Literature DB >> 34907087

Runx2 Deficiency in Osteoblasts Promotes Myeloma Resistance to Bortezomib by Increasing TSP-1-Dependent TGFβ1 Activation and Suppressing Immunity in Bone Marrow.

Chao Zhang1,2, Xiaoxuan Xu2, Timothy N Trotter2, Pramod S Gowda2, Yun Lu2, Mark J Suto3,4, Amjad Javed4,5, Joanne E Murphy-Ullrich2,4, Juan Li6, Yang Yang7,4.   

Abstract

Multiple myeloma is a plasma cell malignancy that thrives in the bone marrow (BM). The proteasome inhibitor bortezomib is one of the most effective first-line chemotherapeutic drugs for multiple myeloma; however, 15% to 20% of high-risk patients do not respond to or become resistant to this drug and the mechanisms of chemoresistance remain unclear. We previously demonstrated that multiple myeloma cells inhibit Runt-related transcription factor 2 (Runx2) in pre- and immature osteoblasts (OB), and that this OB-Runx2 deficiency induces a cytokine-rich and immunosuppressive microenvironment in the BM. In the current study, we assessed the impact of OB-Runx2 deficiency on the outcome of bortezomib treatment using OB-Runx2+/+ and OB-Runx2-/- mouse models of multiple myeloma. In vitro and in vivo experiments revealed that OB-Runx2 deficiency induces multiple myeloma cell resistance to bortezomib via the upregulation of immunosuppressive myeloid-derived suppressor cells (MDSCs), downregulation of cytotoxic T cells, and activation of TGFβ1 in the BM. In multiple myeloma tumor-bearing OB-Runx2-/- mice, treatment with SRI31277, an antagonist of thrombospondin-1 (TSP-1)-mediated TGFβ1 activation, reversed the BM immunosuppression and significantly reduced tumor burden. Furthermore, treatment with SRI31277 combined with bortezomib alleviated multiple myeloma cell resistance to bortezomib-induced apoptosis caused by OB-Runx2 deficiency in cocultured cells and produced a synergistic effect on tumor burden in OB-Runx2-/- mice. Depletion of MDSCs by 5-fluorouracil or gemcitabine similarly reversed the immunosuppressive effects and bortezomib resistance induced by OB-Runx2 deficiency in tumor-bearing mice, indicating the importance of the immune environment for drug resistance and suggesting new strategies to overcome bortezomib resistance in the treatment of multiple myeloma. ©2021 American Association for Cancer Research.

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Year:  2021        PMID: 34907087      PMCID: PMC8828708          DOI: 10.1158/1535-7163.MCT-21-0310

Source DB:  PubMed          Journal:  Mol Cancer Ther        ISSN: 1535-7163            Impact factor:   6.009


  50 in total

1.  Halting pro-survival autophagy by TGFβ inhibition in bone marrow fibroblasts overcomes bortezomib resistance in multiple myeloma patients.

Authors:  M A Frassanito; K De Veirman; V Desantis; L Di Marzo; D Vergara; S Ruggieri; T Annese; B Nico; E Menu; I Catacchio; R Ria; V Racanelli; M Maffia; E Angelucci; D Derudas; R Fumarulo; F Dammacco; D Ribatti; K Vanderkerken; A Vacca
Journal:  Leukemia       Date:  2015-10-21       Impact factor: 11.528

2.  Tumors induce a subset of inflammatory monocytes with immunosuppressive activity on CD8+ T cells.

Authors:  Giovanna Gallina; Luigi Dolcetti; Paolo Serafini; Carmela De Santo; Ilaria Marigo; Mario P Colombo; Giuseppe Basso; Frank Brombacher; Ivan Borrello; Paola Zanovello; Silvio Bicciato; Vincenzo Bronte
Journal:  J Clin Invest       Date:  2006-10       Impact factor: 14.808

3.  Myeloma cells block RUNX2/CBFA1 activity in human bone marrow osteoblast progenitors and inhibit osteoblast formation and differentiation.

Authors:  Nicola Giuliani; Simona Colla; Francesca Morandi; Mirca Lazzaretti; Roberto Sala; Sabrina Bonomini; Maria Grano; Silvia Colucci; Mirija Svaldi; Vittorio Rizzoli
Journal:  Blood       Date:  2005-06-02       Impact factor: 22.113

4.  B cells are critical to T-cell-mediated antitumor immunity induced by a combined immune-stimulatory/conditionally cytotoxic therapy for glioblastoma.

Authors:  Marianela Candolfi; James F Curtin; Kader Yagiz; Hikmat Assi; Mia K Wibowo; Gabrielle E Alzadeh; David Foulad; A K M G Muhammad; Sofia Salehi; Naomi Keech; Mariana Puntel; Chunyan Liu; Nicholas R Sanderson; Kurt M Kroeger; Robert Dunn; Gislaine Martins; Pedro R Lowenstein; Maria G Castro
Journal:  Neoplasia       Date:  2011-10       Impact factor: 5.715

Review 5.  Multiple myeloma.

Authors:  Shaji K Kumar; Vincent Rajkumar; Robert A Kyle; Mark van Duin; Pieter Sonneveld; María-Victoria Mateos; Francesca Gay; Kenneth C Anderson
Journal:  Nat Rev Dis Primers       Date:  2017-07-20       Impact factor: 52.329

Review 6.  Pathogenesis of myeloma bone disease.

Authors:  G D Roodman
Journal:  Leukemia       Date:  2008-11-27       Impact factor: 11.528

7.  Enhancement of antitumor immunity in lung cancer by targeting myeloid-derived suppressor cell pathways.

Authors:  Anandi Sawant; Cara C Schafer; Tong Huan Jin; Jaroslaw Zmijewski; Hubert M Tse; Justin Roth; Zhihuan Sun; Gene P Siegal; Victor J Thannickal; Stefan C Grant; Selvarangan Ponnazhagan; Jessy S Deshane
Journal:  Cancer Res       Date:  2013-10-01       Impact factor: 12.701

Review 8.  T-cell exhaustion in the tumor microenvironment.

Authors:  Y Jiang; Y Li; B Zhu
Journal:  Cell Death Dis       Date:  2015-06-18       Impact factor: 8.469

9.  Connective tissue growth factor promotes temozolomide resistance in glioblastoma through TGF-β1-dependent activation of Smad/ERK signaling.

Authors:  Huijun Zeng; Zhao Yang; Ningbo Xu; Boyang Liu; Zhao Fu; Changlin Lian; Hongbo Guo
Journal:  Cell Death Dis       Date:  2017-06-15       Impact factor: 8.469

10.  Bortezomib resistance in multiple myeloma is associated with increased serine synthesis.

Authors:  Esther A Zaal; Wei Wu; Gerrit Jansen; Sonja Zweegman; Jacqueline Cloos; Celia R Berkers
Journal:  Cancer Metab       Date:  2017-08-29
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