Gene profiling of a myeloma cell line reveals similarities and unique signatures among IL-6 response, N-ras-activating mutations, and coculture with bone marrow stromal cells

被引:67
作者
Croonquist, PA
Linden, MA
Zhao, FY
Van Ness, BG
机构
[1] Univ Minnesota, Grad Program Mol Cellular Dev Biol & Genet, Minneapolis, MN 55455 USA
[2] Univ Minnesota, Grad Program Microbiol Immunol & Canc Biol, Minneapolis, MN 55455 USA
[3] Univ Minnesota, Sch Med, Minneapolis, MN 55455 USA
[4] Univ Minnesota, Dept Genet Cell Biol & Dev, Minneapolis, MN 55455 USA
[5] Univ Minnesota, Ctr Canc, Minneapolis, MN 55455 USA
关键词
D O I
10.1182/blood-2003-04-1227
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
ANBL-6, a myeloma cell line, proliferates in response to interleukin 6 (IL-6) stimulation, coculture with bone marrow stromal cells, and when harboring a constitutively active mutant N-ras gene. Eighteen samples, including 4 IL-6-treated, 3 mutant N-ras-transfected, 3 normal stroma-stimulated, 2 multiple myeloma (MM) stroma-stimulated, and 6 untreated controls were profiled using microarrays interrogating 12 626 genes. Global hierarchical clustering analysis distinguished at least 6 unique expression signatures. Notably, the different stimuli altered distinct functional gene programs, Class comparison analysis (P = .001) revealed 138 genes (54% involved in cell cycle) that distinguished IL-6-stimulated versus nontreated samples. Eighty-seven genes distinguished stroma-stimulated versus IL-6-treated samples (22% encoded for extracellular matrix [ECM] proteins). A total of 130 genes distinguished N-ras transfectants versus IL-6-treated samples (26% involved in metabolism). A total of 157 genes, 20% of these involved in signaling, distinguished N-ras from stroma-interacting samples. All 3 stimuli shared 347 genes, mostly of metabolic function. Genes that distinguished MM1 from MM4 clinical groups were induced at least by one treatment. Notably, only 3 genes (ETV5, DUSP6, and KIAA0735) are uniquely induced in mutant ras-containing cells. We have demonstrated gene expression patterns in myeloma cells that distinguish an intrinsic genetic transformation event and patterns derived from both soluble factors and cell contacts in the bone marrow microenvironment. (C) 2003 by The American Society of Hematology.
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页码:2581 / 2592
页数:12
相关论文
共 24 条
[1]  
Billadeau D, 1997, CANCER RES, V57, P2268
[2]  
BILLADEAU D, 1995, CANCER RES, V55, P3640
[3]   BONE-MARROW MICROENVIRONMENT AND THE PROGRESSION OF MULTIPLE-MYELOMA [J].
CALIGARISCAPPIO, F ;
GREGORETTI, MG ;
MERICO, F ;
GOTTARDI, D ;
GHIA, P ;
PARVIS, G ;
BERGUI, L .
LEUKEMIA & LYMPHOMA, 1992, 8 (1-2) :15-22
[4]   The bone marrow stromal microenvironment influences myeloma therapeutic response in vitro [J].
Cheung, WC ;
Van Ness, B .
LEUKEMIA, 2001, 15 (02) :264-271
[5]   Antisense inhibition of macrophage inflammatory protein 1-α blocks bone destruction in a model of myeloma bone disease [J].
Choi, SJ ;
Oba, Y ;
Gazitt, Y ;
Alsina, M ;
Cruz, J ;
Anderson, J ;
Roodman, GD .
JOURNAL OF CLINICAL INVESTIGATION, 2001, 108 (12) :1833-1841
[6]  
Choi SJ, 2000, BLOOD, V96, P671
[7]   Cell adhesion mediated drug resistance (CAM-DR): Role of integrins and resistance to apoptosis in human myeloma cell lines [J].
Damiano, JS ;
Cress, AE ;
Hazlehurst, LA ;
Shtil, AA ;
Dalton, WS .
BLOOD, 1999, 93 (05) :1658-1667
[8]  
Janknecht R, 1996, ONCOGENE, V13, P1745
[9]   AUTOCRINE GENERATION AND REQUIREMENT OF BSF-2/IL-6 FOR HUMAN MULTIPLE MYELOMAS [J].
KAWANO, M ;
HIRANO, T ;
MATSUDA, T ;
TAGA, T ;
HORII, Y ;
IWATO, K ;
ASAOKU, H ;
TANG, B ;
TANABE, O ;
TANAKA, H ;
KURAMOTO, A ;
KISHIMOTO, T .
NATURE, 1988, 332 (6159) :83-85
[10]   Activating mutations of N- and K-ras in multiple myeloma show different clinical associations: Analysis of the Eastern Cooperative Oncology Group phase III trial [J].
Liu, PC ;
Leong, T ;
Quam, L ;
Billadeau, D ;
Kay, NE ;
Greipp, P ;
Kyle, RA ;
Oken, MM ;
VanNess, B .
BLOOD, 1996, 88 (07) :2699-2706