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Erschienen in: Cancer Chemotherapy and Pharmacology 6/2014

01.06.2014 | Original Article

Effects of a novel proteasome inhibitor BU-32 on multiple myeloma cells

verfasst von: Sudipa S. Roy, Nameer B. Kirma, Bindu Santhamma, Rajeshwar R. Tekmal, Joseph K. Agyin

Erschienen in: Cancer Chemotherapy and Pharmacology | Ausgabe 6/2014

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Abstract

Proteasome inhibition is associated with substantial antitumor effects in preclinical models of multiple myeloma (MM) as well as in patients. However, results of recent clinical trials to evaluate the effect of the proteasome inhibitor Bortezomib (Velcade®, also called PS-341) in MM patients have shown limited activity when used as a single agent. This underscores the need to find new efficacious and less toxic proteasome inhibitors. Recently, carfilzomib was approved for the treatment of refractory/relapsed MM and several new agents have been introduced into the clinic, including marizomib and MLN9708, and trials investigating these second-generation proteasome inhibitors have demonstrated promising results. We have recently synthesized a novel proteasome inhibitor, BU-32, and tested its growth inhibitory effects in different human MM cells including RPMI8226, MM.1S, MM.1R, and U266. In this study, we evaluate the efficacy of the novel proteasome inhibitor BU-32 (NSC D750499) using an in vitro MM model. BU-32 exhibits strong cytotoxicity in a panel of MM cell lines—RPMI8226, MM1S, MM1R, and U266. In addition, we demonstrate by proteasome inhibition assay that BU-32 potently inhibits the chymotryptic- and caspase-like activities of the 26S proteasome. We further show from Annexin V-FITC binding studies that BU-32, like Bortezomib, induces apoptosis in a panel of MM cell lines but the effect is more pronounced with BU-32-treated cells. Invasion assay with the MM.1S cell line indicates that BU-32 inhibits the invasiveness of myeloma cells. Results from our studies using real-time PCR array analyses show that BU-32 effectively downregulates an array of angiogenesis and inflammatory markers. Our results suggest that BU-32 might be a potential chemotherapeutic agent with promising antitumor activity for the treatment of MM.
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Literatur
1.
Zurück zum Zitat Adams J (2004) The proteasome: a suitable antineoplastic target. Nat Rev Cancer 4(5):349–360PubMedCrossRef Adams J (2004) The proteasome: a suitable antineoplastic target. Nat Rev Cancer 4(5):349–360PubMedCrossRef
2.
Zurück zum Zitat Kupperman E, Lee EC, Cao Y, Bannerman B, Fitzgerald M, Berger A, Yu J, Yang Y, Hales P, Bruzzese F et al (2010) Evaluation of the proteasome inhibitor MLN9708 in preclinical models of human cancer. Cancer Res 70(5):1970–1980PubMedCrossRef Kupperman E, Lee EC, Cao Y, Bannerman B, Fitzgerald M, Berger A, Yu J, Yang Y, Hales P, Bruzzese F et al (2010) Evaluation of the proteasome inhibitor MLN9708 in preclinical models of human cancer. Cancer Res 70(5):1970–1980PubMedCrossRef
3.
Zurück zum Zitat Ciechanover A (2005) Intracellular protein degradation: from a vague idea, through the lysosome and the ubiquitin–proteasome system, and onto human diseases and drug targeting (Nobel lecture). Angew Chem Int Ed Engl 44(37):5944–5967PubMedCrossRef Ciechanover A (2005) Intracellular protein degradation: from a vague idea, through the lysosome and the ubiquitin–proteasome system, and onto human diseases and drug targeting (Nobel lecture). Angew Chem Int Ed Engl 44(37):5944–5967PubMedCrossRef
4.
Zurück zum Zitat Goldberg AL (2007) Functions of the proteasome: from protein degradation and immune surveillance to cancer therapy. Biochem Soc Trans 35(Pt 1):12–17PubMed Goldberg AL (2007) Functions of the proteasome: from protein degradation and immune surveillance to cancer therapy. Biochem Soc Trans 35(Pt 1):12–17PubMed
5.
Zurück zum Zitat Orlowski RZ, Kuhn DJ (2008) Proteasome inhibitors in cancer therapy: lessons from the first decade. Clin Cancer Res 14(6):1649–1657PubMedCrossRef Orlowski RZ, Kuhn DJ (2008) Proteasome inhibitors in cancer therapy: lessons from the first decade. Clin Cancer Res 14(6):1649–1657PubMedCrossRef
7.
Zurück zum Zitat Kisselev AF, Goldberg AL (2001) Proteasome inhibitors: from research tools to drug candidates. Chem Biol 8(8):739–758PubMedCrossRef Kisselev AF, Goldberg AL (2001) Proteasome inhibitors: from research tools to drug candidates. Chem Biol 8(8):739–758PubMedCrossRef
8.
Zurück zum Zitat Groll M, Huber R (2004) Inhibitors of the eukaryotic 20S proteasome core particle: a structural approach. Biochim Biophys Acta 1695(1–3):33–44PubMedCrossRef Groll M, Huber R (2004) Inhibitors of the eukaryotic 20S proteasome core particle: a structural approach. Biochim Biophys Acta 1695(1–3):33–44PubMedCrossRef
9.
Zurück zum Zitat Groll M, Berkers CR, Ploegh HL, Ovaa H (2006) Crystal structure of the boronic acid-based proteasome inhibitor bortezomib in complex with the yeast 20S proteasome. Structure 14(3):451–456PubMedCrossRef Groll M, Berkers CR, Ploegh HL, Ovaa H (2006) Crystal structure of the boronic acid-based proteasome inhibitor bortezomib in complex with the yeast 20S proteasome. Structure 14(3):451–456PubMedCrossRef
10.
Zurück zum Zitat Lowe J, Stock D, Jap B, Zwickl P, Baumeister W, Huber R (1995) Crystal structure of the 20S proteasome from the archaeon T. acidophilum at 3.4 A resolution. Science 268(5210):533–539PubMedCrossRef Lowe J, Stock D, Jap B, Zwickl P, Baumeister W, Huber R (1995) Crystal structure of the 20S proteasome from the archaeon T. acidophilum at 3.4 A resolution. Science 268(5210):533–539PubMedCrossRef
11.
Zurück zum Zitat Brannigan JA, Dodson G, Duggleby HJ, Moody PC, Smith JL, Tomchick DR, Murzin AG (1995) A protein catalytic framework with an N-terminal nucleophile is capable of self-activation. Nature 378(6555):416–419PubMedCrossRef Brannigan JA, Dodson G, Duggleby HJ, Moody PC, Smith JL, Tomchick DR, Murzin AG (1995) A protein catalytic framework with an N-terminal nucleophile is capable of self-activation. Nature 378(6555):416–419PubMedCrossRef
12.
Zurück zum Zitat Anderson KC (2011) New insights into therapeutic targets in myeloma. Hematology Am Soc Hematol Educ Program 2011:184–190PubMedCrossRef Anderson KC (2011) New insights into therapeutic targets in myeloma. Hematology Am Soc Hematol Educ Program 2011:184–190PubMedCrossRef
13.
Zurück zum Zitat Meister S, Schubert U, Neubert K, Herrmann K, Burger R, Gramatzki M, Hahn S, Schreiber S, Wilhelm S, Herrmann M et al (2007) Extensive immunoglobulin production sensitizes myeloma cells for proteasome inhibition. Cancer Res 67(4):1783–1792PubMedCrossRef Meister S, Schubert U, Neubert K, Herrmann K, Burger R, Gramatzki M, Hahn S, Schreiber S, Wilhelm S, Herrmann M et al (2007) Extensive immunoglobulin production sensitizes myeloma cells for proteasome inhibition. Cancer Res 67(4):1783–1792PubMedCrossRef
14.
Zurück zum Zitat Chauhan D, Singh AV, Aujay M, Kirk CJ, Bandi M, Ciccarelli B, Raje N, Richardson P, Anderson KC (2010) A novel orally active proteasome inhibitor ONX 0912 triggers in vitro and in vivo cytotoxicity in multiple myeloma. Blood 116(23):4906–4915PubMedCentralPubMedCrossRef Chauhan D, Singh AV, Aujay M, Kirk CJ, Bandi M, Ciccarelli B, Raje N, Richardson P, Anderson KC (2010) A novel orally active proteasome inhibitor ONX 0912 triggers in vitro and in vivo cytotoxicity in multiple myeloma. Blood 116(23):4906–4915PubMedCentralPubMedCrossRef
15.
Zurück zum Zitat Richardson PG, Briemberg H, Jagannath S, Wen PY, Barlogie B, Berenson J, Singhal S, Siegel DS, Irwin D, Schuster M et al (2006) Frequency, characteristics, and reversibility of peripheral neuropathy during treatment of advanced multiple myeloma with bortezomib. J Clin Oncol 24(19):3113–3120PubMedCrossRef Richardson PG, Briemberg H, Jagannath S, Wen PY, Barlogie B, Berenson J, Singhal S, Siegel DS, Irwin D, Schuster M et al (2006) Frequency, characteristics, and reversibility of peripheral neuropathy during treatment of advanced multiple myeloma with bortezomib. J Clin Oncol 24(19):3113–3120PubMedCrossRef
16.
Zurück zum Zitat Lonial S, Waller EK, Richardson PG, Jagannath S, Orlowski RZ, Giver CR, Jaye DL, Francis D, Giusti S, Torre C et al (2005) Risk factors and kinetics of thrombocytopenia associated with bortezomib for relapsed, refractory multiple myeloma. Blood 106(12):3777–3784PubMedCentralPubMedCrossRef Lonial S, Waller EK, Richardson PG, Jagannath S, Orlowski RZ, Giver CR, Jaye DL, Francis D, Giusti S, Torre C et al (2005) Risk factors and kinetics of thrombocytopenia associated with bortezomib for relapsed, refractory multiple myeloma. Blood 106(12):3777–3784PubMedCentralPubMedCrossRef
17.
Zurück zum Zitat Moreau P, Richardson PG, Cavo M, Orlowski RZ, San Miguel JF, Palumbo A, Harousseau JL (2012) Proteasome inhibitors in multiple myeloma: 10 years later. Blood 120(5):947–959PubMedCrossRef Moreau P, Richardson PG, Cavo M, Orlowski RZ, San Miguel JF, Palumbo A, Harousseau JL (2012) Proteasome inhibitors in multiple myeloma: 10 years later. Blood 120(5):947–959PubMedCrossRef
18.
19.
Zurück zum Zitat Chauhan D, Singh A, Brahmandam M, Podar K, Hideshima T, Richardson P, Munshi N, Palladino MA, Anderson KC (2008) Combination of proteasome inhibitors bortezomib and NPI-0052 trigger in vivo synergistic cytotoxicity in multiple myeloma. Blood 111(3):1654–1664PubMedCentralPubMedCrossRef Chauhan D, Singh A, Brahmandam M, Podar K, Hideshima T, Richardson P, Munshi N, Palladino MA, Anderson KC (2008) Combination of proteasome inhibitors bortezomib and NPI-0052 trigger in vivo synergistic cytotoxicity in multiple myeloma. Blood 111(3):1654–1664PubMedCentralPubMedCrossRef
20.
Zurück zum Zitat Liu YG, Tekmal RR, Binkley PA, Nair HB, Schenken RS, Kirma NB (2009) Induction of endometrial epithelial cell invasion and c-fms expression by transforming growth factor beta. Mol Hum Reprod 15(10):665–673PubMedCentralPubMedCrossRef Liu YG, Tekmal RR, Binkley PA, Nair HB, Schenken RS, Kirma NB (2009) Induction of endometrial epithelial cell invasion and c-fms expression by transforming growth factor beta. Mol Hum Reprod 15(10):665–673PubMedCentralPubMedCrossRef
21.
Zurück zum Zitat Demo SD, Kirk CJ, Aujay MA, Buchholz TJ, Dajee M, Ho MN, Jiang J, Laidig GJ, Lewis ER, Parlati F et al (2007) Antitumor activity of PR-171, a novel irreversible inhibitor of the proteasome. Cancer Res 67(13):6383–6391PubMedCrossRef Demo SD, Kirk CJ, Aujay MA, Buchholz TJ, Dajee M, Ho MN, Jiang J, Laidig GJ, Lewis ER, Parlati F et al (2007) Antitumor activity of PR-171, a novel irreversible inhibitor of the proteasome. Cancer Res 67(13):6383–6391PubMedCrossRef
22.
Zurück zum Zitat Ferreira MC, Witz CA, Hammes LS, Kirma N, Petraglia F, Schenken RS, Reis FM (2008) Activin A increases invasiveness of endometrial cells in an in vitro model of human peritoneum. Mol Hum Reprod 14(5):301–307PubMedCrossRef Ferreira MC, Witz CA, Hammes LS, Kirma N, Petraglia F, Schenken RS, Reis FM (2008) Activin A increases invasiveness of endometrial cells in an in vitro model of human peritoneum. Mol Hum Reprod 14(5):301–307PubMedCrossRef
23.
Zurück zum Zitat Nair AS, Nair HB, Lucidi RS, Kirchner AJ, Schenken RS, Tekmal RR, Witz CA (2008) Modeling the early endometriotic lesion: mesothelium-endometrial cell co-culture increases endometrial invasion and alters mesothelial and endometrial gene transcription. Fertil Steril 90(4 Suppl):1487–1495PubMedCrossRef Nair AS, Nair HB, Lucidi RS, Kirchner AJ, Schenken RS, Tekmal RR, Witz CA (2008) Modeling the early endometriotic lesion: mesothelium-endometrial cell co-culture increases endometrial invasion and alters mesothelial and endometrial gene transcription. Fertil Steril 90(4 Suppl):1487–1495PubMedCrossRef
24.
Zurück zum Zitat Kirma N, Hammes LS, Liu YG, Nair HB, Valente PT, Kumar S, Flowers LC, Tekmal RR (2007) Elevated expression of the oncogene c-fms and its ligand, the macrophage colony-stimulating factor-1, in cervical cancer and the role of transforming growth factor-beta1 in inducing c-fms expression. Cancer Res 67(5):1918–1926PubMedCrossRef Kirma N, Hammes LS, Liu YG, Nair HB, Valente PT, Kumar S, Flowers LC, Tekmal RR (2007) Elevated expression of the oncogene c-fms and its ligand, the macrophage colony-stimulating factor-1, in cervical cancer and the role of transforming growth factor-beta1 in inducing c-fms expression. Cancer Res 67(5):1918–1926PubMedCrossRef
25.
Zurück zum Zitat Visekruna A, Joeris T, Seidel D, Kroesen A, Loddenkemper C, Zeitz M, Kaufmann SH, Schmidt-Ullrich R, Steinhoff U (2006) Proteasome-mediated degradation of IkappaBalpha and processing of p105 in Crohn disease and ulcerative colitis. J Clin Invest 116(12):3195–3203PubMedCentralPubMedCrossRef Visekruna A, Joeris T, Seidel D, Kroesen A, Loddenkemper C, Zeitz M, Kaufmann SH, Schmidt-Ullrich R, Steinhoff U (2006) Proteasome-mediated degradation of IkappaBalpha and processing of p105 in Crohn disease and ulcerative colitis. J Clin Invest 116(12):3195–3203PubMedCentralPubMedCrossRef
26.
Zurück zum Zitat Ferrarini M, Ferrero E (2011) Proteasome inhibitors and modulators of angiogenesis in multiple myeloma. Curr Med Chem 18(34):5185–5195PubMedCrossRef Ferrarini M, Ferrero E (2011) Proteasome inhibitors and modulators of angiogenesis in multiple myeloma. Curr Med Chem 18(34):5185–5195PubMedCrossRef
27.
Zurück zum Zitat Anargyrou K, Dimopoulos MA, Sezer O, Terpos E (2008) Novel anti-myeloma agents and angiogenesis. Leuk Lymphoma 49(4):677–689PubMedCrossRef Anargyrou K, Dimopoulos MA, Sezer O, Terpos E (2008) Novel anti-myeloma agents and angiogenesis. Leuk Lymphoma 49(4):677–689PubMedCrossRef
28.
Zurück zum Zitat Ladetto M, Vallet S, Trojan A, Dell’Aquila M, Monitillo L, Rosato R, Santo L, Drandi D, Bertola A, Falco P et al (2005) Cyclooxygenase-2 (COX-2) is frequently expressed in multiple myeloma and is an independent predictor of poor outcome. Blood 105(12):4784–4791PubMedCrossRef Ladetto M, Vallet S, Trojan A, Dell’Aquila M, Monitillo L, Rosato R, Santo L, Drandi D, Bertola A, Falco P et al (2005) Cyclooxygenase-2 (COX-2) is frequently expressed in multiple myeloma and is an independent predictor of poor outcome. Blood 105(12):4784–4791PubMedCrossRef
29.
Zurück zum Zitat Fujita J, Mestre JR, Zeldis JB, Subbaramaiah K, Dannenberg AJ (2001) Thalidomide and its analogues inhibit lipopolysaccharide-mediated Induction of cyclooxygenase-2. Clin Cancer Res 7(11):3349–3355PubMed Fujita J, Mestre JR, Zeldis JB, Subbaramaiah K, Dannenberg AJ (2001) Thalidomide and its analogues inhibit lipopolysaccharide-mediated Induction of cyclooxygenase-2. Clin Cancer Res 7(11):3349–3355PubMed
30.
Zurück zum Zitat Cardoso F, Durbecq V, Laes JF, Badran B, Lagneaux L, Bex F, Desmedt C, Willard-Gallo K, Ross JS, Burny A et al (2006) Bortezomib (PS-341, Velcade) increases the efficacy of trastuzumab (Herceptin) in HER-2-positive breast cancer cells in a synergistic manner. Mol Cancer Ther 5(12):3042–3051PubMedCrossRef Cardoso F, Durbecq V, Laes JF, Badran B, Lagneaux L, Bex F, Desmedt C, Willard-Gallo K, Ross JS, Burny A et al (2006) Bortezomib (PS-341, Velcade) increases the efficacy of trastuzumab (Herceptin) in HER-2-positive breast cancer cells in a synergistic manner. Mol Cancer Ther 5(12):3042–3051PubMedCrossRef
31.
Zurück zum Zitat Adams J, Kauffman M (2004) Development of the proteasome inhibitor Velcade (Bortezomib). Cancer Invest 22(2):304–311PubMedCrossRef Adams J, Kauffman M (2004) Development of the proteasome inhibitor Velcade (Bortezomib). Cancer Invest 22(2):304–311PubMedCrossRef
32.
Zurück zum Zitat Fribley A, Zeng Q, Wang CY (2004) Proteasome inhibitor PS-341 induces apoptosis through induction of endoplasmic reticulum stress-reactive oxygen species in head and neck squamous cell carcinoma cells. Mol Cell Biol 24(22):9695–9704PubMedCentralPubMedCrossRef Fribley A, Zeng Q, Wang CY (2004) Proteasome inhibitor PS-341 induces apoptosis through induction of endoplasmic reticulum stress-reactive oxygen species in head and neck squamous cell carcinoma cells. Mol Cell Biol 24(22):9695–9704PubMedCentralPubMedCrossRef
33.
Zurück zum Zitat Crawford LJ, Walker B, Ovaa H, Chauhan D, Anderson KC, Morris TC, Irvine AE (2006) Comparative selectivity and specificity of the proteasome inhibitors BzLLLCOCHO, PS-341, and MG-132. Cancer Res 66(12):6379–6386PubMedCrossRef Crawford LJ, Walker B, Ovaa H, Chauhan D, Anderson KC, Morris TC, Irvine AE (2006) Comparative selectivity and specificity of the proteasome inhibitors BzLLLCOCHO, PS-341, and MG-132. Cancer Res 66(12):6379–6386PubMedCrossRef
34.
Zurück zum Zitat Arendt CS, Hochstrasser M (1997) Identification of the yeast 20S proteasome catalytic centers and subunit interactions required for active-site formation. Proc Natl Acad Sci USA 94(14):7156–7161PubMedCentralPubMedCrossRef Arendt CS, Hochstrasser M (1997) Identification of the yeast 20S proteasome catalytic centers and subunit interactions required for active-site formation. Proc Natl Acad Sci USA 94(14):7156–7161PubMedCentralPubMedCrossRef
35.
Zurück zum Zitat Heinemeyer W, Fischer M, Krimmer T, Stachon U, Wolf DH (1997) The active sites of the eukaryotic 20 S proteasome and their involvement in subunit precursor processing. J Biol Chem 272(40):25200–25209PubMedCrossRef Heinemeyer W, Fischer M, Krimmer T, Stachon U, Wolf DH (1997) The active sites of the eukaryotic 20 S proteasome and their involvement in subunit precursor processing. J Biol Chem 272(40):25200–25209PubMedCrossRef
36.
Zurück zum Zitat Kisselev AF, Callard A, Goldberg AL (2006) Importance of the different proteolytic sites of the proteasome and the efficacy of inhibitors varies with the protein substrate. J Biol Chem 281(13):8582–8590PubMedCrossRef Kisselev AF, Callard A, Goldberg AL (2006) Importance of the different proteolytic sites of the proteasome and the efficacy of inhibitors varies with the protein substrate. J Biol Chem 281(13):8582–8590PubMedCrossRef
37.
Zurück zum Zitat Chauhan D, Hideshima T, Anderson KC (2005) Proteasome inhibition in multiple myeloma: therapeutic implication. Annu Rev Pharmacol Toxicol 45:465–476PubMedCrossRef Chauhan D, Hideshima T, Anderson KC (2005) Proteasome inhibition in multiple myeloma: therapeutic implication. Annu Rev Pharmacol Toxicol 45:465–476PubMedCrossRef
38.
Zurück zum Zitat Berkers CR, Verdoes M, Lichtman E, Fiebiger E, Kessler BM, Anderson KC, Ploegh HL, Ovaa H, Galardy PJ (2005) Activity probe for in vivo profiling of the specificity of proteasome inhibitor bortezomib. Nat Methods 2(5):357–362PubMedCrossRef Berkers CR, Verdoes M, Lichtman E, Fiebiger E, Kessler BM, Anderson KC, Ploegh HL, Ovaa H, Galardy PJ (2005) Activity probe for in vivo profiling of the specificity of proteasome inhibitor bortezomib. Nat Methods 2(5):357–362PubMedCrossRef
39.
Zurück zum Zitat Nawrocki ST, Bruns CJ, Harbison MT, Bold RJ, Gotsch BS, Abbruzzese JL, Elliott P, Adams J, McConkey DJ (2002) Effects of the proteasome inhibitor PS-341 on apoptosis and angiogenesis in orthotopic human pancreatic tumor xenografts. Mol Cancer Ther 1(14):1243–1253PubMed Nawrocki ST, Bruns CJ, Harbison MT, Bold RJ, Gotsch BS, Abbruzzese JL, Elliott P, Adams J, McConkey DJ (2002) Effects of the proteasome inhibitor PS-341 on apoptosis and angiogenesis in orthotopic human pancreatic tumor xenografts. Mol Cancer Ther 1(14):1243–1253PubMed
40.
Zurück zum Zitat Podar K, Tai YT, Davies FE, Lentzsch S, Sattler M, Hideshima T, Lin BK, Gupta D, Shima Y, Chauhan D et al (2001) Vascular endothelial growth factor triggers signaling cascades mediating multiple myeloma cell growth and migration. Blood 98(2):428–435PubMedCrossRef Podar K, Tai YT, Davies FE, Lentzsch S, Sattler M, Hideshima T, Lin BK, Gupta D, Shima Y, Chauhan D et al (2001) Vascular endothelial growth factor triggers signaling cascades mediating multiple myeloma cell growth and migration. Blood 98(2):428–435PubMedCrossRef
41.
Zurück zum Zitat Dankbar B, Padro T, Leo R, Feldmann B, Kropff M, Mesters RM, Serve H, Berdel WE, Kienast J (2000) Vascular endothelial growth factor and interleukin-6 in paracrine tumor-stromal cell interactions in multiple myeloma. Blood 95(8):2630–2636PubMed Dankbar B, Padro T, Leo R, Feldmann B, Kropff M, Mesters RM, Serve H, Berdel WE, Kienast J (2000) Vascular endothelial growth factor and interleukin-6 in paracrine tumor-stromal cell interactions in multiple myeloma. Blood 95(8):2630–2636PubMed
42.
Zurück zum Zitat Roccaro AM, Hideshima T, Raje N, Kumar S, Ishitsuka K, Yasui H, Shiraishi N, Ribatti D, Nico B, Vacca A et al (2006) Bortezomib mediates antiangiogenesis in multiple myeloma via direct and indirect effects on endothelial cells. Cancer Res 66(1):184–191PubMedCrossRef Roccaro AM, Hideshima T, Raje N, Kumar S, Ishitsuka K, Yasui H, Shiraishi N, Ribatti D, Nico B, Vacca A et al (2006) Bortezomib mediates antiangiogenesis in multiple myeloma via direct and indirect effects on endothelial cells. Cancer Res 66(1):184–191PubMedCrossRef
43.
Zurück zum Zitat Gerritsen ME, Tomlinson JE, Zlot C, Ziman M, Hwang S (2003) Using gene expression profiling to identify the molecular basis of the synergistic actions of hepatocyte growth factor and vascular endothelial growth factor in human endothelial cells. Br J Pharmacol 140(4):595–610PubMedCentralPubMedCrossRef Gerritsen ME, Tomlinson JE, Zlot C, Ziman M, Hwang S (2003) Using gene expression profiling to identify the molecular basis of the synergistic actions of hepatocyte growth factor and vascular endothelial growth factor in human endothelial cells. Br J Pharmacol 140(4):595–610PubMedCentralPubMedCrossRef
44.
Zurück zum Zitat Gong C, Ennis SR, Hoff JT, Keep RF (2001) Inducible cyclooxygenase-2 expression after experimental intracerebral hemorrhage. Brain Res 901(1–2):38–46PubMedCrossRef Gong C, Ennis SR, Hoff JT, Keep RF (2001) Inducible cyclooxygenase-2 expression after experimental intracerebral hemorrhage. Brain Res 901(1–2):38–46PubMedCrossRef
45.
Zurück zum Zitat Park J, Ayyappan V, Bae EK, Lee C, Kim BS, Kim BK, Lee YY, Ahn KS, Yoon SS (2008) Curcumin in combination with bortezomib synergistically induced apoptosis in human multiple myeloma U266 cells. Mol Oncol 2(4):317–326PubMedCrossRef Park J, Ayyappan V, Bae EK, Lee C, Kim BS, Kim BK, Lee YY, Ahn KS, Yoon SS (2008) Curcumin in combination with bortezomib synergistically induced apoptosis in human multiple myeloma U266 cells. Mol Oncol 2(4):317–326PubMedCrossRef
Metadaten
Titel
Effects of a novel proteasome inhibitor BU-32 on multiple myeloma cells
verfasst von
Sudipa S. Roy
Nameer B. Kirma
Bindu Santhamma
Rajeshwar R. Tekmal
Joseph K. Agyin
Publikationsdatum
01.06.2014
Verlag
Springer Berlin Heidelberg
Erschienen in
Cancer Chemotherapy and Pharmacology / Ausgabe 6/2014
Print ISSN: 0344-5704
Elektronische ISSN: 1432-0843
DOI
https://doi.org/10.1007/s00280-014-2463-3

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