Targeting an MDM2/MYC Axis to Overcome Drug Resistance in Multiple Myeloma.
MDM2
MX69
c-Myc
drug resistance
multiple myeloma
Journal
Cancers
ISSN: 2072-6694
Titre abrégé: Cancers (Basel)
Pays: Switzerland
ID NLM: 101526829
Informations de publication
Date de publication:
21 Mar 2022
21 Mar 2022
Historique:
received:
08
02
2022
revised:
08
03
2022
accepted:
14
03
2022
entrez:
25
3
2022
pubmed:
26
3
2022
medline:
26
3
2022
Statut:
epublish
Résumé
MDM2 is elevated in multiple myeloma (MM). Although traditionally, MDM2 negatively regulates p53, a growing body of research suggests that MDM2 plays several p53-independent roles in cancer pathogenesis as a regulator of oncogene mRNA stability and translation. Yet, the molecular mechanisms underlying MDM2 overexpression and its role in drug resistance in MM remain undefined. Both myeloma cell lines and primary MM samples were employed. Cell viability, cell cycle and apoptosis assays, siRNA transfection, quantitative real-time PCR, immunoblotting, co-immunoprecipitation (Co-IP), chromatin immunoprecipitation (ChIP), soft agar colony formation and migration assay, pulse-chase assay, UV cross-linking, gel-shift assay, RNA-protein binding assays, MEME-analysis for discovering c-Myc DNA binding motifs studies, reporter gene constructs procedure, gene transfection and reporter assay, MM xenograft mouse model studies, and statistical analysis were applied in this study. We show that MDM2 is associated with poor prognosis. Importantly, its upregulation in primary MM samples and human myeloma cell lines (HMCLs) drives drug resistance. Inhibition of MDM2 by RNAi, or by the MDM2/XIAP dual inhibitor MX69, significantly enhanced the sensitivity of resistant HMCLs and primary MM samples to bortezomib and other anti-myeloma drugs, demonstrating that MDM2 can modulate drug response. MDM2 inhibition resulted in a remarkable suppression of relapsed MM cell growth, colony formation, migration and induction of apoptosis through p53-dependent and -independent pathways. Mechanistically, MDM2 was found to reciprocally regulate c-Myc in MM; MDM2 binds to AREs on c-Myc 3'UTR to increase c-Myc mRNA stability and translation, while MDM2 is a direct transcriptional target of c-Myc. MDM2 inhibition rendered c-Myc mRNA unstable, and reduced c-Myc protein expression in MM cells. Importantly, in vivo delivery of MX69 in combination with bortezomib led to significant regression of tumors and prolonged survival in an MM xenograft model. Our findings provide a rationale for the therapeutic targeting of MDM2/c-Myc axis to improve clinical outcome of patients with refractory/relapsed MM.
Sections du résumé
BACKGROUND
BACKGROUND
MDM2 is elevated in multiple myeloma (MM). Although traditionally, MDM2 negatively regulates p53, a growing body of research suggests that MDM2 plays several p53-independent roles in cancer pathogenesis as a regulator of oncogene mRNA stability and translation. Yet, the molecular mechanisms underlying MDM2 overexpression and its role in drug resistance in MM remain undefined.
METHODS
METHODS
Both myeloma cell lines and primary MM samples were employed. Cell viability, cell cycle and apoptosis assays, siRNA transfection, quantitative real-time PCR, immunoblotting, co-immunoprecipitation (Co-IP), chromatin immunoprecipitation (ChIP), soft agar colony formation and migration assay, pulse-chase assay, UV cross-linking, gel-shift assay, RNA-protein binding assays, MEME-analysis for discovering c-Myc DNA binding motifs studies, reporter gene constructs procedure, gene transfection and reporter assay, MM xenograft mouse model studies, and statistical analysis were applied in this study.
RESULTS
RESULTS
We show that MDM2 is associated with poor prognosis. Importantly, its upregulation in primary MM samples and human myeloma cell lines (HMCLs) drives drug resistance. Inhibition of MDM2 by RNAi, or by the MDM2/XIAP dual inhibitor MX69, significantly enhanced the sensitivity of resistant HMCLs and primary MM samples to bortezomib and other anti-myeloma drugs, demonstrating that MDM2 can modulate drug response. MDM2 inhibition resulted in a remarkable suppression of relapsed MM cell growth, colony formation, migration and induction of apoptosis through p53-dependent and -independent pathways. Mechanistically, MDM2 was found to reciprocally regulate c-Myc in MM; MDM2 binds to AREs on c-Myc 3'UTR to increase c-Myc mRNA stability and translation, while MDM2 is a direct transcriptional target of c-Myc. MDM2 inhibition rendered c-Myc mRNA unstable, and reduced c-Myc protein expression in MM cells. Importantly, in vivo delivery of MX69 in combination with bortezomib led to significant regression of tumors and prolonged survival in an MM xenograft model.
CONCLUSION
CONCLUSIONS
Our findings provide a rationale for the therapeutic targeting of MDM2/c-Myc axis to improve clinical outcome of patients with refractory/relapsed MM.
Identifiants
pubmed: 35326742
pii: cancers14061592
doi: 10.3390/cancers14061592
pmc: PMC8945937
pii:
doi:
Types de publication
Journal Article
Langues
eng
Références
Leukemia. 2011 Jun;25(6):1026-35
pubmed: 21468039
Br J Haematol. 2007 Aug;138(3):324-9
pubmed: 17555471
Trends Biochem Sci. 1997 May;22(5):177-81
pubmed: 9175477
Mol Cell. 1999 May;3(5):565-77
pubmed: 10360173
Cancer Lett. 2013 Jul 28;335(2):270-7
pubmed: 23438693
Mol Cell Biol. 2011 Dec;31(24):4928-37
pubmed: 21986500
Bioessays. 2006 Aug;28(8):822-33
pubmed: 16927307
J Urol. 2014 Sep;192(3):981-9
pubmed: 24594405
Blood. 1997 Sep 1;90(5):1982-92
pubmed: 9292533
Blood. 2012 Sep 20;120(12):2450-3
pubmed: 22806891
Am J Clin Pathol. 2012 Feb;137(2):208-12
pubmed: 22261445
Oncogene. 2012 Mar 15;31(11):1342-53
pubmed: 21822304
J Med Chem. 2015 Feb 12;58(3):1038-52
pubmed: 25396320
Cells. 2020 Jan 24;9(2):
pubmed: 31991614
Annu Rev Cell Dev Biol. 2000;16:653-99
pubmed: 11031250
Cancer Cell Int. 2019 Aug 22;19:216
pubmed: 31440117
Mol Cancer Ther. 2010 Nov;9(11):3041-51
pubmed: 21062913
Cancer Biol Ther. 2010 Sep 15;10(6):567-78
pubmed: 20595817
Methods. 2019 Feb 15;155:77-87
pubmed: 30625384
Leukemia. 2015 Mar;29(3):715-26
pubmed: 25179733
Leukemia. 2018 Jun;32(6):1295-1306
pubmed: 29467490
Oncotarget. 2016 Apr 19;7(16):21353-61
pubmed: 26870891
Sci Rep. 2018 Mar 23;8(1):5115
pubmed: 29572502
Leukemia. 2020 Nov;34(11):2858-2874
pubmed: 32651541
Oncotarget. 2013 Dec;4(12):2186-207
pubmed: 24327604
Cell Death Dis. 2020 Apr 17;11(4):237
pubmed: 32303678
Nat Struct Biol. 2001 Feb;8(2):141-5
pubmed: 11175903
Curr Cancer Drug Targets. 2014;14(6):517-36
pubmed: 25092212
Trends Biochem Sci. 1995 Nov;20(11):465-70
pubmed: 8578590
Oncotarget. 2015 Aug 28;6(25):21479-92
pubmed: 26025930
Clin Cancer Res. 2005 Aug 15;11(16):6057-64
pubmed: 16115951
Oncogene. 1999 Apr 29;18(17):2703-10
pubmed: 10348344
Leuk Lymphoma. 2016 Nov;57(11):2526-34
pubmed: 27243588
Cancer Biol Ther. 2010 Jun 1;9(11):936-44
pubmed: 20418664
Curr Med Chem. 2014;21(5):553-74
pubmed: 24180275
Leukemia. 2009 Nov;23(11):1964-79
pubmed: 19741722
Am J Hematol. 2020 May;95(5):548-567
pubmed: 32212178
Cancer Cell. 2009 May 5;15(5):363-75
pubmed: 19411066
Cell. 1993 Jan 29;72(2):233-45
pubmed: 8425220
Blood. 2005 Nov 15;106(10):3609-17
pubmed: 16081689
Curr Cancer Drug Targets. 2005 Feb;5(1):27-41
pubmed: 15720187
Front Oncol. 2020 Dec 23;10:563156
pubmed: 33425720
Blood Cancer J. 2017 Sep 15;7(9):e610
pubmed: 29016571
Cancer Cell. 2016 Oct 10;30(4):623-636
pubmed: 27666947