Mesenchymal stromal cells from patients with acute myeloid leukemia have altered capacity to expand differentiated hematopoietic progenitors

被引:68
作者
Chandran, Priya [1 ]
Le, Yevgeniya [1 ,2 ]
Li, Yuhua [1 ]
Sabloff, Mitchell [4 ]
Mehic, Jelica [3 ]
Rosu-Myles, Michael [3 ]
Allan, David S. [1 ,4 ]
机构
[1] Ottawa Hosp, Res Inst, Regenerat Med Program, Ottawa, ON K1H 8L6, Canada
[2] Atom Energy Canada Ltd, Chalk River, ON K0J 1J0, Canada
[3] Hlth Canada, Ctr Biol Evaluat, Ottawa, ON K1A 0L2, Canada
[4] Univ Ottawa, Dept Med, Hematol, Ottawa, ON, Canada
基金
加拿大健康研究院;
关键词
Acute myeloid leukemia; Mesenchymal stromal cells; Hematopoiesis; Marrow microenvironment; BONE-MARROW; STEM-CELLS; MYELODYSPLASTIC SYNDROME; IN-VITRO; BLOOD; NICHE; TRANSPLANTATION; OSTEOPONTIN; MAINTENANCE; QUIESCENCE;
D O I
10.1016/j.leukres.2015.01.013
中图分类号
R73 [肿瘤学];
学科分类号
100214 [肿瘤学];
摘要
The bone marrow microenvironment may be permissive to the emergence and progression of acute myeloid leukemia (AML). Studying interactions between the microenvironment and leukemia cells should provide new insight for therapeutic advances. Mesenchymal stromal cells (MSCs) are central to the maintenance of the hematopoietic niche. Here we compared the functions and gene expression patterns of MSCs derived from bone marrow aspirates of healthy donors and patients with AML. MSCs expanded from AML patients had heterogeneous morphology and displayed a wide range of proliferation capacity compared to MSCs from healthy controls. The ability of AML-MSCs to support the expansion of committed hematopoietic progenitors from umbilical cord blood-derived CD34(+) cells may be impaired while the expression of genes associated with maintaining hematopoietic quiescence appeared to be increased in AML-MSCs compared to healthy donors. These results highlight important potential differences in the biologic profile of MSCs from AML patients compared to healthy donors that may contribute to the emergence or progression of leukemia. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:486 / 493
页数:8
相关论文
共 33 条
[1]
Tie2/angiopoietin-1 signaling regulates hematopoietic stem cell quiescence in the bone marrow niche [J].
Arai, F ;
Hirao, A ;
Ohmura, M ;
Sato, H ;
Matsuoka, S ;
Takubo, K ;
Ito, K ;
Koh, GY ;
Suda, T .
CELL, 2004, 118 (02) :149-161
[2]
Phenotypic and functional characterization of bone marrow mesenchymal stem cells derived from patients with multiple myeloma [J].
Arnulf, B. ;
Lecourt, S. ;
Soulier, J. ;
Ternaux, B. ;
Lacassagne, M-Noelle ;
Crinquette, A. ;
Dessoly, J. ;
Sciaini, A-K ;
Benbunan, M. ;
Chomienne, C. ;
Fermand, J-P ;
Marolleau, J-P ;
Larghero, J. .
LEUKEMIA, 2007, 21 (01) :158-163
[3]
Identification of protein-coding and non-coding RNA expression profiles in CD34+ and in stromal cells in refractory anemia with ringed sideroblasts [J].
Baratti, Mariana O. ;
Moreira, Yuri B. ;
Traina, Fabiola ;
Costa, Fernando F. ;
Verjovski-Almeida, Sergio ;
Olalla-Saad, Sara T. .
BMC MEDICAL GENOMICS, 2010, 3
[4]
Connective tissue growth factor regulates adipocyte differentiation of mesenchymal stromal cells and facilitates leukemia bone marrow engraftment [J].
Battula, V. Lokesh ;
Chen, Ye ;
Cabreira, Maria da Graca ;
Ruvolo, Vivian ;
Wang, Zhiqiang ;
Ma, Wencai ;
Konoplev, Sergej ;
Shpall, Elizabeth ;
Lyons, Karen ;
Strunk, Dirk ;
Bueso-Ramos, Carlos ;
Davis, Richard Eric ;
Konopleva, Marina ;
Andreeff, Michael .
BLOOD, 2013, 122 (03) :357-366
[5]
Axl, a prognostic and therapeutic target in acute myeloid leukemia mediates paracrine crosstalk of leukemia cells with bone marrow stroma [J].
Ben-Batalla, Isabel ;
Schultze, Alexander ;
Wroblewski, Mark ;
Erdmann, Robert ;
Heuser, Michael ;
Waizenegger, Jonas S. ;
Riecken, Kristoffer ;
Binder, Mascha ;
Schewe, Denis ;
Sawall, Stefanie ;
Witzke, Victoria ;
Cubas-Cordova, Miguel ;
Janning, Melanie ;
Wellbrock, Jasmin ;
Fehse, Boris ;
Hagel, Christian ;
Krauter, Juergen ;
Ganser, Arnold ;
Lorens, James B. ;
Fiedler, Walter ;
Carmeliet, Peter ;
Pantel, Klaus ;
Bokemeyer, Carsten ;
Loges, Sonja .
BLOOD, 2013, 122 (14) :2443-2452
[6]
Mesenchymal stromal cells of myelodysplastic syndrome and acute myeloid leukemia patients have distinct genetic abnormalities compared with leukemic blasts [J].
Blau, Olga ;
Baldus, Claudia Dorothea ;
Hofmann, Wolf-Karsten ;
Thiel, Gundula ;
Nolte, Florian ;
Burmeister, Thomas ;
Tuerkmen, Seval ;
Benlasfer, Ouidad ;
Schuemann, Elke ;
Sindram, Annette ;
Molkentin, Mara ;
Mundlos, Stefan ;
Keilholz, Ulrich ;
Thiel, Eckhard ;
Blau, Igor Wolfgang .
BLOOD, 2011, 118 (20) :5583-5592
[7]
Bone marrow stroma in childhood myelodysplastic syndrome: composition, ability to sustain hematopoiesis in vitro, and altered gene expression [J].
Borojevic, R ;
Roela, RA ;
Rodarte, RS ;
Thiago, LS ;
Pasini, FS ;
Conti, FM ;
Rossi, MID ;
Reis, LFL ;
Lopes, LF ;
Brentani, MM .
LEUKEMIA RESEARCH, 2004, 28 (08) :831-844
[8]
Adhesion to osteopontin in the bone marrow niche regulates lymphoblastic leukemia cell dormancy [J].
Boyerinas, Benjamin ;
Zafrir, Maya ;
Yesilkanal, Ali E. ;
Price, Trevor T. ;
Hyjek, Elizabeth M. ;
Sipkins, Dorothy A. .
BLOOD, 2013, 121 (24) :4821-4831
[9]
Cocultivation of umbilical cord blood CD34+ cells with retro-transduced hMSCs leads to effective amplification of long-term culture-initiating cells [J].
Chun-Gang Xie ;
Jin-Fu Wang ;
Ying Xiang ;
Li-Yan Qiu ;
Bing-Bing Jia ;
Li-Juan Wang ;
Guo-Zhong Wang ;
Guo-Ping Huang .
WORLD JOURNAL OF GASTROENTEROLOGY, 2006, 12 (03) :393-402
[10]
Bone marrow mesenchymal stem cells are abnormal in multiple myeloma [J].
Corre, J. ;
Mahtouk, K. ;
Attal, M. ;
Gadelorge, M. ;
Huynh, A. ;
Fleury-Cappellesso, S. ;
Danho, C. ;
Laharrague, P. ;
Klein, B. ;
Reme, T. ;
Bourin, P. .
LEUKEMIA, 2007, 21 (05) :1079-1088