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PMID: 25739118 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Validation Study

Identification of a new class of natural product MDM2 inhibitor: In vitro and in vivo anti-breast cancer activities and target validation.

Oncotarget ·Vol. 6 ·No. 5 ·2015-02-20 ·Pages 2623-40

Qin JJ, Wang W, Voruganti S, Wang H, Zhang WD, Zhang R

Abstract

The MDM2 oncogene has been suggested as a molecular target for treating human cancers, including breast cancer. Most MDM2 inhibitors under development are targeting the MDM2-p53 binding, and have little or no effects on cancers without functional p53, such as advanced breast cancer. The present study was designed to develop a new class of MDM2 inhibitors that exhibit anticancer activity in MDM2-dependent and p53-independent manners. The selective MDM2 inhibitors were discovered by a computational structure-based screening, yielding a lead compound, termed JapA. We further found that JapA inhibited cell growth, decreased cell proliferation, and induced G2/M phase arrest and apoptosis in breast cancer cells through an MDM2-dependent mechanism, regardless of p53 status. It also inhibited the tumor growth and lung metastasis in breast cancer xenograft models without causing any host toxicity. Furthermore, JapA directly bound to MDM2 protein and reduced MDM2 levels in cancer cells in vitro and in vivo by promoting MDM2 protein degradation and inhibiting MDM2 transcription, which is distinct from the existing MDM2 inhibitors. In conclusion, JapA represents a new class of MDM2 inhibitor that exerts its anticancer activity through directly down-regulating MDM2, and might be developed as a novel cancer therapeutic agent.

MeSH Terms
Animals Antineoplastic Agents/chemistry,metabolism,pharmacology Apoptosis/drug effects Binding Sites Breast Neoplasms/drug therapy,enzymology,genetics,pathology Cell Proliferation/drug effects Dose-Response Relationship, Drug Drug Design Enzyme Inhibitors/chemistry,metabolism,pharmacology Female G2 Phase Cell Cycle Checkpoints/drug effects Humans Lung Neoplasms/enzymology,prevention & control,secondary MCF-7 Cells Mice, Nude Models, Molecular Molecular Structure Molecular Targeted Therapy Protein Binding Protein Conformation Protein Stability Proto-Oncogene Proteins c-mdm2/antagonists & inhibitors,chemistry,genetics,metabolism RNA Interference Signal Transduction/drug effects Structure-Activity Relationship Time Factors Transcription, Genetic Transfection Tumor Burden Tumor Suppressor Protein p53/genetics,metabolism Xenograft Model Antitumor Assays
Chemicals
Antineoplastic Agents Enzyme Inhibitors TP53 protein, human Tumor Suppressor Protein p53 MDM2 protein, human Proto-Oncogene Proteins c-mdm2
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Qin Jiang-Jiang
Department of Pharmaceutical Sciences, School of Pharmacy, Texas Tech University Health Sciences Center, Amarillo, TX, USA.
Wang Wei
Department of Pharmaceutical Sciences, School of Pharmacy, Texas Tech University Health Sciences Center, Amarillo, TX, USA. | Cancer Biology Center, School of Pharmacy, Texas Tech University Health Sciences Center, Amarillo, TX, USA.
Voruganti Sukesh
Department of Pharmaceutical Sciences, School of Pharmacy, Texas Tech University Health Sciences Center, Amarillo, TX, USA.
Wang Hui
Institute for Nutritional Sciences, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, PR China.
Zhang Wei-Dong
School of Pharmacy, Shanghai Jiao Tong University, Shanghai, PR China.
Zhang Ruiwen
Department of Pharmaceutical Sciences, School of Pharmacy, Texas Tech University Health Sciences Center, Amarillo, TX, USA. | Cancer Biology Center, School of Pharmacy, Texas Tech University Health Sciences Center, Amarillo, TX, USA.
References (55)
55 references, click to expand
  1. Identification of ribosomal protein S25 (RPS25)-MDM2-p53 regulatory feedback loop.
    Oncogene. 2013 May 30;32(22):2782-91 PMID: 22777350
  2. In vitro and in vivo anticancer activity of novel synthetic makaluvamine analogues.
    Clin Cancer Res. 2009 May 15;15(10):3511-8 PMID: 19451594
  3. Recent advances in validating MDM2 as a cancer target.
    Anticancer Agents Med Chem. 2009 Oct;9(8):882-903 PMID: 19538162
  4. Distinct tumor protein p53 mutants in breast cancer subgroups.
    Int J Cancer. 2013 Mar 1;132(5):1227-31 PMID: 22886769
  5. Identification of a new class of MDM2 inhibitor that inhibits growth of orthotopic pancreatic tumors in mice.
    Gastroenterology. 2014 Oct;147(4):893-902.e2 PMID: 25016295
  6. Murine double minute 2: p53-independent roads lead to genome instability or death.
    Trends Biochem Sci. 2009 Jun;34(6):279-86 PMID: 19447627
  7. mdm2 expression is induced by wild type p53 activity.
    EMBO J. 1993 Feb;12(2):461-8 PMID: 8440237
  8. Monitoring drug target engagement in cells and tissues using the cellular thermal shift assay.
    Science. 2013 Jul 5;341(6141):84-7 PMID: 23828940
  9. Genetic susceptibility to triple-negative breast cancer.
    Cancer Res. 2013 Apr 1;73(7):2025-30 PMID: 23536562
  10. Mdm2 is a RING finger-dependent ubiquitin protein ligase for itself and p53.
    J Biol Chem. 2000 Mar 24;275(12):8945-51 PMID: 10722742
  11. MDM2 amplification is an independent prognostic feature of node-negative, estrogen receptor-positive early-stage breast cancer.
    Cancer Biomark. 2010-2011;8(2):53-60 PMID: 21896991
  12. Targeting the MDM2-p53 interaction for cancer therapy.
    Clin Cancer Res. 2008 Sep 1;14(17):5318-24 PMID: 18765522
  13. Breast density and breast cancer risk: a practical review.
    Mayo Clin Proc. 2014 Apr;89(4):548-57 PMID: 24684876
  14. Small molecule RITA binds to p53, blocks p53-HDM-2 interaction and activates p53 function in tumors.
    Nat Med. 2004 Dec;10(12):1321-8 PMID: 15558054
  15. Jacarelhyperol A induced apoptosis in leukaemia cancer cell through inhibition the activity of Bcl-2 proteins.
    BMC Cancer. 2014;14:689 PMID: 25241619
  16. Molecular characterization of basal-like and non-basal-like triple-negative breast cancer.
    Oncologist. 2013;18(2):123-33 PMID: 23404817
  17. The novel tryptamine derivative JNJ-26854165 induces wild-type p53- and E2F1-mediated apoptosis in acute myeloid and lymphoid leukemias.
    Mol Cancer Ther. 2010 Sep;9(9):2545-57 PMID: 20736344
  18. A census of amplified and overexpressed human cancer genes.
    Nat Rev Cancer. 2010 Jan;10(1):59-64 PMID: 20029424
  19. RYBP expression is associated with better survival of patients with hepatocellular carcinoma (HCC) and responsiveness to chemotherapy of HCC cells in vitro and in vivo.
    Oncotarget. 2014 Nov 30;5(22):11604-19 PMID: 25344099
  20. Association of the germline TP53 R72P and MDM2 SNP309 variants with breast cancer survival in specific breast tumor subgroups.
    Breast Cancer Res Treat. 2011 Nov;130(2):599-608 PMID: 21667122
  21. The MDM2-p53 pathway revisited.
    J Biomed Res. 2013 Jul;27(4):254-71 PMID: 23885265
  22. Association of breast cancer outcome with status of p53 and MDM2 SNP309.
    J Natl Cancer Inst. 2006 Jul 5;98(13):911-9 PMID: 16818855
  23. Amplification of Mdmx and overexpression of MDM2 contribute to mammary carcinogenesis by substituting for p53 mutations.
    Diagn Pathol. 2014;9:71 PMID: 24667108
  24. Genistein, a dietary isoflavone, down-regulates the MDM2 oncogene at both transcriptional and posttranslational levels.
    Cancer Res. 2005 Sep 15;65(18):8200-8 PMID: 16166295
  25. Targeting Akt3 signaling in triple-negative breast cancer.
    Cancer Res. 2014 Feb 1;74(3):964-73 PMID: 24335962
  26. Negative cross talk between NFAT1 and Stat5 signaling in breast cancer.
    Mol Endocrinol. 2011 Dec;25(12):2054-64 PMID: 21964595
  27. Oncoprotein MDM2 conceals the activation domain of tumour suppressor p53.
    Nature. 1993 Apr 29;362(6423):857-60 PMID: 8479525
  28. Small-molecule inhibitors of the MDM2-p53 protein-protein interaction to reactivate p53 function: a novel approach for cancer therapy.
    Annu Rev Pharmacol Toxicol. 2009;49:223-41 PMID: 18834305
  29. The pyrido[b]indole MDM2 inhibitor SP-141 exerts potent therapeutic effects in breast cancer models.
    Nat Commun. 2014;5:5086 PMID: 25271708
  30. In vivo activation of the p53 pathway by small-molecule antagonists of MDM2.
    Science. 2004 Feb 6;303(5659):844-8 PMID: 14704432
  31. Temporal activation of p53 by a specific MDM2 inhibitor is selectively toxic to tumors and leads to complete tumor growth inhibition.
    Proc Natl Acad Sci U S A. 2008 Mar 11;105(10):3933-8 PMID: 18316739
  32. BRCA mutations in the management of breast cancer: the state of the art.
    Nat Rev Clin Oncol. 2010 Dec;7(12):702-7 PMID: 20956982
  33. Ribosomal protein S7 as a novel modulator of p53-MDM2 interaction: binding to MDM2, stabilization of p53 protein, and activation of p53 function.
    Oncogene. 2007 Aug 2;26(35):5029-37 PMID: 17310983
  34. p53-independent activities of MDM2 and their relevance to cancer therapy.
    Curr Cancer Drug Targets. 2005 Feb;5(1):9-20 PMID: 15720185
  35. Structure-based design of spiro-oxindoles as potent, specific small-molecule inhibitors of the MDM2-p53 interaction.
    J Med Chem. 2006 Jun 15;49(12):3432-5 PMID: 16759082
  36. HER2-targeted therapy in breast cancer: a systematic review of neoadjuvant trials.
    Cancer Treat Rev. 2013 Oct;39(6):622-31 PMID: 23434074
  37. Natural product ginsenoside 25-OCH3-PPD inhibits breast cancer growth and metastasis through down-regulating MDM2.
    PLoS One. 2012;7(7):e41586 PMID: 22911819
  38. Mdm2 and MdmX inhibitors for the treatment of cancer: a patent review (2011-present).
    Expert Opin Ther Pat. 2013 Apr;23(4):425-48 PMID: 23374098
  39. Targeting triple negative breast cancer: is p53 the answer?
    Cancer Treat Rev. 2013 Aug;39(5):541-50 PMID: 23321033
  40. Antisense therapy targeting MDM2 oncogene in prostate cancer: Effects on proliferation, apoptosis, multiple gene expression, and chemotherapy.
    Proc Natl Acad Sci U S A. 2003 Sep 30;100(20):11636-41 PMID: 13130078
  41. SAR405838: an optimized inhibitor of MDM2-p53 interaction that induces complete and durable tumor regression.
    Cancer Res. 2014 Oct 15;74(20):5855-65 PMID: 25145672
  42. The management of early-stage and metastatic triple-negative breast cancer: a review.
    Hematol Oncol Clin North Am. 2013 Aug;27(4):737-49, viii PMID: 23915742
  43. The clonal and mutational evolution spectrum of primary triple-negative breast cancers.
    Nature. 2012 Jun 21;486(7403):395-9 PMID: 22495314
  44. JKA97, a novel benzylidene analog of harmine, exerts anti-cancer effects by inducing G1 arrest, apoptosis, and p53-independent up-regulation of p21.
    PLoS One. 2012;7(4):e34303 PMID: 22558087
  45. MDM2 is a negative regulator of p21WAF1/CIP1, independent of p53.
    J Biol Chem. 2004 Apr 16;279(16):16000-6 PMID: 14761977
  46. Natural product MDM2 inhibitors: anticancer activity and mechanisms of action.
    Curr Med Chem. 2012;19(33):5705-25 PMID: 22830335
  47. Cancer statistics, 2014.
    CA Cancer J Clin. 2014 Jan-Feb;64(1):9-29 PMID: 24399786
  48. Molecular pathways: targeting Mdm2 and Mdm4 in cancer therapy.
    Clin Cancer Res. 2013 Jan 1;19(1):34-41 PMID: 23262034
  49. Breast cancer prevention by antihormones and other drugs: where do we stand?
    Hematol Oncol Clin North Am. 2013 Aug;27(4):657-72, vii PMID: 23915737
  50. Discovery of AMG 232, a potent, selective, and orally bioavailable MDM2-p53 inhibitor in clinical development.
    J Med Chem. 2014 Feb 27;57(4):1454-72 PMID: 24456472
  51. Structure-based design of potent non-peptide MDM2 inhibitors.
    J Am Chem Soc. 2005 Jul 27;127(29):10130-1 PMID: 16028899
  52. NFAT as cancer target: mission possible?
    Biochim Biophys Acta. 2014 Dec;1846(2):297-311 PMID: 25072963
  53. A p53-independent role of Mdm2 in estrogen-mediated activation of breast cancer cell proliferation.
    Breast Cancer Res. 2011;13(1):R3 PMID: 21223569
  54. Effects of physical activity on breast cancer prevention: a systematic review.
    J Phys Act Health. 2014 Feb;11(2):445-54 PMID: 23416687
  55. MDM2, MDMX and p53 in oncogenesis and cancer therapy.
    Nat Rev Cancer. 2013 Feb;13(2):83-96 PMID: 23303139
Article Info
Journal
Oncotarget
Abbr.
Oncotarget
ISSN
1949-2553
Published
2015-02-20
Pages
2623-40
Language
English
Region
United States
NLM ID
101532965
PMCID
PMC4413606
Subset
IM
Grants
NCI NIH HHS · R01 CA186662 · United States
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