp Ther. 2005, 315: 704-10.CrossRefPubMed Veldman RJ, Koning GA, van Hell A, Zerp S, Vink SR, Storm G, Verheij M, van Blitterswijk WJ: Coformulated N-octanoyl-glucosylceramide improves cellular delivery and cytotoxicity of liposomal doxorubicin. J Pharmacol Exp Ther. 2005, 315: 704-10.CrossRefPubMed
27.
go back to reference Gewirtz DA, Holt SE, Elmore LW: Accelerated senescence: an emerging role in tumor cell response to chemotherapy and radiation. Biochem Pharmacol. 2008, 76: 947-57.CrossRefPubMed Gewirtz DA, Holt SE, Elmore LW: Accelerated senescence: an emerging role in tumor cell response to chemotherapy and radiation. Biochem Pharmacol. 2008, 76: 947-57.CrossRefPubMed
28.
go back to reference Elmore LW, Rehder CW, Di X, McChesney PA, Jackson-Cook CK, Gewirtz DA, Holt SE: Adriamycin-induced senescence in breast tumor cells involves functional p53 and telomere dysfunction. J Biol Chem. 2002, 277: 35509-15.CrossRefPubMed Elmore LW, Rehder CW, Di X, McChesney PA, Jackson-Cook CK, Gewirtz DA, Holt SE: Adriamycin-induced senescence in breast tumor cells involves functional p53 and telomere dysfunction. J Biol Chem. 2002, 277: 35509-15.CrossRefPubMed
29.
go back to reference Roninson IB, Broude EV, Chang BD: If not apoptosis, then what? Treatment-induced senescence and mitotic catastrophe in tumor cells. Drug Resist Updat. 2001, 4: 303-13.CrossRefPubMed Roninson IB, Broude EV, Chang BD: If not apoptosis, then what? Treatment-induced senescence and mitotic catastrophe in tumor cells. Drug Resist Updat. 2001, 4: 303-13.CrossRefPubMed
30.
go back to reference Demidenko ZN, Blagosklonny MV: Growth stimulation leads to cellular senescence when the cell cycle is blocked. Cell Cycle. 2008, 7: 3355-3361.CrossRefPubMed Demidenko ZN, Blagosklonny MV: Growth stimulation leads to cellular senescence when the cell cycle is blocked. Cell Cycle. 2008, 7: 3355-3361.CrossRefPubMed
31.
go back to reference Cerone MA, Londoño-Vallejo JA, Autexier C: Telomerase inhibition enhances the response to anticancer drug treatment in human breast cancer cells. Mol Cancer Ther. 2006, 5: 1669-75.CrossRefPubMed Cerone MA, Londoño-Vallejo JA, Autexier C: Telomerase inhibition enhances the response to anticancer drug treatment in human breast cancer cells. Mol Cancer Ther. 2006, 5: 1669-75.CrossRefPubMed
32.
go back to reference Tauchi T, Ohyashiki JH, Ohyashiki K: Telomerase inhibition combined with other chemotherapeutic reagents to enhance anti-cancer effect. Methods Mol Biol. 2007, 405: 181-9.CrossRefPubMed Tauchi T, Ohyashiki JH, Ohyashiki K: Telomerase inhibition combined with other chemotherapeutic reagents to enhance anti-cancer effect. Methods Mol Biol. 2007, 405: 181-9.CrossRefPubMed
33.
go back to reference Ludwig A, Saretzki G, Holm PS, Tiemann F, Lorenz M, Emrich T, Harley CB, von Zglinicki T: Ribozyme cleavage of telomerase mRNA sensitizes breast epithelial cells to inhibitors of topoisomerase. Cancer Res. 2001, 61: 3053-61.PubMed Ludwig A, Saretzki G, Holm PS, Tiemann F, Lorenz M, Emrich T, Harley CB, von Zglinicki T: Ribozyme cleavage of telomerase mRNA sensitizes breast epithelial cells to inhibitors of topoisomerase. Cancer Res. 2001, 61: 3053-61.PubMed
34.
go back to reference Pascolo E, Wenz C, Lingner J, Hauel N, Priepke H, Kauffmann I, Garin-Chesa P, Rettig WJ, Damm K, Schnapp A: Mechanism of human telomerase inhibition by BIBR a synthetic, non-nucleosidic drug candidate. J Biol Chem. 1532, 277 (18): 15566-72.CrossRef Pascolo E, Wenz C, Lingner J, Hauel N, Priepke H, Kauffmann I, Garin-Chesa P, Rettig WJ, Damm K, Schnapp A: Mechanism of human telomerase inhibition by BIBR a synthetic, non-nucleosidic drug candidate. J Biol Chem. 1532, 277 (18): 15566-72.CrossRef
35.
go back to reference Damm K, Hemmann U, Garin-Chesa P, Hauel N, Kauffmann I, Priepke H, Niestroj C, Daiber C, Enenkel B, Guilliard B, Lauritsch I, Müller E, Pascolo E, Sauter G, Pantic M, Martens UM, Wenz C, Lingner J, Kraut N, Rettig WJ, Schnapp A: A highly selective telomerase inhibitor limiting human cancer cell proliferation. EMBO J. 2001, 20 (24): 6958-68.CrossRefPubMedPubMedCentral Damm K, Hemmann U, Garin-Chesa P, Hauel N, Kauffmann I, Priepke H, Niestroj C, Daiber C, Enenkel B, Guilliard B, Lauritsch I, Müller E, Pascolo E, Sauter G, Pantic M, Martens UM, Wenz C, Lingner J, Kraut N, Rettig WJ, Schnapp A: A highly selective telomerase inhibitor limiting human cancer cell proliferation. EMBO J. 2001, 20 (24): 6958-68.CrossRefPubMedPubMedCentral
36.
go back to reference Kraemer K, Fuessel S, Schmidt U, Kotzsch M, Schwenzer B, Wirth MP, Meye A: Antisense-mediated hTERT inhibition specifically reduces the growth of human bladder cancer cells. Clin Cancer Res. 2003, 9 (10 Pt 1): 3794-800.PubMed Kraemer K, Fuessel S, Schmidt U, Kotzsch M, Schwenzer B, Wirth MP, Meye A: Antisense-mediated hTERT inhibition specifically reduces the growth of human bladder cancer cells. Clin Cancer Res. 2003, 9 (10 Pt 1): 3794-800.PubMed
37.
go back to reference Folini M, Zaffaroni N: Targeting telomerase by antisense-based approaches: perspectives for new anti-cancer therapies. Curr Pharm Des. 2005, 11 (9): 1105-1117.CrossRefPubMed Folini M, Zaffaroni N: Targeting telomerase by antisense-based approaches: perspectives for new anti-cancer therapies. Curr Pharm Des. 2005, 11 (9): 1105-1117.CrossRefPubMed
38.
go back to reference Sharma GG, Gupta A, Wang H, Scherthan H, Dhar S, Gandhi V, Iliakis G, Shay JW, Young CS, Pandita TK: hTERT associates with human telomeres and enhances genomic stability and DNA repair. Oncogene. 2003, 22: 131-46.CrossRefPubMed Sharma GG, Gupta A, Wang H, Scherthan H, Dhar S, Gandhi V, Iliakis G, Shay JW, Young CS, Pandita TK: hTERT associates with human telomeres and enhances genomic stability and DNA repair. Oncogene. 2003, 22: 131-46.CrossRefPubMed
39.
go back to reference Cao Y, Li H, Deb S, Liu JP: TERT regulates cell survival independent of telomerase enzymatic activity. Oncogene. 2002, 21: 3130-8.CrossRefPubMed Cao Y, Li H, Deb S, Liu JP: TERT regulates cell survival independent of telomerase enzymatic activity. Oncogene. 2002, 21: 3130-8.CrossRefPubMed
40.
go back to reference de Fougerolles AR: Delivery vehicles for small interfering RNA in vivo. Hum Gene Ther. 2008, 19 (2): 125-132.CrossRefPubMed de Fougerolles AR: Delivery vehicles for small interfering RNA in vivo. Hum Gene Ther. 2008, 19 (2): 125-132.CrossRefPubMed
41.
go back to reference Zhang Z, Yang X, Zhang Y, Zeng B, Wang S, Zhu T, Roden RB, Chen Y, Yang R: Delivery of telomerase reverse transcriptase small interfering RNA in complex with positively charged single-walled carbon nanotubes suppresses tumor growth. Clin Cancer Res. 2006, 12 (16): 4933-9.CrossRefPubMed Zhang Z, Yang X, Zhang Y, Zeng B, Wang S, Zhu T, Roden RB, Chen Y, Yang R: Delivery of telomerase reverse transcriptase small interfering RNA in complex with positively charged single-walled carbon nanotubes suppresses tumor growth. Clin Cancer Res. 2006, 12 (16): 4933-9.CrossRefPubMed
42.
go back to reference Fischgräbe J, Wülfing P: Targeted therapies in breast cancer: established drugs and recent developments. Curr Clin Pharmacol. 2008, 3 (2): 85-98.CrossRefPubMed Fischgräbe J, Wülfing P: Targeted therapies in breast cancer: established drugs and recent developments. Curr Clin Pharmacol. 2008, 3 (2): 85-98.CrossRefPubMed
43.
go back to reference Wong HL, Bendayan R, Rauth AM, Wu XY: Simultaneous delivery of doxorubicin and GG918 (Elacridar) by new polymer-lipid hybrid nanoparticles (PLN) for enhanced treatment of multidrug-resistant breast cancer. J Control Release. 2006, 116: 275-84.CrossRefPubMed Wong HL, Bendayan R, Rauth AM, Wu XY: Simultaneous delivery of doxorubicin and GG918 (Elacridar) by new polymer-lipid hybrid nanoparticles (PLN) for enhanced treatment of multidrug-resistant breast cancer. J Control Release. 2006, 116: 275-84.CrossRefPubMed
Metadata
Title
siRNA inhibition of telomerase enhances the anti-cancer effect of doxorubicin in breast cancer cells
Authors
Xuejun Dong
Anding Liu
Cindy Zer
Jianguo Feng
Zhuan Zhen
Mingfeng Yang
Li Zhong
Publication date
01-12-2009
Publisher
BioMed Central
Published in
BMC Cancer / Issue 1/2009
Electronic ISSN: 1471-2407
DOI
https://doi.org/10.1186/1471-2407-9-133

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