Involvement of breast cancer stem cells in tumor angiogenesis

被引:12
作者
Wang, Yu [1 ]
Li, Chen [1 ]
Li, Yuqiang [1 ]
Zhu, Zhitu [2 ]
机构
[1] Jinzhou Med Univ, Affiliated Hosp 1, Biobank, Jinzhou 121000, Liaoning, Peoples R China
[2] Jinzhou Med Univ, Affiliated Hosp 1, Dept Oncol, 2 Peoples St, Jinzhou 121000, Liaoning, Peoples R China
关键词
breast cancer; breast cancer stem cells; angiogenesis; endothelial cells; tumor stem cells; METASTASIS; CHEMOTHERAPY; INHIBITION; ACTIVATION; PHENOTYPE; GROWTH;
D O I
10.3892/ol.2017.7238
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The aim of the present study was to investigate the role of breast cancer stem cells (BCSCs) in the angiogenesis of breast cancer tumors. The expression levels of mutant p53, cluster of differentiation (CD)31, vascular endothelial factor (VEGF), in addition to human epidermal growth factor (HER)2, were detected in the blood vessels of human breast cancer (BC) tissue samples. CD44(+)/CD24(-/low) cells were selected from single-cell suspensions of BC tissues to assess the expression of CD31 and CD105, in addition to the ability of these cells to metabolize acetylated low-density lipoprotein (Ac-LDL). Furthermore, vascular-like structures were observed histologically. Mutant p53, CD31 and VEGF were all expressed in these tissues. CD44(+) cells comprised 7.5 +/- 2.6 and 94.3 +/- 4.7% of the cell population prior to and following sorting, respectively. CD24(+) cells comprised 48.2 +/- 9.4 and 4.3 +/- 4% of the cell population prior to and following sorting, respectively. A low proportion of CD24(+) cells corresponded to a high proportion of CD24(-/low) cells. The percentages of CD105(+) and CD31(+) glomus cells in the mammary gland were 4.5 +/- 0.9 and 6.2 +/- 1.3%, respectively, and following passaging for three generations, these increased to 79.6 +/- 9.3 and 84.1 +/- 10.7%, respectively (P < 0.05). Cells were cultured using an endothelial cell culture system, and they internalized DiL-Ac-LDL. Here, vascular endothelial cells formed vascular-like structures, whereas the control group demonstrated no such structures. Overall, the results suggest that BCSCs-derived endothelial cells may contribute to tumor angiogenesis.
引用
收藏
页码:8150 / 8155
页数:6
相关论文
共 30 条
[1]   Granzyme B-based cytolytic fusion protein targeting EpCAM specifically kills triple negative breast cancer cells in vitro and inhibits tumor growth in a subcutaneous mouse tumor model [J].
Amoury, Manal ;
Kolberg, Katharina ;
Anh-Tuan Pham ;
Hristodorov, Dmitrij ;
Mladenov, Radoslav ;
Di Fiore, Stefano ;
Helfrich, Wijnand ;
Kiessling, Fabian ;
Fischer, Rainer ;
Pardo, Alessa ;
Thepen, Theophilus ;
Hussain, Ahmad F. ;
Nachreiner, Thomas ;
Barth, Stefan .
CANCER LETTERS, 2016, 372 (02) :201-209
[2]  
Botelho Monica C, 2016, Int J Immunother Cancer Res, V2, P1
[3]   Establishment of prostate cancer spheres from a prostate cancer cell line after phenethyl isothiocyanate treatment and discovery of androgen-dependent reversible differentiation between sphere and neuroendocrine cells [J].
Chen, Yamei ;
Cang, Shundong ;
Han, Liying ;
Liu, Christina ;
Yang, Patrick ;
Solangi, Zeeshan ;
Lu, Quanyi ;
Liu, Delong ;
Chiao, J. W. .
ONCOTARGET, 2016, 7 (18) :26567-26579
[4]   GPER Mediates Activation of HIF1α/VEGF Signaling by Estrogens [J].
De Francesco, Ernestina Marianna ;
Pellegrino, Michele ;
Santolla, Maria Francesca ;
Lappano, Rosamaria ;
Ricchio, Emilia ;
Abonante, Sergio ;
Maggiolini, Marcello .
CANCER RESEARCH, 2014, 74 (15) :4053-4064
[5]   Breast Cancer Stem Cells: A Novel Therapeutic Target [J].
Gangopadhyay, Sudeshna ;
Nandy, Argha ;
Hor, Pooja ;
Mukhopadhyay, Ashis .
CLINICAL BREAST CANCER, 2013, 13 (01) :7-15
[6]   Ramucirumab, another anti-angiogenic agent for metastatic colorectal cancer in second-line setting-its impact on clinical practice [J].
Goel, Gaurav ;
Sun, Weijing .
JOURNAL OF HEMATOLOGY & ONCOLOGY, 2015, 8
[7]   MCT1 Modulates Cancer Cell Pyruvate Export and Growth of Tumors that Co-express MCT1 and MCT4 [J].
Hong, Candice Sun ;
Graham, Nicholas A. ;
Gu, Wen ;
Camacho, Carolina Espindola ;
Mah, Vei ;
Maresh, Erin L. ;
Alavi, Mohammed ;
Bagryanova, Lora ;
Krotee, Pascal A. L. ;
Gardner, Brian K. ;
Behbahan, Iman Saramipoor ;
Horvath, Steve ;
Chia, David ;
Mellinghoff, Ingo K. ;
Hurvitz, Sara A. ;
Dubinett, Steven M. ;
Critchlow, Susan E. ;
Kurdistani, Siavash K. ;
Goodglick, Lee ;
Braas, Daniel ;
Graeber, Thomas G. ;
Christofk, Heather R. .
CELL REPORTS, 2016, 14 (07) :1590-1601
[8]   Causal Network Models for Predicting Compound Targets and Driving Pathways in Cancer [J].
Jaeger, Savina ;
Min, Junxia ;
Nigsch, Florian ;
Camargo, Miguel ;
Hutz, Janna ;
Cornett, Allen ;
Cleaver, Stephen ;
Buckler, Alan ;
Jenkins, Jeremy L. .
JOURNAL OF BIOMOLECULAR SCREENING, 2014, 19 (05) :791-802
[9]   Multimodal iron oxide (Fe3O4)-saturated lactoferrin nanocapsules as nanotheranostics for real-time imaging and breast cancer therapy of claudin-low, triple-negative (ER-/PR-/HER2-) [J].
Kanwar, Jagat R. ;
Kamalapuram, Sishir K. ;
Krishnakumar, Subramanian ;
Kanwar, Rupinder K. .
NANOMEDICINE, 2016, 11 (03) :249-268
[10]   Does primary neoadjuvant systemic therapy eradicate minimal residual disease? Analysis of disseminated and circulating tumor cells before and after therapy [J].
Kasimir-Bauer, Sabine ;
Bittner, Ann-Kathrin ;
Koenig, Lisa ;
Reiter, Katharina ;
Keller, Thomas ;
Kimmig, Rainer ;
Hoffmann, Oliver .
BREAST CANCER RESEARCH, 2016, 18