Targeting tumor-stromal interactions in bone metastasis

被引:114
作者
Esposito, Mark [1 ]
Kang, Yibin [1 ]
机构
[1] Princeton Univ, Dept Mol Biol, Princeton, NJ 08544 USA
基金
美国国家卫生研究院;
关键词
Bone metastasis; Metastatic niche; Tumor dormancy; Osteoclast inhibitors; Tumor-stromal interactions; Immune surveillance; PROSTATE-CANCER CELLS; HORMONE-RELATED PROTEIN; HUMAN BREAST-CANCER; RANDOMIZED CONTROLLED-TRIAL; REGULATORY T-CELLS; NF-KAPPA-B; HEMATOPOIETIC STEM; OSTEOCLAST DIFFERENTIATION; ALPHA-V-BETA-3; INTEGRIN; ENDOTHELIAL-CELLS;
D O I
10.1016/j.pharmthera.2013.10.006
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Bone metastasis is a frequent occurrence in late stage solid tumors, including breast cancers, prostate or lung. However, the causes for this proclivity have only recently been elucidated. Significant progress has been made in the past decade toward understanding the molecular underpinnings of bone metastasis, and much of this research reveals a crucial role of the host stroma in each step of the metastatic cascade. Tumor stromal interactions are crucial in engineering a pre-metastatic niche, accommodating metastatic seeding, and establishing the vicious cycle of bone metastasis. Current treatments in bone metastasis focus on latter steps of the metastatic cascade, with most treatments targeting the process of bone remodeling; however, emerging research identifies many other candidates as promising targets. Host stromal cells including platelets and endothelial cells are important in the early steps of metastatic homing, attachment and extravasation while a variety of immune cells, parenchymal cells and mesenchymal cells of the bone marrow are important in the establishment of overt, immune-suppressed metastatic lesions. Many participants during these steps have been identified and functionally validated. Significant contributors include integrins, (alpha(v)beta(3), alpha(2)beta(1), alpha(4)beta(1)), TGF beta family members, bone resident proteins (BSP, OPG, SPARC, OPN), RAWL and PTHrP. In this review, we will discuss the contribution of host stromal cells to pre-metastatic niche conditioning, seeding, dormancy, bone-remodeling, immune regulation, and chemotherapeutic shielding in bone metastasis. Research exploring these interactions between bone metastases and stromal cells has yielded many therapeutic targets, and we will discuss both the current and future therapeutic avenues in treating bone metastasis. (C) 2013 Elsevier Inc. All rights reserved.
引用
收藏
页码:222 / 233
页数:12
相关论文
共 193 条
[1]   Osteoclasts enhance myeloma cell growth and survival via cell-cell contact: a vicious cycle between bone destruction and myeloma expansion [J].
Abe, M ;
Hiura, K ;
Wilde, J ;
Shioyasono, A ;
Moriyama, K ;
Hashimoto, T ;
Kido, S ;
Oshima, T ;
Shibata, H ;
Ozaki, S ;
Inoue, D ;
Matsumoto, T .
BLOOD, 2004, 104 (08) :2484-2491
[2]   A CXCL1 Paracrine Network Links Cancer Chemoresistance and Metastasis [J].
Acharyya, Swarnali ;
Oskarsson, Thordur ;
Vanharanta, Sakari ;
Malladi, Srinivas ;
Kim, Juliet ;
Morris, Patrick G. ;
Manova-Todorova, Katia ;
Leversha, Margaret ;
Hogg, Nancy ;
Seshan, Venkatraman E. ;
Norton, Larry ;
Brogi, Edi ;
Massague, Joan .
CELL, 2012, 150 (01) :165-178
[3]   Therapeutic targeting of a stem cell niche [J].
Adams, Gregor B. ;
Martin, Roderick P. ;
Alley, Ian R. ;
Chabner, Karissa T. ;
Cohen, Kenneth S. ;
Calvi, Laura M. ;
Kronenberg, Henry M. ;
Scadden, David T. .
NATURE BIOTECHNOLOGY, 2007, 25 (02) :238-243
[4]   Models, mechanisms and clinical evidence for cancer dormancy [J].
Aguirre-Ghiso, Julio A. .
NATURE REVIEWS CANCER, 2007, 7 (11) :834-846
[5]   Runx2 association with progression of prostate cancer in patients: mechanisms mediating bone osteolysis and osteoblastic metastatic lesions [J].
Akech, J. ;
Wixted, J. J. ;
Bedard, K. ;
van der Deen, M. ;
Hussain, S. ;
Guise, T. A. ;
van Wijnen, A. J. ;
Stein, J. L. ;
Languino, L. R. ;
Altieri, D. C. ;
Pratap, J. ;
Keller, E. ;
Stein, G. S. ;
Lian, J. B. .
ONCOGENE, 2010, 29 (06) :811-821
[6]   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
[7]  
BAGSHAW MA, 1992, ADV EXP MED BIOL, V324, P255
[8]   Platelet and osteoclast β3 integrins are critical for bone metastasis [J].
Bakewell, SJ ;
Nestor, P ;
Prasad, S ;
Tomasson, MH ;
Dowland, N ;
Mehrotra, M ;
Scarborough, R ;
Kanter, J ;
Abe, K ;
Phillips, D ;
Weilbaecher, KN .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (24) :14205-14210
[9]   Interaction of KAI1 on tumor cells with DARC on vascular endothelium leads to metastasis suppression [J].
Bandyopadhyay, Sucharita ;
Zhan, Rui ;
Chaudhuri, Asok ;
Watabe, Misako ;
Pai, Sudha K. ;
Hirota, Shigeru ;
Hosobe, Sadahiro ;
Tsukada, Taisei ;
Miura, Kunio ;
Takano, Yukio ;
Saito, Ken ;
Pauza, Mary E. ;
Hayashi, Sunao ;
Wang, Ying ;
Mohinta, Sonia ;
Mashimo, Tomoyuki ;
Iiizumi, Megumi ;
Furuta, Eiji ;
Watabe, Kounosuke .
NATURE MEDICINE, 2006, 12 (08) :933-938
[10]   Runx2 transcriptome of prostate cancer cells: insights into invasiveness and bone metastasis [J].
Baniwal, Sanjeev K. ;
Khalid, Omar ;
Gabet, Yankel ;
Shah, Ruchir R. ;
Purcell, Daniel J. ;
Mav, Deepak ;
Kohn-Gabet, Alice E. ;
Shi, Yunfan ;
Coetzee, Gerhard A. ;
Frenkel, Baruch .
MOLECULAR CANCER, 2010, 9