Immune targeting of cancer stem cells in gastrointestinal oncology

被引:12
作者
Canter, Robert J. [1 ]
Grossenbacher, Steven K. [2 ]
Ames, Erik [2 ]
Murphy, William J. [2 ,3 ]
机构
[1] Univ Calif Davis, Sch Med, Dept Surg, Div Surg Oncol, Sacramento, CA 95817 USA
[2] Univ Calif Davis, Sch Med, Dept Dermatol, Lab Canc Immunol, Sacramento, CA 95817 USA
[3] Univ Calif Davis, Sch Med, Dept Dermatol, Sacramento, CA 95817 USA
关键词
Cancer stem cells (CSCs); aldehyde dehydrogenase (ALDH); CD24; CD44; CD133; immunotherapy; T cells; natural killer (NK) cells; vaccines; EpCAM;
D O I
10.3978/j.issn.2078-6891.2015.066
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The cancer stem cell (CSC) hypothesis postulates that a sub-population of quiescent cells exist within tumors which are resistant to conventional cytotoxic/anti-proliferative therapies. It is these CSCs which then seed tumor relapse, even in cases of apparent complete response to systemic therapy. Therefore, therapies, such as immunotherapy, which add a specific anti-CSC strategy to standard cytoreductive treatments may provide a promising new direction for future cancer therapies. CSCs are an attractive target for immune therapies since, unlike chemotherapy or radiotherapy, immune effector cells do not specifically require target cells to be proliferating in order to effectively kill them. Although recent advances have been made in the development of novel systemic and targeted therapies for advanced gastro-intestinal (GI) malignancies, there remains an unmet need for durable new therapies for these refractory malignancies. Novel immunotherapeutic strategies targeting CSCs are in pre-clinical and clinical development across the spectrum of the immune system, including strategies utilizing adaptive immune cell-based effectors, innate immune effectors, as well as vaccine approaches. Lastly, since important CSC functions are affected by the tumor microenvironment, targeting of both cellular (myeloid derived suppressor cells and tumor-associated macrophages) and sub-cellular (cytokines, chemokines, and PD1/PDL1) components of the tumor microenvironment is under investigation in the immune targeting of CSCs. These efforts are adding to the significant optimism about the potential utility of immunotherapy to overcome cancer resistance mechanisms and cure greater numbers of patients with advanced malignancy.
引用
收藏
页码:S1 / S10
页数:10
相关论文
共 83 条
[1]   Pancreatic cancer Hurdles in the engineering of CAR-based immunotherapies [J].
Abate-Daga, Daniel ;
Rosenberg, Steven A. ;
Morgan, Richard A. .
ONCOIMMUNOLOGY, 2014, 3 (06)
[2]   Advantages and clinical applications of natural killer cells in cancer immunotherapy [J].
Ames, Erik ;
Murphy, William J. .
CANCER IMMUNOLOGY IMMUNOTHERAPY, 2014, 63 (01) :21-28
[3]   High ALDH Activity Identifies Chemotherapy-Resistant Ewing's Sarcoma Stem Cells That Retain Sensitivity to EWS-FLI1 Inhibition [J].
Awad, Ola ;
Yustein, Jason T. ;
Shah, Preeti ;
Gul, Naheed ;
Katuri, Varalakshmi ;
O'Neill, Alison ;
Kong, Yali ;
Brown, Milton L. ;
Toretsky, Jeffrey A. ;
Loeb, David M. .
PLOS ONE, 2010, 5 (11)
[4]   Glioma stem cells promote radioresistance by preferential activation of the DNA damage response [J].
Bao, Shideng ;
Wu, Qiulian ;
McLendon, Roger E. ;
Hao, Yueling ;
Shi, Qing ;
Hjelmeland, Anita B. ;
Dewhirst, Mark W. ;
Bigner, Darell D. ;
Rich, Jeremy N. .
NATURE, 2006, 444 (7120) :756-760
[5]   Multiple chimeric antigen receptors successfully target chondroitin sulfate proteoglycan 4 in several different cancer histologies and cancer stem cells [J].
Beard, Rachel E. ;
Zheng, Zhili ;
Lagisetty, Kiran H. ;
Burns, William R. ;
Tran, Eric ;
Hewitt, Stephen M. ;
Abate-Daga, Daniel ;
Rosati, Shannon F. ;
Fine, Howard A. ;
Ferrone, Soldano ;
Rosenberg, Steven A. ;
Morgan, Richard A. .
JOURNAL FOR IMMUNOTHERAPY OF CANCER, 2014, 2
[6]   CD24-/low stem-like breast cancer marker defines the radiation-resistant cells involved in memorization and transmission of radiation-induced genomic instability [J].
Bensimon, J. ;
Altmeyer-Morel, S. ;
Benjelloun, H. ;
Chevillard, S. ;
Lebeau, J. .
ONCOGENE, 2013, 32 (02) :251-258
[7]   Acquired resistance to TKIs in solid tumours: learning from lung cancer [J].
Camidge, D. Ross ;
Pao, William ;
Sequist, Lecia V. .
NATURE REVIEWS CLINICAL ONCOLOGY, 2014, 11 (08) :473-481
[8]   ALDH1-Positive Cancer Stem Cells Predict Engraftment of Primary Breast Tumors and Are Governed by a Common Stem Cell Program [J].
Charafe-Jauffret, Emmanuelle ;
Ginestier, Christophe ;
Bertucci, Francois ;
Cabaud, Olivier ;
Wicinski, Julien ;
Finetti, Pascal ;
Josselin, Emmanuelle ;
Adelaide, Jose ;
Tien-Tuan Nguyen ;
Monville, Florence ;
Jacquemier, Jocelyne ;
Thomassin-Piana, Jeanne ;
Pinna, Guillaume ;
Jalaguier, Aurelie ;
Lambaudie, Eric ;
Houvenaeghel, Gilles ;
Xerri, Luc ;
Harel-Bellan, Annick ;
Chaffanet, Max ;
Viens, Patrice ;
Birnbaum, Daniel .
CANCER RESEARCH, 2013, 73 (24) :7290-7300
[9]   Aldehyde Dehydrogenase 1-Positive Cancer Stem Cells Mediate Metastasis and Poor Clinical Outcome in Inflammatory Breast Cancer [J].
Charafe-Jauffret, Emmanuelle ;
Ginestier, Christophe ;
Iovino, Flora ;
Tarpin, Carole ;
Diebel, Mark ;
Esterni, Benjamin ;
Houvenaeghel, Gilles ;
Extra, Jean-Marc ;
Bertucci, Francois ;
Jacquemier, Jocelyne ;
Xerri, Luc ;
Dontu, Gabriela ;
Stassi, Giorgio ;
Xiao, Yi ;
Barsky, Sanford H. ;
Birnbaum, Daniel ;
Viens, Patrice ;
Wicha, Max S. .
CLINICAL CANCER RESEARCH, 2010, 16 (01) :45-55
[10]   A restricted cell population propagates glioblastoma growth after chemotherapy [J].
Chen, Jian ;
Li, Yanjiao ;
Yu, Tzong-Shiue ;
McKay, Renee M. ;
Burns, Dennis K. ;
Kernie, Steven G. ;
Parada, Luis F. .
NATURE, 2012, 488 (7412) :522-+