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PMID: 22037302 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Review

The 26S proteasome complex: an attractive target for cancer therapy.

Biochimica et biophysica acta ·Vol. 1825 ·No. 1 ·2012-01-00 ·Pages 64-76

Frankland-Searby S, Bhaumik SR

Abstract

The 26S proteasome complex engages in an ATP-dependent proteolytic degradation of a variety of oncoproteins, transcription factors, cell cycle specific cyclins, cyclin-dependent kinase inhibitors, ornithine decarboxylase, and other key regulatory cellular proteins. Thus, the proteasome regulates either directly or indirectly many important cellular processes. Altered regulation of these cellular events is linked to the development of cancer. Therefore, the proteasome has become an attractive target for the treatment of numerous cancers. Several proteasome inhibitors that target the proteolytic active sites of the 26S proteasome complex have been developed and tested for anti-tumor activities. These proteasome inhibitors have displayed impressive anti-tumor functions by inducing apoptosis in different tumor types. Further, the proteasome inhibitors have been shown to induce cell cycle arrest, and inhibit angiogenesis, cell-cell adhesion, cell migration, immune and inflammatory responses, and DNA repair response. A number of proteasome inhibitors are now in clinical trials to treat multiple myeloma and solid tumors. Many other proteasome inhibitors with different efficiencies are being developed and tested for anti-tumor activities. Several proteasome inhibitors currently in clinical trials have shown significantly improved anti-tumor activities when combined with other drugs such as histone deacetylase (HDAC) inhibitors, Akt (protein kinase B) inhibitors, DNA damaging agents, Hsp90 (heat shock protein 90) inhibitors, and lenalidomide. The proteasome inhibitor bortezomib is now in the clinic to treat multiple myeloma and mantle cell lymphoma. Here, we discuss the 26S proteasome complex in carcinogenesis and different proteasome inhibitors with their potential therapeutic applications in treatment of numerous cancers.

MeSH Terms
Antineoplastic Agents/therapeutic use Cell Transformation, Neoplastic Clinical Trials as Topic Humans Molecular Targeted Therapy Neoplasms/drug therapy Protease Inhibitors/therapeutic use Proteasome Endopeptidase Complex Proteasome Inhibitors
Chemicals
Antineoplastic Agents Protease Inhibitors Proteasome Inhibitors Proteasome Endopeptidase Complex ATP dependent 26S protease
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Frankland-Searby Sarah
Department of Biochemistry and Molecular Biology, Southern Illinois University School of Medicine, Carbondale, IL 62901, USA.
Bhaumik Sukesh R
References (235)
235 references, click to expand
  1. Thalidomide versus bortezomib based regimens as first-line therapy for patients with multiple myeloma: a systematic review.
    Am J Hematol. 2011 Jan;86(1):18-24 PMID: 21120867
  2. A gated channel into the proteasome core particle.
    Nat Struct Biol. 2000 Nov;7(11):1062-7 PMID: 11062564
  3. Proteasome inhibitor PS-341 induces apoptosis in cisplatin-resistant squamous cell carcinoma cells by induction of Noxa.
    J Biol Chem. 2006 Oct 20;281(42):31440-7 PMID: 16928686
  4. Proteasome inhibition represses ERalpha gene expression in ER+ cells: a new link between proteasome activity and estrogen signaling in breast cancer.
    Oncogene. 2010 Mar 11;29(10):1509-18 PMID: 19946334
  5. Effects of the proteasome inhibitor PS-341 on apoptosis and angiogenesis in orthotopic human pancreatic tumor xenografts.
    Mol Cancer Ther. 2002 Dec;1(14):1243-53 PMID: 12516957
  6. Structure-proteasome-inhibitory activity relationships of dietary flavonoids in human cancer cells.
    Front Biosci. 2007 Jan 01;12:1935-45 PMID: 17127432
  7. Proteasome inhibitors activate autophagy as a cytoprotective response in human prostate cancer cells.
    Oncogene. 2010 Jan 21;29(3):451-62 PMID: 19881538
  8. High expression of Cks1 in human non-small cell lung carcinomas.
    Biochem Biophys Res Commun. 2003 Apr 11;303(3):978-84 PMID: 12670508
  9. Selective inhibition of chymotrypsin-like activity of the immunoproteasome and constitutive proteasome in Waldenstrom macroglobulinemia.
    Blood. 2010 May 20;115(20):4051-60 PMID: 20110419
  10. Normoxic destabilization of ATF-4 depends on proteasomal degradation.
    Acta Physiol (Oxf). 2010 Apr;198(4):457-63 PMID: 19922526
  11. Phase I study of bortezomib in refractory or relapsed acute leukemias.
    Clin Cancer Res. 2004 May 15;10(10):3371-6 PMID: 15161691
  12. The proteasome inhibitor PS-341 markedly enhances sensitivity of multiple myeloma tumor cells to chemotherapeutic agents.
    Clin Cancer Res. 2003 Mar;9(3):1136-44 PMID: 12631619
  13. Targeted inhibition of the immunoproteasome is a potent strategy against models of multiple myeloma that overcomes resistance to conventional drugs and nonspecific proteasome inhibitors.
    Blood. 2009 May 7;113(19):4667-76 PMID: 19050304
  14. Newly identified pair of proteasomal subunits regulated reciprocally by interferon gamma.
    J Exp Med. 1996 Apr 1;183(4):1807-16 PMID: 8666937
  15. Ester bond-containing tea polyphenols potently inhibit proteasome activity in vitro and in vivo.
    J Biol Chem. 2001 Apr 20;276(16):13322-30 PMID: 11278274
  16. Gallium nitrate in the treatment of bladder cancer.
    Semin Oncol. 2003 Apr;30(2 Suppl 5):34-41 PMID: 12776258
  17. Down-regulation of Forkhead Box M1 transcription factor leads to the inhibition of invasion and angiogenesis of pancreatic cancer cells.
    Cancer Res. 2007 Sep 1;67(17):8293-300 PMID: 17804744
  18. Apoptotic mechanisms of gallium nitrate: basic and clinical investigations.
    Oncology (Williston Park). 2004 Nov;18(13 Suppl 10):39-44 PMID: 15651176
  19. Redundant cyclin overexpression and gene amplification in breast cancer cells.
    Proc Natl Acad Sci U S A. 1993 Feb 1;90(3):1112-6 PMID: 8430082
  20. A third interferon-gamma-induced subunit exchange in the 20S proteasome.
    Eur J Immunol. 1996 Apr;26(4):863-9 PMID: 8625980
  21. Pharmacodynamic and efficacy studies of the novel proteasome inhibitor NPI-0052 (marizomib) in a human plasmacytoma xenograft murine model.
    Br J Haematol. 2010 May;149(4):550-9 PMID: 20331453
  22. Design and synthesis of an orally bioavailable and selective peptide epoxyketone proteasome inhibitor (PR-047).
    J Med Chem. 2009 May 14;52(9):3028-38 PMID: 19348473
  23. Inhibition of ultraviolet light induced skin carcinogenesis in SKH-1 mice by apigenin, a plant flavonoid.
    Anticancer Res. 1997 Jan-Feb;17(1A):85-91 PMID: 9066634
  24. The HPV-16 E6 and E6-AP complex functions as a ubiquitin-protein ligase in the ubiquitination of p53.
    Cell. 1993 Nov 5;75(3):495-505 PMID: 8221889
  25. Gallium nitrate in the treatment of lymphoma.
    Semin Oncol. 2003 Apr;30(2 Suppl 5):25-33 PMID: 12776257
  26. A novel orally active proteasome inhibitor induces apoptosis in multiple myeloma cells with mechanisms distinct from Bortezomib.
    Cancer Cell. 2005 Nov;8(5):407-19 PMID: 16286248
  27. Ligand-activated platelet-derived growth factor beta-receptor is degraded through proteasome-dependent proteolytic pathway.
    Biochem Biophys Res Commun. 1995 Dec 5;217(1):224-9 PMID: 8526915
  28. A phase 2 study of bortezomib in relapsed, refractory myeloma.
    N Engl J Med. 2003 Jun 26;348(26):2609-17 PMID: 12826635
  29. The proteolysis of mitotic cyclins in mammalian cells persists from the end of mitosis until the onset of S phase.
    EMBO J. 1996 Oct 1;15(19):5280-9 PMID: 8895573
  30. Protease inhibitor-induced apoptosis: accumulation of wt p53, p21WAF1/CIP1, and induction of apoptosis are independent markers of proteasome inhibition.
    Leukemia. 2000 Jul;14(7):1276-83 PMID: 10914553
  31. Cyclin is degraded by the ubiquitin pathway.
    Nature. 1991 Jan 10;349(6305):132-8 PMID: 1846030
  32. Antitumor activity of PR-171, a novel irreversible inhibitor of the proteasome.
    Cancer Res. 2007 Jul 1;67(13):6383-91 PMID: 17616698
  33. Genome wide transcriptional profiling in breast cancer cells reveals distinct changes in hormone receptor target genes and chromatin modifying enzymes after proteasome inhibition.
    Mol Carcinog. 2008 Nov;47(11):845-85 PMID: 18381591
  34. Proteasome inhibitors trigger NOXA-mediated apoptosis in melanoma and myeloma cells.
    Cancer Res. 2005 Jul 15;65(14):6282-93 PMID: 16024630
  35. PR-924, a selective inhibitor of the immunoproteasome subunit LMP-7, blocks multiple myeloma cell growth both in vitro and in vivo.
    Br J Haematol. 2011 Jan;152(2):155-63 PMID: 21114484
  36. Role of the ubiquitin-proteasome pathway in regulating abundance of the cyclin-dependent kinase inhibitor p27.
    Science. 1995 Aug 4;269(5224):682-5 PMID: 7624798
  37. Role of ATF4 in regulation of autophagy and resistance to drugs and hypoxia.
    Cell Cycle. 2009 Dec;8(23):3838-47 PMID: 19887912
  38. The Hsp90 inhibitor IPI-504 overcomes bortezomib resistance in mantle cell lymphoma in vitro and in vivo by down-regulation of the prosurvival ER chaperone BiP/Grp78.
    Blood. 2011 Jan 27;117(4):1270-9 PMID: 21106982
  39. Antitumor activity of bortezomib in human cancer cells with acquired resistance to anti-epidermal growth factor receptor tyrosine kinase inhibitors.
    Lung Cancer. 2011 Mar;71(3):283-90 PMID: 20619923
  40. The proteasome inhibitor NPI-0052 is a more effective inducer of apoptosis than bortezomib in lymphocytes from patients with chronic lymphocytic leukemia.
    Mol Cancer Ther. 2006 Jul;5(7):1836-43 PMID: 16891470
  41. Bortezomib or high-dose dexamethasone for relapsed multiple myeloma.
    N Engl J Med. 2005 Jun 16;352(24):2487-98 PMID: 15958804
  42. Mechanisms of therapeutic activity for gallium.
    Pharmacol Rev. 1998 Dec;50(4):665-82 PMID: 9860806
  43. Proteasome inhibition and its clinical prospects in the treatment of hematologic and solid malignancies.
    Cancer. 2005 Nov 1;104(9):1794-807 PMID: 16178003
  44. p53 stabilization is decreased upon NFkappaB activation: a role for NFkappaB in acquisition of resistance to chemotherapy.
    Cancer Cell. 2002 Jun;1(5):493-503 PMID: 12124178
  45. FoxM1B is overexpressed in human glioblastomas and critically regulates the tumorigenicity of glioma cells.
    Cancer Res. 2006 Apr 1;66(7):3593-602 PMID: 16585184
  46. Targeting proteasomes as therapy in multiple myeloma.
    Adv Exp Med Biol. 2008;615:251-60 PMID: 18437898
  47. Diverse regulatory mechanisms of eukaryotic transcriptional activation by the proteasome complex.
    Crit Rev Biochem Mol Biol. 2008 Nov-Dec;43(6):419-33 PMID: 19058045
  48. 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. 2004 Nov;24(22):9695-704 PMID: 15509775
  49. The role of ATF4 stabilization and autophagy in resistance of breast cancer cells treated with Bortezomib.
    Cancer Res. 2009 May 15;69(10):4415-23 PMID: 19417138
  50. The dietary flavonoid apigenin sensitizes malignant tumor cells to tumor necrosis factor-related apoptosis-inducing ligand.
    Mol Cancer Ther. 2006 Apr;5(4):945-51 PMID: 16648565
  51. Mechanisms of proteasome inhibitor action and resistance in cancer.
    Drug Resist Updat. 2008 Aug-Oct;11(4-5):164-79 PMID: 18818117
  52. The proteasome inhibitor bortezomib induces apoptosis in mantle-cell lymphoma through generation of ROS and Noxa activation independent of p53 status.
    Blood. 2006 Jan 1;107(1):257-64 PMID: 16166592
  53. Ajoene (natural garlic compound): a new anti-leukaemia agent for AML therapy.
    Leuk Res. 2004 Jul;28(7):667-71 PMID: 15158086
  54. Gallium compounds as antineoplastic agents.
    Curr Opin Oncol. 2004 Nov;16(6):547-52 PMID: 15627016
  55. NPI-0052, a novel proteasome inhibitor, induces caspase-8 and ROS-dependent apoptosis alone and in combination with HDAC inhibitors in leukemia cells.
    Blood. 2007 Jul 1;110(1):267-77 PMID: 17356134
  56. Carfilzomib: a novel second-generation proteasome inhibitor.
    Future Oncol. 2011 May;7(5):607-12 PMID: 21568676
  57. Lactacystin inhibits cathepsin A activity in melanoma cell lines.
    Tumour Biol. 2001 Jul-Aug;22(4):211-5 PMID: 11399945
  58. The vital link between the ubiquitin-proteasome pathway and DNA repair: impact on cancer therapy.
    Cancer Lett. 2009 Sep 28;283(1):1-9 PMID: 19201084
  59. Glycogen storage disease type III-hepatocellular carcinoma a long-term complication?
    J Hepatol. 2007 Mar;46(3):492-8 PMID: 17196294
  60. The proteasome inhibitor PS-341 inhibits growth, induces apoptosis, and overcomes drug resistance in human multiple myeloma cells.
    Cancer Res. 2001 Apr 1;61(7):3071-6 PMID: 11306489
  61. Degradation of c-Fos by the 26S proteasome is accelerated by c-Jun and multiple protein kinases.
    Mol Cell Biol. 1995 Oct;15(10):5682-7 PMID: 7565719
  62. Activators and target genes of Rel/NF-kappaB transcription factors.
    Oncogene. 1999 Nov 22;18(49):6853-66 PMID: 10602461
  63. MDM2 promotes proteasomal degradation of p21Waf1 via a conformation change.
    J Biol Chem. 2010 Jun 11;285(24):18407-14 PMID: 20308078
  64. PAD combination therapy (PS-341/bortezomib, doxorubicin and dexamethasone) for previously untreated patients with multiple myeloma.
    Br J Haematol. 2005 Jun;129(6):755-62 PMID: 15953001
  65. Caspase-8 dependent histone acetylation by a novel proteasome inhibitor, NPI-0052: a mechanism for synergy in leukemia cells.
    Blood. 2009 Apr 30;113(18):4289-99 PMID: 19182209
  66. Molecular targets of dietary agents for prevention and therapy of cancer.
    Biochem Pharmacol. 2006 May 14;71(10):1397-421 PMID: 16563357
  67. Role of the proteasome and NF-kappaB in streptococcal cell wall-induced polyarthritis.
    Proc Natl Acad Sci U S A. 1998 Dec 22;95(26):15671-6 PMID: 9861028
  68. JNK and AP-1 mediate apoptosis induced by bortezomib in HepG2 cells via FasL/caspase-8 and mitochondria-dependent pathways.
    Apoptosis. 2006 Apr;11(4):607-25 PMID: 16528474
  69. Bortezomib for myeloma -- much ado about something.
    N Engl J Med. 2005 Jun 16;352(24):2546-8 PMID: 15958811
  70. Nuclear factor-kappaB inhibitors as sensitizers to anticancer drugs.
    Nat Rev Cancer. 2005 Apr;5(4):297-309 PMID: 15803156
  71. Ubiquitinylation of transcription factors c-Jun and c-Fos using reconstituted ubiquitinylating enzymes.
    J Biol Chem. 1996 Mar 1;271(9):4930-6 PMID: 8617766
  72. The proteasome inhibitor bortezomib stabilizes a novel active form of p53 in human LNCaP-Pro5 prostate cancer cells.
    Cancer Res. 2003 Nov 1;63(21):7338-44 PMID: 14612532
  73. The proteasome: a novel target for anticancer therapy.
    Clin Transl Oncol. 2006 May;8(5):313-7 PMID: 16760005
  74. Crystal structure of the 20 S proteasome:TMC-95A complex: a non-covalent proteasome inhibitor.
    J Mol Biol. 2001 Aug 17;311(3):543-8 PMID: 11493007
  75. Proteasome inhibitor PS-341 inhibits human myeloma cell growth in vivo and prolongs survival in a murine model.
    Cancer Res. 2002 Sep 1;62(17):4996-5000 PMID: 12208752
  76. CDK inhibitors: positive and negative regulators of G1-phase progression.
    Genes Dev. 1999 Jun 15;13(12):1501-12 PMID: 10385618
  77. A phase I trial of the novel proteasome inhibitor PS341 in advanced solid tumor malignancies.
    Clin Cancer Res. 2002 Aug;8(8):2505-11 PMID: 12171876
  78. Effects of the proteasome inhibitor bortezomib on gene expression profiles of pancreatic cancer cells.
    J Surg Res. 2008 Mar;145(1):111-23 PMID: 17714734
  79. Mantle cell lymphoma: biology, pathogenesis, and the molecular basis of treatment in the genomic era.
    Blood. 2011 Jan 6;117(1):26-38 PMID: 20940415
  80. The forkhead box M1 transcription factor contributes to the development and growth of mouse colorectal cancer.
    Gastroenterology. 2007 Apr;132(4):1420-31 PMID: 17408638
  81. The MDM2 gene amplification database.
    Nucleic Acids Res. 1998 Aug 1;26(15):3453-9 PMID: 9671804
  82. Inhibition of proteasome activity by bortezomib in renal cancer cells is p53 dependent and VHL independent.
    Anticancer Res. 2009 Aug;29(8):2961-9 PMID: 19661301
  83. Bortezomib as a potential treatment for prostate cancer.
    Cancer Res. 2004 Aug 1;64(15):5036-43 PMID: 15289299
  84. Bortezomib as the first proteasome inhibitor anticancer drug: current status and future perspectives.
    Curr Cancer Drug Targets. 2011 Mar;11(3):239-53 PMID: 21247388
  85. NF-kappaB: a stress-regulated switch for cell survival.
    Antioxid Redox Signal. 2006 Mar-Apr;8(3-4):478-86 PMID: 16677091
  86. Proteasome-mediated degradation of p21 via N-terminal ubiquitinylation.
    Cell. 2003 Oct 3;115(1):71-82 PMID: 14532004
  87. To cell cycle, swing the APC/C.
    Biochim Biophys Acta. 2008 Sep;1786(1):49-59 PMID: 18544349
  88. Proteasome inhibitors: from research tools to drug candidates.
    Chem Biol. 2001 Aug;8(8):739-58 PMID: 11514224
  89. Nuclear factor-kappaB: the enemy within.
    Cancer Cell. 2004 Sep;6(3):203-8 PMID: 15380510
  90. Emerging role of carfilzomib in treatment of relapsed and refractory lymphoid neoplasms and multiple myeloma.
    Core Evid. 2011;6:43-57 PMID: 21654882
  91. Molecular sequelae of proteasome inhibition in human multiple myeloma cells.
    Proc Natl Acad Sci U S A. 2002 Oct 29;99(22):14374-9 PMID: 12391322
  92. Fos is an essential component of the mammalian UV response.
    EMBO J. 1995 Nov 1;14(21):5338-49 PMID: 7489723
  93. Enhanced chemosensitivity to CPT-11 with proteasome inhibitor PS-341: implications for systemic nuclear factor-kappaB inhibition.
    Cancer Res. 2001 May 1;61(9):3535-40 PMID: 11325813
  94. BRAK/CXCL14 is a potent inhibitor of angiogenesis and a chemotactic factor for immature dendritic cells.
    Cancer Res. 2004 Nov 15;64(22):8262-70 PMID: 15548693
  95. Carfilzomib-dependent selective inhibition of the chymotrypsin-like activity of the proteasome leads to antitumor activity in Waldenstrom's Macroglobulinemia.
    Clin Cancer Res. 2011 Apr 1;17(7):1753-64 PMID: 21355079
  96. 14-3-3Tau regulates ubiquitin-independent proteasomal degradation of p21, a novel mechanism of p21 downregulation in breast cancer.
    Mol Cell Biol. 2010 Mar;30(6):1508-27 PMID: 20086099
  97. A roller coaster ride with the mitotic cyclins.
    Semin Cell Dev Biol. 2005 Jun;16(3):335-42 PMID: 15840442
  98. United States Food and Drug Administration approval summary: bortezomib for the treatment of progressive multiple myeloma after one prior therapy.
    Clin Cancer Res. 2006 May 15;12(10):2955-60 PMID: 16707588
  99. Proteasome components with reciprocal expression to that of the MHC-encoded LMP proteins.
    Curr Biol. 1994 Sep 1;4(9):769-76 PMID: 7820546
  100. Targeting multiple signaling pathways as a strategy for managing prostate cancer: multifocal signal modulation therapy.
    Integr Cancer Ther. 2004 Dec;3(4):349-80 PMID: 15523106
  101. Evidence for altered regulation of gamma-glutamylcysteine synthetase gene expression among cisplatin-sensitive and cisplatin-resistant human ovarian cancer cell lines.
    Cancer Res. 1995 Oct 1;55(19):4367-74 PMID: 7671249
  102. Downregulation of the proteasome subunits, transporter, and antigen presentation in hepatocellular carcinoma, and their restoration by interferon-gamma.
    J Gastroenterol Hepatol. 2002 Aug;17(8):897-907 PMID: 12164966
  103. Adenoviral gene transfer of stromal cell-derived factor-1 to murine tumors induces the accumulation of dendritic cells and suppresses tumor growth.
    Cancer Res. 2006 Apr 1;66(7):3513-22 PMID: 16585175
  104. Bortezomib sensitizes pancreatic cancer cells to endoplasmic reticulum stress-mediated apoptosis.
    Cancer Res. 2005 Dec 15;65(24):11658-66 PMID: 16357177
  105. Effect of the CYP3A inhibitor ketoconazole on the pharmacokinetics and pharmacodynamics of bortezomib in patients with advanced solid tumors: a prospective, multicenter, open-label, randomized, two-way crossover drug-drug interaction study.
    Clin Ther. 2009;31 Pt 2:2444-58 PMID: 20110052
  106. Phase I trial of the proteasome inhibitor PS-341 in patients with refractory hematologic malignancies.
    J Clin Oncol. 2002 Nov 15;20(22):4420-7 PMID: 12431963
  107. Bortezomib for the treatment of mantle cell lymphoma.
    Clin Cancer Res. 2007 Sep 15;13(18 Pt 1):5291-4 PMID: 17875757
  108. NF-kappaB in cancer: from innocent bystander to major culprit.
    Nat Rev Cancer. 2002 Apr;2(4):301-10 PMID: 12001991
  109. The pan-HDAC inhibitor vorinostat potentiates the activity of the proteasome inhibitor carfilzomib in human DLBCL cells in vitro and in vivo.
    Blood. 2010 Jun 3;115(22):4478-87 PMID: 20233973
  110. Peripheral neuropathy during bortezomib treatment of multiple myeloma: a review of recent studies.
    Leuk Lymphoma. 2010 Jul;51(7):1178-87 PMID: 20497001
  111. Down-regulation of proteasomal subunit MB1 is an independent predictor of improved survival in ovarian cancer.
    Gynecol Oncol. 2009 May;113(2):256-63 PMID: 19243813
  112. CEP-18770: A novel, orally active proteasome inhibitor with a tumor-selective pharmacologic profile competitive with bortezomib.
    Blood. 2008 Mar 1;111(5):2765-75 PMID: 18057228
  113. FOXM1 upregulation is an early event in human squamous cell carcinoma and it is enhanced by nicotine during malignant transformation.
    PLoS One. 2009;4(3):e4849 PMID: 19287496
  114. A coordinated action of Bax, PUMA, and p53 promotes MG132-induced mitochondria activation and apoptosis in colon cancer cells.
    Mol Cancer Ther. 2007 Mar;6(3):1062-9 PMID: 17363499
  115. The proteasome in cancer biology and treatment.
    Radiat Res. 2001 Nov;156(5 Pt 1):447-59 PMID: 11604057
  116. Closing the cell cycle circle in yeast: G2 cyclin proteolysis initiated at mitosis persists until the activation of G1 cyclins in the next cycle.
    Cell. 1994 Jul 1;77(7):1037-50 PMID: 8020094
  117. NF-kappaB: key mediator of inflammation-associated cancer.
    Cancer Biol Ther. 2004 Dec;3(12):1214-6 PMID: 15611628
  118. Increased c-jun/AP-1 levels in etoposide-resistant human leukemia K562 cells.
    Biochem Pharmacol. 1994 Aug 3;48(3):525-33 PMID: 8068039
  119. Drug discovery in the ubiquitin-proteasome system.
    Nat Rev Drug Discov. 2006 Jul;5(7):596-613 PMID: 16816840
  120. Reduced ubiquitin-dependent degradation of c-Jun after phosphorylation by MAP kinases.
    Science. 1997 Jan 17;275(5298):400-2 PMID: 8994040
  121. Enhancement of radiosensitivity by proteasome inhibition: implications for a role of NF-kappaB.
    Int J Radiat Oncol Biol Phys. 2001 May 1;50(1):183-93 PMID: 11316563
  122. Flavones mitigate tumor necrosis factor-alpha-induced adhesion molecule upregulation in cultured human endothelial cells: role of nuclear factor-kappa B.
    J Nutr. 2004 May;134(5):1013-9 PMID: 15113938
  123. Proteasome inhibitors: Dozens of molecules and still counting.
    Biochimie. 2010 Nov;92(11):1530-45 PMID: 20615448
  124. The proteasome as a lipopolysaccharide-binding protein in macrophages: differential effects of proteasome inhibition on lipopolysaccharide-induced signaling events.
    J Immunol. 2003 Aug 1;171(3):1515-25 PMID: 12874245
  125. Structure activity relationship of antioxidative property of flavonoids and inhibitory effect on matrix metalloproteinase activity in UVA-irradiated human dermal fibroblast.
    Arch Pharm Res. 2007 Mar;30(3):290-8 PMID: 17424933
  126. Pharmacologic targeting of a stem/progenitor population in vivo is associated with enhanced bone regeneration in mice.
    J Clin Invest. 2008 Feb;118(2):491-504 PMID: 18219387
  127. Effects of different transferrin forms on transferrin receptor expression, iron uptake, and cellular proliferation of human leukemic HL60 cells. Mechanisms responsible for the specific cytotoxicity of transferrin-gallium.
    J Clin Invest. 1986 Dec;78(6):1538-46 PMID: 3465751
  128. In vitro and in vivo selective antitumor activity of a novel orally bioavailable proteasome inhibitor MLN9708 against multiple myeloma cells.
    Clin Cancer Res. 2011 Aug 15;17(16):5311-21 PMID: 21724551
  129. Carfilzomib interacts synergistically with histone deacetylase inhibitors in mantle cell lymphoma cells in vitro and in vivo.
    Mol Cancer Ther. 2011 Sep;10(9):1686-97 PMID: 21750224
  130. The active sites of the eukaryotic 20 S proteasome and their involvement in subunit precursor processing.
    J Biol Chem. 1997 Oct 3;272(40):25200-9 PMID: 9312134
  131. Inducibility of kappa immunoglobulin enhancer-binding protein Nf-kappa B by a posttranslational mechanism.
    Cell. 1986 Dec 26;47(6):921-8 PMID: 3096580
  132. Proteasome inhibitors induce a terminal unfolded protein response in multiple myeloma cells.
    Blood. 2006 Jun 15;107(12):4907-16 PMID: 16507771
  133. Gallium in cancer treatment.
    Curr Top Med Chem. 2004;4(15):1575-83 PMID: 15579097
  134. LMP2+ proteasomes are required for the presentation of specific antigens to cytotoxic T lymphocytes.
    Curr Biol. 1995 Aug 1;5(8):923-30 PMID: 7583150
  135. The E6 oncoprotein encoded by human papillomavirus types 16 and 18 promotes the degradation of p53.
    Cell. 1990 Dec 21;63(6):1129-36 PMID: 2175676
  136. An epitope of the transferrin receptor is exposed on the cell surface of high-grade but not low-grade human lymphomas.
    Blood. 1989 Dec;74(8):2718-29 PMID: 2479430
  137. Prevention of experimental colitis by a selective inhibitor of the immunoproteasome.
    J Immunol. 2010 Jul 1;185(1):634-41 PMID: 20525886
  138. A novel orally active proteasome inhibitor ONX 0912 triggers in vitro and in vivo cytotoxicity in multiple myeloma.
    Blood. 2010 Dec 2;116(23):4906-15 PMID: 20805366
  139. NPI-0052 enhances tumoricidal response to conventional cancer therapy in a colon cancer model.
    Clin Cancer Res. 2006 Nov 15;12(22):6758-64 PMID: 17121896
  140. Evaluation of the proteasome inhibitor MLN9708 in preclinical models of human cancer.
    Cancer Res. 2010 Mar 1;70(5):1970-80 PMID: 20160034
  141. Ubiquitin-dependent c-Jun degradation in vivo is mediated by the delta domain.
    Cell. 1994 Sep 9;78(5):787-98 PMID: 8087846
  142. Proteasome inhibitor PS-341 induces growth arrest and apoptosis of non-small cell lung cancer cells via the JNK/c-Jun/AP-1 signaling.
    Cancer Sci. 2004 Feb;95(2):176-80 PMID: 14965369
  143. Overexpression of hedgehog pathway molecules and FOXM1 in non-small cell lung carcinomas.
    Lung Cancer. 2009 Oct;66(1):64-74 PMID: 19200615
  144. CXC chemokines in angiogenesis.
    J Leukoc Biol. 2000 Jul;68(1):1-8 PMID: 10914483
  145. Proteasome inhibitors: a novel class of potent and effective antitumor agents.
    Cancer Res. 1999 Jun 1;59(11):2615-22 PMID: 10363983
  146. Potent and selective inhibitors of the proteasome: dipeptidyl boronic acids.
    Bioorg Med Chem Lett. 1998 Feb 17;8(4):333-8 PMID: 9871680
  147. Activation-dependent ubiquitination of a T cell antigen receptor subunit on multiple intracellular lysines.
    J Biol Chem. 1994 May 13;269(19):14244-7 PMID: 8188707
  148. Involvement of Jun and Fos proteins in regulating transcriptional activation of the human pi class glutathione S-transferase gene in multidrug-resistant MCF7 breast cancer cells.
    J Biol Chem. 1994 Jun 10;269(23):16397-402 PMID: 8206948
  149. Potential for protein kinase C inhibitors in cancer therapy.
    Cancer Treat Res. 1995;78:3-27 PMID: 8595146
  150. Inhibition of epithelial to mesenchymal transition in metastatic prostate cancer cells by the novel proteasome inhibitor, NPI-0052: pivotal roles of Snail repression and RKIP induction.
    Oncogene. 2009 Oct 8;28(40):3573-85 PMID: 19633685
  151. The proteasome inhibitor CEP-18770 enhances the anti-myeloma activity of bortezomib and melphalan.
    Br J Haematol. 2010 Feb;148(4):569-81 PMID: 19958357
  152. Differential bortezomib sensitivity in head and neck cancer lines corresponds to proteasome, nuclear factor-kappaB and activator protein-1 related mechanisms.
    Mol Cancer Ther. 2008 Jul;7(7):1949-60 PMID: 18645005
  153. Blocking anti-apoptosis as a strategy for cancer chemotherapy: NF-kappaB as a target.
    J Cell Biochem. 2004 Jul 1;92(4):646-50 PMID: 15211562
  154. Regulatory processes affecting androgen receptor expression, stability, and function: potential targets to treat hormone-refractory prostate cancer.
    J Cell Biochem. 2006 Aug 15;98(6):1408-23 PMID: 16619263
  155. Dual targeting of the proteasome regulates survival and homing in Waldenstrom macroglobulinemia.
    Blood. 2008 May 1;111(9):4752-63 PMID: 18316628
  156. Degradation of cell proteins and the generation of MHC class I-presented peptides.
    Annu Rev Immunol. 1999;17:739-79 PMID: 10358773
  157. The proteasome as a novel target for the treatment of breast cancer.
    Breast Dis. 2002;15:61-70 PMID: 15687646
  158. The molecular, the bad, and the ugly: preventing bladder cancer via mTOR inhibition.
    Cancer Prev Res (Phila). 2009 Dec;2(12):1001-2 PMID: 19952365
  159. Proteasome inhibitor induces apoptosis through induction of endoplasmic reticulum stress.
    Cancer Biol Ther. 2006 Jul;5(7):745-8 PMID: 16861900
  160. The proteasome inhibitor PS-341 potentiates sensitivity of multiple myeloma cells to conventional chemotherapeutic agents: therapeutic applications.
    Blood. 2003 Mar 15;101(6):2377-80 PMID: 12424198
  161. Antiproliferative and proapoptotic effects of proteasome inhibitors and their combination with histone deacetylase inhibitors on leukemia cells.
    Cardiovasc Hematol Disord Drug Targets. 2009 Mar;9(1):62-77 PMID: 19275578
  162. Bortezomib targets the caspase-like proteasome activity in cervical cancer cells, triggering apoptosis that can be enhanced by nelfinavir.
    Curr Cancer Drug Targets. 2011 Sep;11(7):799-809 PMID: 21762082
  163. Bortezomib induces caspase-dependent apoptosis in Hodgkin lymphoma cell lines and is associated with reduced c-FLIP expression: a gene expression profiling study with implications for potential combination therapies.
    Leuk Res. 2008 Feb;32(2):275-85 PMID: 17659339
  164. Rel/NF-kappaB/IkappaB proteins and cancer.
    Oncogene. 1996 Oct 3;13(7):1367-78 PMID: 8875974
  165. A phase I study of bortezomib and temozolomide in patients with advanced solid tumors.
    Cancer Chemother Pharmacol. 2012 Feb;69(2):505-14 PMID: 21850464
  166. Structure-activity relationship studies of salinosporamide A (NPI-0052), a novel marine derived proteasome inhibitor.
    J Med Chem. 2005 Jun 2;48(11):3684-7 PMID: 15916417
  167. A new target for proteasome inhibitors: FoxM1.
    Expert Opin Investig Drugs. 2010 Feb;19(2):235-42 PMID: 20074015
  168. Apigenin inhibits expression of vascular endothelial growth factor and angiogenesis in human lung cancer cells: implication of chemoprevention of lung cancer.
    Mol Pharmacol. 2005 Sep;68(3):635-43 PMID: 15947208
  169. Proteasome inhibitors in lung cancer.
    Crit Rev Oncol Hematol. 2006 Jun;58(3):177-89 PMID: 16427303
  170. Potent activity of carfilzomib, a novel, irreversible inhibitor of the ubiquitin-proteasome pathway, against preclinical models of multiple myeloma.
    Blood. 2007 Nov 1;110(9):3281-90 PMID: 17591945
  171. Modulation of CXCL14 (BRAK) expression in prostate cancer.
    Prostate. 2005 Jun 15;64(1):67-74 PMID: 15651028
  172. Incorporation of major histocompatibility complex--encoded subunits LMP2 and LMP7 changes the quality of the 20S proteasome polypeptide processing products independent of interferon-gamma.
    Eur J Immunol. 1995 Sep;25(9):2605-11 PMID: 7589133
  173. Involvement of nuclear factor-kappa B, Bax and Bcl-2 in induction of cell cycle arrest and apoptosis by apigenin in human prostate carcinoma cells.
    Oncogene. 2002 May 23;21(23):3727-38 PMID: 12032841
  174. Autophagy as a target for anticancer therapy.
    Nat Rev Clin Oncol. 2011 May 17;8(9):528-39 PMID: 21587219
  175. Displacement of housekeeping proteasome subunits by MHC-encoded LMPs: a newly discovered mechanism for modulating the multicatalytic proteinase complex.
    EMBO J. 1994 Jul 15;13(14):3236-44 PMID: 8045254
  176. LMP-associated proteolytic activities and TAP-dependent peptide transport for class 1 MHC molecules are suppressed in cell lines transformed by the highly oncogenic adenovirus 12.
    J Exp Med. 1996 Feb 1;183(2):499-514 PMID: 8627162
  177. Combination therapy with IFN-alpha plus bortezomib induces apoptosis and inhibits angiogenesis in human bladder cancer cells.
    Mol Cancer Ther. 2006 Dec;5(12):3032-41 PMID: 17172406
  178. Salinosporamide A: a highly cytotoxic proteasome inhibitor from a novel microbial source, a marine bacterium of the new genus salinospora.
    Angew Chem Int Ed Engl. 2003 Jan 20;42(3):355-7 PMID: 12548698
  179. Relative contributions of the five major human cytochromes P450, 1A2, 2C9, 2C19, 2D6, and 3A4, to the hepatic metabolism of the proteasome inhibitor bortezomib.
    Drug Metab Dispos. 2005 Nov;33(11):1723-8 PMID: 16103134
  180. Pharmacokinetics, pharmacodynamics, metabolism, distribution, and excretion of carfilzomib in rats.
    Drug Metab Dispos. 2011 Oct;39(10):1873-82 PMID: 21752943
  181. Phosphorylation meets ubiquitination: the control of NF-[kappa]B activity.
    Annu Rev Immunol. 2000;18:621-63 PMID: 10837071
  182. FoxM1 is a general target for proteasome inhibitors.
    PLoS One. 2009 Aug 12;4(8):e6593 PMID: 19672316
  183. Dual regulation of the anaphase promoting complex in human cells by cyclin A-Cdk2 and cyclin A-Cdk1 complexes.
    Cell Cycle. 2006 Mar;5(6):661-6 PMID: 16582612
  184. Differential effects of the proteasome inhibitor bortezomib on apoptosis and angiogenesis in human prostate tumor xenografts.
    Mol Cancer Ther. 2003 Sep;2(9):835-43 PMID: 14555702
  185. The catalytic sites of 20S proteasomes and their role in subunit maturation: a mutational and crystallographic study.
    Proc Natl Acad Sci U S A. 1999 Sep 28;96(20):10976-83 PMID: 10500111
  186. Inhibition of proteasome activities and subunit-specific amino-terminal threonine modification by lactacystin.
    Science. 1995 May 5;268(5211):726-31 PMID: 7732382
  187. Structure of 20S proteasome from yeast at 2.4 A resolution.
    Nature. 1997 Apr 3;386(6624):463-71 PMID: 9087403
  188. Identification of human cancers deficient in antigen processing.
    J Exp Med. 1993 Feb 1;177(2):265-72 PMID: 8426105
  189. Inhibition of the proteasome activity by gallium(III) complexes contributes to their anti prostate tumor effects.
    Cancer Res. 2007 Oct 1;67(19):9258-65 PMID: 17909033
  190. 26S proteasome activity is down-regulated in lung cancer stem-like cells propagated in vitro.
    PLoS One. 2010 Oct 11;5(10):e13298 PMID: 20949018
  191. Structural determinants involved in the regulation of CXCL14/BRAK expression by the 26 S proteasome.
    J Mol Biol. 2006 Nov 3;363(4):813-22 PMID: 16987528
  192. Gene expression profiling and correlation with outcome in clinical trials of the proteasome inhibitor bortezomib.
    Blood. 2007 Apr 15;109(8):3177-88 PMID: 17185464
  193. Analysis of the major histocompatibility complex class I antigen presentation machinery in normal and malignant renal cells: evidence for deficiencies associated with transformation and progression.
    Cancer Res. 1996 Apr 15;56(8):1756-60 PMID: 8620489
  194. Identification of MECL-1 (LMP-10) as the third IFN-gamma-inducible proteasome subunit.
    J Immunol. 1996 Apr 1;156(7):2361-4 PMID: 8786291
  195. Discovery of a potent, selective, and orally active proteasome inhibitor for the treatment of cancer.
    J Med Chem. 2008 Feb 28;51(4):1068-72 PMID: 18247547
  196. Ubiquitination of protein kinase C-alpha and degradation by the proteasome.
    J Biol Chem. 1996 Aug 30;271(35):20973-6 PMID: 8702857
  197. Ubiquitinylation is not an absolute requirement for degradation of c-Jun protein by the 26 S proteasome.
    J Biol Chem. 1995 May 12;270(19):11623-7 PMID: 7744802
  198. Proteasome inhibitors in cancer therapy.
    J Cell Commun Signal. 2011 Jun;5(2):101-10 PMID: 21484190
  199. Herbimycin A induces the 20 S proteasome- and ubiquitin-dependent degradation of receptor tyrosine kinases.
    J Biol Chem. 1995 Jul 14;270(28):16580-7 PMID: 7622464
  200. Loss of new chemokine CXCL14 in tumor tissue is associated with low infiltration by dendritic cells (DC), while restoration of human CXCL14 expression in tumor cells causes attraction of DC both in vitro and in vivo.
    J Immunol. 2005 May 1;174(9):5490-8 PMID: 15843547
  201. NFkappaB: a promising target for natural products in cancer chemoprevention.
    Phytother Res. 2010 Jul;24(7):949-63 PMID: 20577970
  202. Apigenin induced apoptosis through p53-dependent pathway in human cervical carcinoma cells.
    Life Sci. 2005 Feb 4;76(12):1367-79 PMID: 15670616
  203. Inhibition of proteasome activity by the dietary flavonoid apigenin is associated with growth inhibition in cultured breast cancer cells and xenografts.
    Breast Cancer Res. 2007;9(6):R80 PMID: 18300387
  204. Bortezomib treatment of ovarian cancer cells mediates endoplasmic reticulum stress, cell cycle arrest, and apoptosis.
    Invest New Drugs. 2009 Dec;27(6):543-51 PMID: 19039521
  205. Proteasome inhibition by lactacystin in primary neuronal cells induces both potentially neuroprotective and pro-apoptotic transcriptional responses: a microarray analysis.
    J Neurochem. 2005 Aug;94(4):943-56 PMID: 15992382
  206. Involvement of chemokine receptors in breast cancer metastasis.
    Nature. 2001 Mar 1;410(6824):50-6 PMID: 11242036
  207. Proteasome inhibitors and antigen presentation.
    Biopolymers. 1997;43(4):269-80 PMID: 9316392
  208. The biology of chemokines and their receptors.
    Annu Rev Immunol. 2000;18:217-42 PMID: 10837058
  209. Regulation of endoplasmic reticulum stress-induced cell death by ATF4 in neuroectodermal tumor cells.
    J Biol Chem. 2010 Feb 26;285(9):6091-100 PMID: 20022965
  210. Randomized phase III study of pegylated liposomal doxorubicin plus bortezomib compared with bortezomib alone in relapsed or refractory multiple myeloma: combination therapy improves time to progression.
    J Clin Oncol. 2007 Sep 1;25(25):3892-901 PMID: 17679727
  211. A selective inhibitor of the immunoproteasome subunit LMP7 blocks cytokine production and attenuates progression of experimental arthritis.
    Nat Med. 2009 Jul;15(7):781-7 PMID: 19525961
  212. Cell signaling pathways altered by natural chemopreventive agents.
    Mutat Res. 2004 Nov 2;555(1-2):53-64 PMID: 15476851
  213. Effect of ajoene, a natural antitumor small molecule, on human 20S proteasome activity in vitro and in human leukemic HL60 cells.
    Fundam Clin Pharmacol. 2004 Apr;18(2):171-80 PMID: 15066131
  214. Blockade of Hsp27 overcomes Bortezomib/proteasome inhibitor PS-341 resistance in lymphoma cells.
    Cancer Res. 2003 Oct 1;63(19):6174-7 PMID: 14559800
  215. Extended peptide-based inhibitors efficiently target the proteasome and reveal overlapping specificities of the catalytic beta-subunits.
    Chem Biol. 2001 Sep;8(9):913-29 PMID: 11564559
  216. The proteasome inhibitor bortezomib induces apoptosis in human retinoblastoma cell lines in vitro.
    Invest Ophthalmol Vis Sci. 2007 Oct;48(10):4706-19 PMID: 17898295
  217. Novel proteasome inhibitor PS-341 inhibits activation of nuclear factor-kappa B, cell survival, tumor growth, and angiogenesis in squamous cell carcinoma.
    Clin Cancer Res. 2001 May;7(5):1419-28 PMID: 11350913
  218. Role of oxidants and antioxidants in the induction of AP-1, NF-kappaB, and glutathione S-transferase gene expression.
    J Biol Chem. 1996 Jun 7;271(23):13422-9 PMID: 8662787
  219. Oncogenomics to target myeloma in the bone marrow microenvironment.
    Clin Cancer Res. 2011 Mar 15;17(6):1225-33 PMID: 21411438
  220. The effects of tea extracts on proinflammatory signaling.
    BMC Med. 2006 Dec 01;4:28 PMID: 17140430
  221. The hierarchical relationship between MAPK signaling and ROS generation in human leukemia cells undergoing apoptosis in response to the proteasome inhibitor Bortezomib.
    Exp Cell Res. 2004 May 1;295(2):555-66 PMID: 15093752
  222. Phase I trial of the proteasome inhibitor bortezomib in patients with advanced solid tumors with observations in androgen-independent prostate cancer.
    J Clin Oncol. 2004 Jun 1;22(11):2108-21 PMID: 15169797
  223. Molecular mechanisms mediating antimyeloma activity of proteasome inhibitor PS-341.
    Blood. 2003 Feb 15;101(4):1530-4 PMID: 12393500
  224. The ubiquitin-proteasome pathway in cancer.
    Br J Cancer. 1998;77(3):448-55 PMID: 9472642
  225. Tight correlation between expression of the Forkhead transcription factor FOXM1 and HER2 in human breast cancer.
    BMC Cancer. 2008 Feb 06;8:42 PMID: 18254960
  226. Ubiquitylation and proteasomal degradation of the p21(Cip1), p27(Kip1) and p57(Kip2) CDK inhibitors.
    Cell Cycle. 2010 Jun 15;9(12):2342-52 PMID: 20519948
  227. Proteasome subunits X and Y alter peptidase activities in opposite ways to the interferon-gamma-induced subunits LMP2 and LMP7.
    J Biol Chem. 1996 Jul 19;271(29):17275-80 PMID: 8663318
  228. Distinct regulatory mechanisms of eukaryotic transcriptional activation by SAGA and TFIID.
    Biochim Biophys Acta. 2011 Feb;1809(2):97-108 PMID: 20800707
  229. Proteins are unfolded on the surface of the ATPase ring before transport into the proteasome.
    Mol Cell. 2001 Dec;8(6):1339-49 PMID: 11779508
  230. Degradation and beyond: control of androgen receptor activity by the proteasome system.
    Cell Mol Biol Lett. 2006;11(1):109-31 PMID: 16847754
  231. ERAD inhibitors integrate ER stress with an epigenetic mechanism to activate BH3-only protein NOXA in cancer cells.
    Proc Natl Acad Sci U S A. 2009 Feb 17;106(7):2200-5 PMID: 19164757
  232. Proteasome inhibition activates epidermal growth factor receptor (EGFR) and EGFR-independent mitogenic kinase signaling pathways in pancreatic cancer cells.
    Clin Cancer Res. 2008 Aug 15;14(16):5116-23 PMID: 18698029
  233. The Cdk inhibitor p27 in human cancer: prognostic potential and relevance to anticancer therapy.
    Nat Rev Cancer. 2008 Apr;8(4):253-67 PMID: 18354415
  234. Eponemycin exerts its antitumor effect through the inhibition of proteasome function.
    Cancer Res. 1999 Jun 15;59(12):2798-801 PMID: 10383134
  235. Dietary flavonoids as proteasome inhibitors and apoptosis inducers in human leukemia cells.
    Biochem Pharmacol. 2005 May 15;69(10):1421-32 PMID: 15857606
Article Info
Journal
Biochimica et biophysica acta
Abbr.
Biochim Biophys Acta
ISSN
0006-3002
Published
2012-01-00
Epub
2011-00-18
Pages
64-76
Language
English
Region
Netherlands
NLM ID
0217513
PMCID
PMC3242858
Subset
IM
Grants
NIGMS NIH HHS · R15 GM088798 · United States
NIGMS NIH HHS · R15 GM088798-01 · United States
PHS HHS · 10GRNT4300059 · United States
NIGMS NIH HHS · 1R15GM088798-01 · United States
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