Home LiteratureArticle Details
PMID: 25092212 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Review

Overview of proteasome inhibitor-based anti-cancer therapies: perspective on bortezomib and second generation proteasome inhibitors versus future generation inhibitors of ubiquitin-proteasome system.

Current cancer drug targets ·Vol. 14 ·No. 6 ·2014-00-00 ·Pages 517-36

Dou QP, Zonder JA

Abstract

Over the past ten years, proteasome inhibition has emerged as an effective therapeutic strategy for treating multiple myeloma (MM) and some lymphomas. In 2003, Bortezomib (BTZ) became the first proteasome inhibitor approved by the U.S. Food and Drug Administration (FDA). BTZ-based therapies have become a staple for the treatment of MM at all stages of the disease. The survival rate of MM patients has improved significantly since clinical introduction of BTZ and other immunomodulatory drugs. However, BTZ has several limitations. Not all patients respond to BTZ based therapies and relapse occurs in many patients who initially responded. Solid tumors, in particular, are often resistant to BTZ. Furthermore, BTZ can induce dose-limiting peripheral neuropathy (PN). The second generation proteasome inhibitor Carfizomib (CFZ; U.S. FDA approved in August 2012) induces responses in a minority of MM patients relapsed from or refractory to BTZ. There is less PN compared to BTZ. Four other second-generation proteasome inhibitors (Ixazomib, Delanzomib, Oprozomib and Marizomib) with different pharmacologic properties and broader anticancer activities, have also shown some clinical activity in bortezomib-resistant cancers. While the mechanism of resistance to bortezomib in human cancers still remains to be fully understood, targeting the immunoproteasome, ubiquitin E3 ligases, the 19S proteasome and deubiquitinases in pre-clinical studies represents possible directions for future generation inhibitors of ubiquitin-proteasome system in the treatment of MM and other cancers.

MeSH Terms
Animals Antineoplastic Agents/adverse effects,therapeutic use Boronic Acids/adverse effects,therapeutic use Bortezomib Drug Design Humans Molecular Targeted Therapy Multiple Myeloma/drug therapy,enzymology,pathology Proteasome Endopeptidase Complex/metabolism Proteasome Inhibitors/adverse effects,therapeutic use Proteolysis/drug effects Pyrazines/adverse effects,therapeutic use Signal Transduction/drug effects Ubiquitin-Protein Ligase Complexes/metabolism Ubiquitin-Protein Ligases/metabolism Ubiquitin-Specific Proteases/antagonists & inhibitors,metabolism Ubiquitination/drug effects
Chemicals
Antineoplastic Agents Boronic Acids Proteasome Inhibitors Pyrazines Bortezomib Ubiquitin-Protein Ligase Complexes Ubiquitin-Protein Ligases Ubiquitin-Specific Proteases Proteasome Endopeptidase Complex
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Dou Q Ping
Zonder Jeffrey A
Barbara Ann Karmanos Cancer Institute and Department of Oncology, Wayne State University School of Medicine, 540.1 HWCRC, 4100 John R Road, Detroit, MI 48201. doup@karmanos.org.
References (186)
186 references, click to expand
  1. Bax degradation by the ubiquitin/proteasome-dependent pathway: involvement in tumor survival and progression.
    Proc Natl Acad Sci U S A. 2000 Apr 11;97(8):3850-5 PMID: 10725400
  2. Genetic variation associated with bortezomib-induced peripheral neuropathy.
    Pharmacogenet Genomics. 2011 Mar;21(3):121-9 PMID: 21228734
  3. The immunoproteasome as a target in hematologic malignancies.
    Semin Hematol. 2012 Jul;49(3):258-62 PMID: 22726549
  4. Proteasome inhibition and combination therapy for non-Hodgkin's lymphoma: from bench to bedside.
    Oncologist. 2012;17(5):694-707 PMID: 22566373
  5. The epoxyketone-based proteasome inhibitors carfilzomib and orally bioavailable oprozomib have anti-resorptive and bone-anabolic activity in addition to anti-myeloma effects.
    Leukemia. 2013 Feb;27(2):430-40 PMID: 22763387
  6. Deubiquitinating enzymes as therapeutic targets in cancer.
    Curr Pharm Des. 2013;19(22):4039-52 PMID: 23181570
  7. Immune and non-immune functions of the immunoproteasome.
    Front Biosci (Landmark Ed). 2012 Jan 01;17:1904-16 PMID: 22201844
  8. A novel regimen combining high dose cytarabine and bortezomib has activity in multiply relapsed and refractory mantle cell lymphoma - long-term results of a multicenter observation study.
    Leuk Lymphoma. 2009 May;50(5):716-22 PMID: 19347767
  9. 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
  10. Phase I trial of bortezomib in combination with rituximab-HyperCVAD alternating with rituximab, methotrexate and cytarabine for untreated aggressive mantle cell lymphoma.
    Br J Haematol. 2010 Oct;151(1):47-53 PMID: 20735402
  11. Time to treatment response in patients with follicular lymphoma treated with bortezomib is longer compared with other histologic subtypes.
    Clin Cancer Res. 2010 Jan 15;16(2):719-26 PMID: 20068103
  12. Proteasome inhibitors in multiple myeloma: 10 years later.
    Blood. 2012 Aug 2;120(5):947-59 PMID: 22645181
  13. The ubiquitin-proteasome proteolytic pathway.
    Cell. 1994 Oct 7;79(1):13-21 PMID: 7923371
  14. Bortezomib induces canonical nuclear factor-kappaB activation in multiple myeloma cells.
    Blood. 2009 Jul 30;114(5):1046-52 PMID: 19436050
  15. Weekly docetaxel and bortezomib as first-line treatment for patients with hormone-refractory prostate cancer: a Minnie Pearl Cancer Research Network phase II trial.
    Clin Genitourin Cancer. 2007 Mar;5(4):278-83 PMID: 17553208
  16. Differential efficacy of bortezomib plus chemotherapy within molecular subtypes of diffuse large B-cell lymphoma.
    Blood. 2009 Jun 11;113(24):6069-76 PMID: 19380866
  17. A multicenter, phase II study of bortezomib (PS-341) in patients with unresectable or metastatic gastric and gastroesophageal junction adenocarcinoma.
    Invest New Drugs. 2011 Dec;29(6):1475-81 PMID: 20574790
  18. Bortezomib added to daunorubicin and cytarabine during induction therapy and to intermediate-dose cytarabine for consolidation in patients with previously untreated acute myeloid leukemia age 60 to 75 years: CALGB (Alliance) study 10502.
    J Clin Oncol. 2013 Mar 1;31(7):923-9 PMID: 23129738
  19. Velcade: U.S. FDA approval for the treatment of multiple myeloma progressing on prior therapy.
    Oncologist. 2003;8(6):508-13 PMID: 14657528
  20. Pharmacology, pharmacokinetics, and practical applications of bortezomib.
    Oncology (Williston Park). 2004 Dec;18(14 Suppl 11):14-21 PMID: 15688598
  21. Ubistatins inhibit proteasome-dependent degradation by binding the ubiquitin chain.
    Science. 2004 Oct 1;306(5693):117-20 PMID: 15459393
  22. Interferon-gamma, the functional plasticity of the ubiquitin-proteasome system, and MHC class I antigen processing.
    Immunol Rev. 2005 Oct;207:19-30 PMID: 16181324
  23. Strategies for the identification of ubiquitin ligase inhibitors.
    Biochem Soc Trans. 2010 Feb;38(Pt 1):132-6 PMID: 20074047
  24. New insights into the mechanisms and importance of the proteasome in intracellular protein degradation.
    Biol Chem. 1997 Mar-Apr;378(3-4):131-40 PMID: 9165063
  25. Bortezomib increases osteoblast activity in myeloma patients irrespective of response to treatment.
    Eur J Haematol. 2006 Sep;77(3):233-8 PMID: 16923110
  26. Phase 1 trial of the proteasome inhibitor bortezomib and pegylated liposomal doxorubicin in patients with advanced hematologic malignancies.
    Blood. 2005 Apr 15;105(8):3058-65 PMID: 15626743
  27. The 39th David A. Karnofsky Lecture: bench-to-bedside translation of targeted therapies in multiple myeloma.
    J Clin Oncol. 2012 Feb 1;30(4):445-52 PMID: 22215754
  28. RING fingers mediate ubiquitin-conjugating enzyme (E2)-dependent ubiquitination.
    Proc Natl Acad Sci U S A. 1999 Sep 28;96(20):11364-9 PMID: 10500182
  29. Therapeutic strategies to enhance the anticancer efficacy of histone deacetylase inhibitors.
    J Biomed Biotechnol. 2011;2011:514261 PMID: 21765634
  30. Proteasome beta subunit pharmacogenomics: gene resequencing and functional genomics.
    Clin Cancer Res. 2008 Jun 1;14(11):3503-13 PMID: 18519783
  31. A phase 2 study of bortezomib in relapsed, refractory myeloma.
    N Engl J Med. 2003 Jun 26;348(26):2609-17 PMID: 12826635
  32. A phase I/II study of bortezomib plus CHOP every 2 weeks (CHOP-14) in patients with advanced-stage diffuse large B-cell lymphomas.
    Korean J Hematol. 2012 Mar;47(1):53-9 PMID: 22479278
  33. Current treatment of AL amyloidosis.
    Haematologica. 2009 Aug;94(8):1044-8 PMID: 19644136
  34. Antitumor activity of PR-171, a novel irreversible inhibitor of the proteasome.
    Cancer Res. 2007 Jul 1;67(13):6383-91 PMID: 17616698
  35. Phase II trial of combination therapy with bortezomib, pegylated liposomal doxorubicin, and dexamethasone in patients with newly diagnosed myeloma.
    J Clin Oncol. 2009 Oct 20;27(30):5015-22 PMID: 19738129
  36. Proteasome inhibitors trigger NOXA-mediated apoptosis in melanoma and myeloma cells.
    Cancer Res. 2005 Jul 15;65(14):6282-93 PMID: 16024630
  37. Renal impairment in patients with multiple myeloma: a consensus statement on behalf of the International Myeloma Working Group.
    J Clin Oncol. 2010 Nov 20;28(33):4976-84 PMID: 20956629
  38. Incorporating bortezomib into upfront treatment for multiple myeloma: early results of total therapy 3.
    Br J Haematol. 2007 Jul;138(2):176-85 PMID: 17593024
  39. Towards a systems understanding of MHC class I and MHC class II antigen presentation.
    Nat Rev Immunol. 2011 Nov 11;11(12):823-36 PMID: 22076556
  40. A phase II study of bortezomib and gemcitabine in relapsed mantle cell lymphoma from the National Cancer Institute of Canada Clinical Trials Group (IND 172).
    Leuk Lymphoma. 2011 Mar;52(3):394-9 PMID: 21323520
  41. Building on bortezomib: second-generation proteasome inhibitors as anti-cancer therapy.
    Drug Discov Today. 2010 Mar;15(5-6):243-9 PMID: 20116451
  42. Effects of PS-341 on the activity and composition of proteasomes in multiple myeloma cells.
    Cancer Res. 2005 Sep 1;65(17):7896-901 PMID: 16140960
  43. Bortezomib or high-dose dexamethasone for relapsed multiple myeloma.
    N Engl J Med. 2005 Jun 16;352(24):2487-98 PMID: 15958804
  44. Pulse treatment with the proteasome inhibitor bortezomib inhibits osteoclast resorptive activity in clinically relevant conditions.
    Leuk Res. 2008 Nov;32(11):1661-8 PMID: 18394701
  45. New proteasome inhibitors in myeloma.
    Curr Hematol Malig Rep. 2012 Dec;7(4):258-66 PMID: 23065395
  46. CEP1612, a dipeptidyl proteasome inhibitor, induces p21WAF1 and p27KIP1 expression and apoptosis and inhibits the growth of the human lung adenocarcinoma A-549 in nude mice.
    Cancer Res. 2001 Feb 15;61(4):1280-4 PMID: 11245420
  47. Mechanisms of proteasome inhibitor action and resistance in cancer.
    Drug Resist Updat. 2008 Aug-Oct;11(4-5):164-79 PMID: 18818117
  48. In vivo activation of the p53 pathway by small-molecule antagonists of MDM2.
    Science. 2004 Feb 6;303(5659):844-8 PMID: 14704432
  49. Identification and validation of novel therapeutic targets for multiple myeloma.
    J Clin Oncol. 2005 Sep 10;23(26):6345-50 PMID: 16155018
  50. Bortezomib plus melphalan and prednisone for initial treatment of multiple myeloma.
    N Engl J Med. 2008 Aug 28;359(9):906-17 PMID: 18753647
  51. Osteoprogenitor differentiation is not affected by immunomodulatory thalidomide analogs but is promoted by low bortezomib concentration, while both agents suppress osteoclast differentiation.
    Int J Oncol. 2008 Jul;33(1):129-36 PMID: 18575758
  52. Bortezomib with thalidomide plus dexamethasone compared with thalidomide plus dexamethasone as induction therapy before, and consolidation therapy after, double autologous stem-cell transplantation in newly diagnosed multiple myeloma: a randomised phase 3 study.
    Lancet. 2010 Dec 18;376(9758):2075-85 PMID: 21146205
  53. Prevalence of bortezomib-resistant constitutive NF-kappaB activity in mantle cell lymphoma.
    Mol Cancer. 2008 May 19;7:40 PMID: 18489772
  54. Impact of bortezomib on bone health in myeloma: a review of current evidence.
    Cancer Treat Rev. 2012 Dec;38(8):968-80 PMID: 22226939
  55. Lenalidomide, bortezomib, and dexamethasone combination therapy in patients with newly diagnosed multiple myeloma.
    Blood. 2010 Aug 5;116(5):679-86 PMID: 20385792
  56. Xbp1s-negative tumor B cells and pre-plasmablasts mediate therapeutic proteasome inhibitor resistance in multiple myeloma.
    Cancer Cell. 2013 Sep 9;24(3):289-304 PMID: 24029229
  57. Celastrol, a triterpene extracted from the Chinese "Thunder of God Vine," is a potent proteasome inhibitor and suppresses human prostate cancer growth in nude mice.
    Cancer Res. 2006 May 1;66(9):4758-65 PMID: 16651429
  58. Multicenter phase II study of bortezomib in patients with relapsed or refractory mantle cell lymphoma.
    J Clin Oncol. 2006 Oct 20;24(30):4867-74 PMID: 17001068
  59. The role of the bone microenvironment in the pathophysiology and therapeutic management of multiple myeloma: interplay of growth factors, their receptors and stromal interactions.
    Eur J Cancer. 2006 Jul;42(11):1564-73 PMID: 16765041
  60. Proteasome inhibition with bortezomib: a new therapeutic strategy for non-Hodgkin's lymphoma.
    Int J Cancer. 2006 Sep 1;119(5):971-9 PMID: 16557600
  61. Proteasome inhibitors in cancer therapy: lessons from the first decade.
    Clin Cancer Res. 2008 Mar 15;14(6):1649-57 PMID: 18347166
  62. Role of proteasomes modified by interferon-gamma in antigen processing.
    J Leukoc Biol. 1994 Nov;56(5):571-5 PMID: 7964165
  63. Point mutation of the proteasome beta5 subunit gene is an important mechanism of bortezomib resistance in bortezomib-selected variants of Jurkat T cell lymphoblastic lymphoma/leukemia line.
    J Pharmacol Exp Ther. 2008 Aug;326(2):423-31 PMID: 18502982
  64. Bortezomib (Velcade), rituximab, cyclophosphamide, and dexamethasone combination regimen is active as front-line therapy of low-grade non-Hodgkin lymphoma.
    Clin Lymphoma Myeloma Leuk. 2012 Feb;12(1):26-31 PMID: 21752745
  65. 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
  66. Cereblon is a direct protein target for immunomodulatory and antiproliferative activities of lenalidomide and pomalidomide.
    Leukemia. 2012 Nov;26(11):2326-35 PMID: 22552008
  67. A phase II trial of bortezomib and prednisone for castration resistant metastatic prostate cancer.
    J Urol. 2007 Dec;178(6):2378-83; discussion 2383-4 PMID: 17936848
  68. A phase I/II study of carfilzomib 2-10-min infusion in patients with advanced solid tumors.
    Cancer Chemother Pharmacol. 2013 Oct;72(4):861-8 PMID: 23975329
  69. 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
  70. Bortezomib therapy alone and in combination with dexamethasone for previously untreated symptomatic multiple myeloma.
    Br J Haematol. 2005 Jun;129(6):776-83 PMID: 15953004
  71. Inhibition of the ubiquitin-proteasome system by natural products for cancer therapy.
    Planta Med. 2010 Aug;76(11):1064-74 PMID: 20186654
  72. Ubiquitylation in apoptosis: a post-translational modification at the edge of life and death.
    Nat Rev Mol Cell Biol. 2011 Jun 23;12(7):439-52 PMID: 21697901
  73. Phase II study of bortezomib and pegylated liposomal doxorubicin in the treatment of metastatic breast cancer.
    Clin Breast Cancer. 2010 Dec 1;10(6):465-70 PMID: 21147690
  74. A phase I study using bortezomib with weekly idarubicin for treatment of elderly patients with acute myeloid leukemia.
    Leuk Res. 2013 Nov;37(11):1502-8 PMID: 24075534
  75. Dose-escalating and pharmacological study of bortezomib in adult cancer patients with impaired renal function: a National Cancer Institute Organ Dysfunction Working Group Study.
    Cancer Chemother Pharmacol. 2011 Dec;68(6):1439-47 PMID: 21479634
  76. Molecular mechanisms of constitutive NF-kappaB/Rel activation in Hodgkin/Reed-Sternberg cells.
    Oncogene. 1999 Jan 28;18(4):943-53 PMID: 10023670
  77. A phase I single-agent study of twice-weekly consecutive-day dosing of the proteasome inhibitor carfilzomib in patients with relapsed or refractory multiple myeloma or lymphoma.
    Clin Cancer Res. 2012 Sep 1;18(17):4830-40 PMID: 22761464
  78. Efficacy and mechanism of action of the proteasome inhibitor PS-341 in T-cell lymphomas and HTLV-I associated adult T-cell leukemia/lymphoma.
    Oncogene. 2005 Jan 13;24(3):419-30 PMID: 15543232
  79. 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
  80. A first in human phase I study of the proteasome inhibitor CEP-18770 in patients with advanced solid tumours and multiple myeloma.
    Eur J Cancer. 2013 Jan;49(2):290-6 PMID: 23058787
  81. Subcutaneous versus intravenous administration of bortezomib in patients with relapsed multiple myeloma: a randomised, phase 3, non-inferiority study.
    Lancet Oncol. 2011 May;12(5):431-40 PMID: 21507715
  82. Green tea polyphenols block the anticancer effects of bortezomib and other boronic acid-based proteasome inhibitors.
    Blood. 2009 Jun 4;113(23):5927-37 PMID: 19190249
  83. Phase II Study of Bortezomib as a Single Agent in Patients with Previously Untreated or Relapsed/Refractory Acute Myeloid Leukemia Ineligible for Intensive Therapy.
    Leuk Res Treatment. 2013;2013:705714 PMID: 23738080
  84. Bortezomib-induced peripheral neuropathy in multiple myeloma: a comprehensive review of the literature.
    Blood. 2008 Sep 1;112(5):1593-9 PMID: 18574024
  85. Phase Ib dose-escalation study (PX-171-006) of carfilzomib, lenalidomide, and low-dose dexamethasone in relapsed or progressive multiple myeloma.
    Clin Cancer Res. 2013 Apr 15;19(8):2248-56 PMID: 23447001
  86. Risk factors for, and reversibility of, peripheral neuropathy associated with bortezomib-melphalan-prednisone in newly diagnosed patients with multiple myeloma: subanalysis of the phase 3 VISTA study.
    Eur J Haematol. 2011 Jan;86(1):23-31 PMID: 20874823
  87. Carfilzomib: a second-generation proteasome inhibitor for the treatment of relapsed and refractory multiple myeloma.
    Ann Pharmacother. 2013 Jan;47(1):56-62 PMID: 23300152
  88. Proteasome-based mechanisms of intrinsic and acquired bortezomib resistance in non-small cell lung cancer.
    Biochem Pharmacol. 2012 Jan 15;83(2):207-17 PMID: 22027222
  89. PI3K/p110{delta} is a novel therapeutic target in multiple myeloma.
    Blood. 2010 Sep 2;116(9):1460-8 PMID: 20505158
  90. The role of the ubiquitin-proteasome pathway in apoptosis.
    Cell Death Differ. 1999 Apr;6(4):303-13 PMID: 10381632
  91. Bortezomib-melphalan-prednisone-thalidomide followed by maintenance with bortezomib-thalidomide compared with bortezomib-melphalan-prednisone for initial treatment of multiple myeloma: a randomized controlled trial.
    J Clin Oncol. 2010 Dec 1;28(34):5101-9 PMID: 20940200
  92. Primary therapy of Waldenstrom macroglobulinemia (WM) with weekly bortezomib, low-dose dexamethasone, and rituximab (BDR): long-term results of a phase 2 study of the European Myeloma Network (EMN).
    Blood. 2013 Nov 7;122(19):3276-82 PMID: 24004667
  93. Noxa, a BH3-only member of the Bcl-2 family and candidate mediator of p53-induced apoptosis.
    Science. 2000 May 12;288(5468):1053-8 PMID: 10807576
  94. Proteasome deubiquitinases as novel targets for cancer therapy.
    Int J Biochem Cell Biol. 2012 Nov;44(11):1729-38 PMID: 22819849
  95. Reversibility of symptomatic peripheral neuropathy with bortezomib in the phase III APEX trial in relapsed multiple myeloma: impact of a dose-modification guideline.
    Br J Haematol. 2009 Mar;144(6):895-903 PMID: 19170677
  96. Nonproteasomal targets of the proteasome inhibitors bortezomib and carfilzomib: a link to clinical adverse events.
    Clin Cancer Res. 2011 May 1;17(9):2734-43 PMID: 21364033
  97. From bortezomib to other inhibitors of the proteasome and beyond.
    Curr Pharm Des. 2013;19(22):4025-38 PMID: 23181572
  98. Phase II clinical experience with the novel proteasome inhibitor bortezomib in patients with indolent non-Hodgkin's lymphoma and mantle cell lymphoma.
    J Clin Oncol. 2005 Feb 1;23(4):676-84 PMID: 15613699
  99. Inhibitors for the immuno- and constitutive proteasome: current and future trends in drug development.
    Angew Chem Int Ed Engl. 2012 Aug 27;51(35):8708-20 PMID: 22711561
  100. The proteasome inhibitor, bortezomib suppresses primary myeloma and stimulates bone formation in myelomatous and nonmyelomatous bones in vivo.
    Am J Hematol. 2009 Jan;84(1):6-14 PMID: 18980173
  101. 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
  102. Results of a phase 2 study of bortezomib in patients with relapsed or refractory indolent lymphoma.
    Blood. 2010 Jan 21;115(3):475-80 PMID: 19965689
  103. The N-end rule and regulation of apoptosis.
    Nat Cell Biol. 2003 May;5(5):373-6 PMID: 12724766
  104. A Phase I study of bortezomib plus irinotecan in patients with advanced solid tumors.
    Cancer. 2006 Dec 1;107(11):2688-97 PMID: 17075878
  105. Proteasome inhibitors as potential novel anticancer agents.
    Drug Resist Updat. 1999 Aug;2(4):215-223 PMID: 11504494
  106. Bortezomib (VELCADE) in metastatic breast cancer: pharmacodynamics, biological effects, and prediction of clinical benefits.
    Ann Oncol. 2006 May;17(5):813-7 PMID: 16403809
  107. The 11S regulators of 20S proteasome activity.
    Curr Top Microbiol Immunol. 2002;268:73-89 PMID: 12083009
  108. Marizomib, a proteasome inhibitor for all seasons: preclinical profile and a framework for clinical trials.
    Curr Cancer Drug Targets. 2011 Mar;11(3):254-84 PMID: 21247382
  109. Cyclophosphamide-bortezomib-dexamethasone (CyBorD) produces rapid and complete hematologic response in patients with AL amyloidosis.
    Blood. 2012 May 10;119(19):4391-4 PMID: 22331188
  110. A phase 1/2 study of carfilzomib in combination with lenalidomide and low-dose dexamethasone as a frontline treatment for multiple myeloma.
    Blood. 2012 Aug 30;120(9):1801-9 PMID: 22665938
  111. Bortezomib suppresses function and survival of plasmacytoid dendritic cells by targeting intracellular trafficking of Toll-like receptors and endoplasmic reticulum homeostasis.
    Blood. 2011 Jan 13;117(2):500-9 PMID: 20956804
  112. Activity-based chemical proteomics accelerates inhibitor development for deubiquitylating enzymes.
    Chem Biol. 2011 Nov 23;18(11):1401-12 PMID: 22118674
  113. Drug discovery in the ubiquitin-proteasome system.
    Nat Rev Drug Discov. 2006 Jul;5(7):596-613 PMID: 16816840
  114. The ubiquitin-proteasome proteolytic pathway: destruction for the sake of construction.
    Physiol Rev. 2002 Apr;82(2):373-428 PMID: 11917093
  115. Efficacy and safety of once-weekly and twice-weekly bortezomib in patients with relapsed systemic AL amyloidosis: results of a phase 1/2 study.
    Blood. 2011 Jul 28;118(4):865-73 PMID: 21562045
  116. Inhibition of proteasome deubiquitinating activity as a new cancer therapy.
    Nat Med. 2011 Nov 06;17(12):1636-40 PMID: 22057347
  117. Bortezomib ADDED to R-CVP is safe and effective for previously untreated advanced-stage follicular lymphoma: a phase II study by the National Cancer Institute of Canada Clinical Trials Group.
    J Clin Oncol. 2011 Sep 1;29(25):3396-401 PMID: 21810681
  118. Ascorbic acid inhibits antitumor activity of bortezomib in vivo.
    Leukemia. 2009 Sep;23(9):1679-86 PMID: 19369963
  119. Proteasomes in apoptosis: villains or guardians?
    Cell Mol Life Sci. 1999 Dec;56(11-12):908-17 PMID: 11212325
  120. 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
  121. Phase 1 trial of bortezomib plus R-CHOP in previously untreated patients with aggressive non-Hodgkin lymphoma.
    Cancer. 2010 Dec 1;116(23):5432-9 PMID: 20665890
  122. Degrasyn potentiates the antitumor effects of bortezomib in mantle cell lymphoma cells in vitro and in vivo: therapeutic implications.
    Mol Cancer Ther. 2010 Jul;9(7):2026-36 PMID: 20606045
  123. Updated survival analyses after prolonged follow-up of the phase 2, multicenter CREST study of bortezomib in relapsed or refractory multiple myeloma.
    Br J Haematol. 2008 Nov;143(4):537-40 PMID: 18783399
  124. Therapeutic advances in relapsed or refractory multiple myeloma.
    J Natl Compr Canc Netw. 2013 May;11(5 Suppl):676-9 PMID: 23704241
  125. Phase II trial of bortezomib for patients with advanced renal cell carcinoma.
    J Clin Oncol. 2004 Sep 15;22(18):3720-5 PMID: 15365068
  126. 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
  127. Extended follow-up of a phase 2 trial of bortezomib alone and in combination with dexamethasone for the frontline treatment of multiple myeloma.
    Br J Haematol. 2009 Sep;146(6):619-26 PMID: 19622094
  128. Once- versus twice-weekly bortezomib induction therapy with CyBorD in newly diagnosed multiple myeloma.
    Blood. 2010 Apr 22;115(16):3416-7 PMID: 20413666
  129. 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
  130. Phase II study of the proteasome inhibitor bortezomib (PS-341) in patients with metastatic neuroendocrine tumors.
    Clin Cancer Res. 2004 Sep 15;10(18 Pt 1):6111-8 PMID: 15447997
  131. Ubiquitin, proteasomes, and the regulation of intracellular protein degradation.
    Curr Opin Cell Biol. 1995 Apr;7(2):215-23 PMID: 7612274
  132. Proteasome inhibitors: an expanding army attacking a unique target.
    Chem Biol. 2012 Jan 27;19(1):99-115 PMID: 22284358
  133. 20S proteasome and its inhibitors: crystallographic knowledge for drug development.
    Chem Rev. 2007 Mar;107(3):687-717 PMID: 17316053
  134. Discovery of specific inhibitors of human USP7/HAUSP deubiquitinating enzyme.
    Chem Biol. 2012 Apr 20;19(4):467-77 PMID: 22520753
  135. Deubiquitinases in cancer: new functions and therapeutic options.
    Oncogene. 2012 May 10;31(19):2373-88 PMID: 21996736
  136. Pharmacokinetic, pharmacodynamic and covariate analysis of subcutaneous versus intravenous administration of bortezomib in patients with relapsed multiple myeloma.
    Clin Pharmacokinet. 2012 Dec;51(12):823-9 PMID: 23018466
  137. Phase II study of the proteasome inhibitor bortezomib (PS-341, Velcade) in chemotherapy-naïve patients with advanced stage non-small cell lung cancer (NSCLC).
    Lung Cancer. 2010 Apr;68(1):89-93 PMID: 19524318
  138. The proteasome inhibitor bortezomib stimulates osteoblastic differentiation of human osteoblast precursors via upregulation of vitamin D receptor signalling.
    Eur J Haematol. 2013 Apr;90(4):263-72 PMID: 23311753
  139. GRP-78 secreted by tumor cells blocks the antiangiogenic activity of bortezomib.
    Blood. 2009 Oct 29;114(18):3960-7 PMID: 19713465
  140. Regulation of p53 stability by Mdm2.
    Nature. 1997 May 15;387(6630):299-303 PMID: 9153396
  141. Bortezomib induction and maintenance treatment in patients with newly diagnosed multiple myeloma: results of the randomized phase III HOVON-65/ GMMG-HD4 trial.
    J Clin Oncol. 2012 Aug 20;30(24):2946-55 PMID: 22802322
  142. Single agent bortezomib in the treatment of relapsed and refractory Hodgkin lymphoma: cancer and leukemia Group B protocol 50206.
    Leuk Lymphoma. 2007 Jul;48(7):1313-9 PMID: 17613759
  143. Gene transfer of truncated IkappaBalpha prevents tubulointerstitial injury.
    Kidney Int. 2003 Feb;63(2):501-13 PMID: 12631115
  144. Integrated safety profile of single-agent carfilzomib: experience from 526 patients enrolled in 4 phase II clinical studies.
    Haematologica. 2013 Nov;98(11):1753-61 PMID: 23935022
  145. Bortezomib combination therapy in multiple myeloma.
    Semin Hematol. 2012 Jul;49(3):228-42 PMID: 22726546
  146. 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
  147. Bortezomib alters microtubule polymerization and axonal transport in rat dorsal root ganglion neurons.
    Neurotoxicology. 2013 Dec;39:124-31 PMID: 24035926
  148. The potential role of bortezomib in combination with chemotherapy and radiation in non-small-cell lung cancer.
    Clin Lung Cancer. 2005 Oct;7 Suppl 2:S64-6 PMID: 16250930
  149. Phase I trial of bortezomib in combination with docetaxel in patients with advanced solid tumors.
    Clin Cancer Res. 2006 Feb 15;12(4):1270-5 PMID: 16489083
  150. A phase 2 study of two doses of bortezomib in relapsed or refractory myeloma.
    Br J Haematol. 2004 Oct;127(2):165-72 PMID: 15461622
  151. Inhibition of nuclear factor-kappaB activation reduces cortical tubulointerstitial injury in proteinuric rats.
    Kidney Int. 1999 Jul;56(1):118-34 PMID: 10411685
  152. Bortezomib, doxorubicin and dexamethasone (PAD) front-line treatment of multiple myeloma: updated results after long-term follow-up.
    Br J Haematol. 2008 May;141(4):512-6 PMID: 18371113
  153. The combination of bendamustine, bortezomib, and rituximab for patients with relapsed/refractory indolent and mantle cell non-Hodgkin lymphoma.
    Blood. 2011 Mar 10;117(10):2807-12 PMID: 21239695
  154. Cyclophosphamide, bortezomib and dexamethasone induction for newly diagnosed multiple myeloma: high response rates in a phase II clinical trial.
    Leukemia. 2009 Jul;23(7):1337-41 PMID: 19225538
  155. The proteasome: a novel target for cancer chemotherapy.
    Leukemia. 2002 Apr;16(4):433-43 PMID: 11960320
  156. Bortezomib induces the formation of nuclear poly(A) RNA granules enriched in Sam68 and PABPN1 in sensory ganglia neurons.
    Neurotox Res. 2010 Feb;17(2):167-78 PMID: 19609631
  157. Bortezomib in the treatment of AL amyloidosis: targeted therapy?
    Haematologica. 2007 Oct;92(10):1302-7 PMID: 18024367
  158. Recent advances in p53 research and cancer treatment.
    J Biomed Biotechnol. 2011;2011:978312 PMID: 21765642
  159. Fludarabine, Bortezomib, Myocet and rituximab chemotherapy in relapsed and refractory mantle cell lymphoma.
    Br J Haematol. 2010 Mar;148(5):810-2 PMID: 19919649
  160. Bortezomib-induced apoptosis in mature T-cell lymphoma cells partially depends on upregulation of Noxa and functional repression of Mcl-1.
    Cancer Sci. 2009 Feb;100(2):341-8 PMID: 19068089
  161. Pharmacokinetics, pharmacodynamics, metabolism, distribution, and excretion of carfilzomib in rats.
    Drug Metab Dispos. 2011 Oct;39(10):1873-82 PMID: 21752943
  162. Characterization of human hect domain family members and their interaction with UbcH5 and UbcH7.
    J Biol Chem. 1998 May 15;273(20):12148-54 PMID: 9575161
  163. Bortezomib in patients with relapsed or refractory mantle cell lymphoma: updated time-to-event analyses of the multicenter phase 2 PINNACLE study.
    Ann Oncol. 2009 Mar;20(3):520-5 PMID: 19074748
  164. Linking the activity of bortezomib in multiple myeloma and autoimmune diseases.
    Crit Rev Oncol Hematol. 2014 Nov;92(2):61-70 PMID: 24890785
  165. A small molecule inhibitor of ubiquitin-specific protease-7 induces apoptosis in multiple myeloma cells and overcomes bortezomib resistance.
    Cancer Cell. 2012 Sep 11;22(3):345-58 PMID: 22975377
  166. Maintenance therapy with bortezomib plus thalidomide or bortezomib plus prednisone in elderly multiple myeloma patients included in the GEM2005MAS65 trial.
    Blood. 2012 Sep 27;120(13):2581-8 PMID: 22889759
  167. Does this have a familiar RING?
    Trends Biochem Sci. 1996 Jun;21(6):208-14 PMID: 8744354
  168. Reversal of acute renal failure by bortezomib-based chemotherapy in patients with multiple myeloma.
    Haematologica. 2007 Oct;92(10):1411-4 PMID: 17768111
  169. A phase II study of single agent bortezomib in patients with metastatic breast cancer: a single institution experience.
    Cancer Invest. 2007 Dec;25(8):733-7 PMID: 17952740
  170. Bortezomib sensitizes human acute myeloid leukemia cells to all-trans-retinoic acid-induced differentiation by modifying the RARα/STAT1 axis.
    Mol Cancer Ther. 2013 Feb;12(2):195-206 PMID: 23243061
  171. Noxa/Bcl-2 protein interactions contribute to bortezomib resistance in human lymphoid cells.
    J Biol Chem. 2011 May 20;286(20):17682-92 PMID: 21454712
  172. Relapsed and refractory lymphoid neoplasms and multiple myeloma with a focus on carfilzomib.
    Biologics. 2013;7:13-32 PMID: 23386784
  173. The chemotherapeutic agent bortezomib induces the formation of stress granules.
    Cancer Cell Int. 2010 Apr 29;10:12 PMID: 20429927
  174. U.s. Food and Drug Administration approval: carfilzomib for the treatment of multiple myeloma.
    Clin Cancer Res. 2013 Sep 1;19(17):4559-63 PMID: 23775332
  175. Abnormally high expression of proteasomes in human leukemic cells.
    Proc Natl Acad Sci U S A. 1990 Sep;87(18):7071-5 PMID: 2205851
  176. Molecular basis of bortezomib resistance: proteasome subunit beta5 (PSMB5) gene mutation and overexpression of PSMB5 protein.
    Blood. 2008 Sep 15;112(6):2489-99 PMID: 18565852
  177. A phase 1 dose escalation study of the safety and pharmacokinetics of the novel proteasome inhibitor carfilzomib (PR-171) in patients with hematologic malignancies.
    Clin Cancer Res. 2009 Nov 15;15(22):7085-91 PMID: 19903785
  178. Novel proteasome inhibitors to overcome bortezomib resistance.
    J Natl Cancer Inst. 2011 Jul 6;103(13):1007-17 PMID: 21606441
  179. Bortezomib plus dexamethasone is superior to vincristine plus doxorubicin plus dexamethasone as induction treatment prior to autologous stem-cell transplantation in newly diagnosed multiple myeloma: results of the IFM 2005-01 phase III trial.
    J Clin Oncol. 2010 Oct 20;28(30):4621-9 PMID: 20823406
  180. Increased proteasome-dependent degradation of the cyclin-dependent kinase inhibitor p27 in aggressive colorectal carcinomas.
    Nat Med. 1997 Feb;3(2):231-4 PMID: 9018245
  181. 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
  182. Bortezomib plus CHOP-rituximab for previously untreated diffuse large B-cell lymphoma and mantle cell lymphoma.
    J Clin Oncol. 2011 Feb 20;29(6):690-7 PMID: 21189393
  183. 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
  184. Superior results of Total Therapy 3 (2003-33) in gene expression profiling-defined low-risk multiple myeloma confirmed in subsequent trial 2006-66 with VRD maintenance.
    Blood. 2010 May 27;115(21):4168-73 PMID: 20124509
  185. The proteasome: a suitable antineoplastic target.
    Nat Rev Cancer. 2004 May;4(5):349-60 PMID: 15122206
  186. Second generation proteasome inhibitors: carfilzomib and immunoproteasome-specific inhibitors (IPSIs).
    Curr Cancer Drug Targets. 2011 Mar;11(3):285-95 PMID: 21247387
Article Info
Journal
Current cancer drug targets
Abbr.
Curr Cancer Drug Targets
ISSN
1873-5576
Published
2014-00-00
Pages
517-36
Language
English
Region
Netherlands
NLM ID
101094211
PMCID
PMC4279864
Subset
IM
Grants
NCI NIH HHS · 5R01CA127258-05 · United States
NCI NIH HHS · 1R21CA184788-01 · United States
NCI NIH HHS · 1R01CA20009 · United States
NCI NIH HHS · P30 CA022453 · United States
NCI NIH HHS · R21 CA184788 · United States
NCI NIH HHS · R01 CA127258 · United States
Analysis Services
Analysis Services

Contact

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

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

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


Business Email

E-mail: product@genelibs.com