Literature DB >> 26286850

Proteasome inhibitors induce FLT3-ITD degradation through autophagy in AML cells.

Clément Larrue1, Estelle Saland1, Héléna Boutzen1, François Vergez2, Marion David1, Carine Joffre1, Marie-Anne Hospital3, Jérôme Tamburini3, Eric Delabesse2, Stéphane Manenti1, Jean Emmanuel Sarry1, Christian Récher4.   

Abstract

Internal tandem duplication of the Fms-like tyrosine kinase-3 receptor (FLT3) internal tandem duplication (ITD) is found in 30% of acute myeloid leukemia (AML) and is associated with a poor outcome. In addition to tyrosine kinase inhibitors, therapeutic strategies that modulate the expression of FLT3-ITD are also promising. We show that AML samples bearing FLT3-ITD mutations are more sensitive to proteasome inhibitors than wild-type samples and this sensitivity is strongly correlated with a higher FLT3-ITD allelic burden. Using pharmacologic inhibitors of autophagy, specific downregulation of key autophagy proteins including Vps34, autophagy gene (Atg)5, Atg12, Atg13, biochemical, and microscopy studies, we demonstrated that proteasome inhibitors induced cytotoxic autophagy in AML cells. FLT3-ITD molecules were detectable within autophagosomes after bortezomib treatment indicating that autophagy induction was responsible for the early degradation of FLT3-ITD, which preceded the inhibition of mitogen-activated protein kinase (MAPK)/extracellular signal-regulated kinase (ERK), PI3K/AKT, and STAT5 pathways, and subsequent activation of cell death. Moreover, proteasome inhibitors overcome resistance to quizartinib induced by mutations in the kinase domain of FLT3, suggesting that these compounds may prevent the emergence of mutant clones arising from tyrosine kinase inhibitor treatments. In xenograft mice models, bortezomib stimulated the conversion of LC3-I to LC3-II, indicating induction of autophagy in vivo, downregulated FLT3-ITD protein expression and improved overall survival. Therefore, selecting patients according to FLT3-ITD mutations could be a new way to detect a significant clinical activity of proteasome inhibitors in AML patients.
© 2016 by The American Society of Hematology.

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Year:  2015        PMID: 26286850     DOI: 10.1182/blood-2015-05-646497

Source DB:  PubMed          Journal:  Blood        ISSN: 0006-4971            Impact factor:   22.113


  44 in total

1.  RSK2 is a new Pim2 target with pro-survival functions in FLT3-ITD-positive acute myeloid leukemia.

Authors:  M-A Hospital; A Jacquel; F Mazed; E Saland; C Larrue; J Mondesir; R Birsen; A S Green; M Lambert; P Sujobert; E-F Gautier; V Salnot; M Le Gall; J Decroocq; L Poulain; N Jacque; M Fontenay; O Kosmider; C Récher; P Auberger; P Mayeux; D Bouscary; J-E Sarry; J Tamburini
Journal:  Leukemia       Date:  2017-09-15       Impact factor: 11.528

Review 2.  [Advances in targeted therapy for childhood acute myeloid leukemia].

Authors:  Ni-Na Wang; Qi-Dong Ye
Journal:  Zhongguo Dang Dai Er Ke Za Zhi       Date:  2017-07

3.  Synectin promotes fibrogenesis by regulating PDGFR isoforms through distinct mechanisms.

Authors:  Mary C Drinane; Usman Yaqoob; Haibin Yu; Fanghong Luo; Thomas Greuter; Juan P Arab; Enis Kostallari; Vikas K Verma; Jessica Maiers; Thiago Milech De Assuncao; Michael Simons; Debabrata Mukhopadhyay; Tatiana Kisseleva; David A Brenner; Raul Urrutia; Gwen Lomberk; Yandong Gao; Giovanni Ligresti; Daniel J Tschumperlin; Alexander Revzin; Sheng Cao; Vijay H Shah
Journal:  JCI Insight       Date:  2017-12-21

Review 4.  Heparanase: From basic research to therapeutic applications in cancer and inflammation.

Authors:  Israel Vlodavsky; Preeti Singh; Ilanit Boyango; Lilach Gutter-Kapon; Michael Elkin; Ralph D Sanderson; Neta Ilan
Journal:  Drug Resist Updat       Date:  2016-10-06       Impact factor: 18.500

Review 5.  Heparanase regulation of cancer, autophagy and inflammation: new mechanisms and targets for therapy.

Authors:  Ralph D Sanderson; Michael Elkin; Alan C Rapraeger; Neta Ilan; Israel Vlodavsky
Journal:  FEBS J       Date:  2016-11-16       Impact factor: 5.542

6.  Retinoic acid synergizes with the unfolded protein response and oxidative stress to induce cell death in FLT3-ITD+ AML.

Authors:  Silvia Masciarelli; Ernestina Capuano; Tiziana Ottone; Mariadomenica Divona; Serena Lavorgna; Francesca Liccardo; Martyna Śniegocka; Serena Travaglini; Nelida I Noguera; Alessandra Picardi; Vincenzo Petrozza; Alessandro Fatica; Luca Tamagnone; Maria Teresa Voso; Francesco Lo Coco; Francesco Fazi
Journal:  Blood Adv       Date:  2019-12-23

7.  circMYBL2, a circRNA from MYBL2, regulates FLT3 translation by recruiting PTBP1 to promote FLT3-ITD AML progression.

Authors:  Yu-Meng Sun; Wen-Tao Wang; Zhan-Cheng Zeng; Tian-Qi Chen; Cai Han; Qi Pan; Wei Huang; Ke Fang; Lin-Yu Sun; Yan-Fei Zhou; Xue-Qun Luo; Chengwei Luo; Xin Du; Yue-Qin Chen
Journal:  Blood       Date:  2019-10-31       Impact factor: 22.113

Review 8.  Mechanisms of Resistance to FLT3 Inhibitors and the Role of the Bone Marrow Microenvironment.

Authors:  Gabriel Ghiaur; Mark Levis
Journal:  Hematol Oncol Clin North Am       Date:  2017-05-18       Impact factor: 3.722

Review 9.  FLT3 Inhibitors in Acute Myeloid Leukemia: Current Status and Future Directions.

Authors:  Maria Larrosa-Garcia; Maria R Baer
Journal:  Mol Cancer Ther       Date:  2017-06       Impact factor: 6.261

Review 10.  The role of autophagy in targeted therapy for acute myeloid leukemia.

Authors:  Wenxin Du; Aixiao Xu; Yunpeng Huang; Ji Cao; Hong Zhu; Bo Yang; Xuejing Shao; Qiaojun He; Meidan Ying
Journal:  Autophagy       Date:  2020-09-22       Impact factor: 16.016

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