Yin Yang 1 is associated with cancer stem cell transcription factors (SOX2, OCT4, BMI1) and clinical implication

被引:121
作者
Kaufhold, Samantha [4 ]
Garban, Hermes [1 ,2 ,3 ]
Bonavida, Benjamin [4 ]
机构
[1] Univ Calif Los Angeles, NantBioScience Inc, Los Angeles, CA 90095 USA
[2] Univ Calif Los Angeles, NantWorks LLC, Los Angeles, CA 90095 USA
[3] Univ Calif Los Angeles, Calif NanoSyst Inst CnSI, Los Angeles, CA 90095 USA
[4] Univ Calif Los Angeles, David Geffen Sch Med, Dept Microbiol Immunol & Mol Genet, Los Angeles, CA 90095 USA
关键词
BMI1; Cancer stem cells; NANOG; OCT4; SOX2; Yin Yang 1; REGULATES SELF-RENEWAL; EPITHELIAL-MESENCHYMAL TRANSITION; PROSTATE-CANCER; BREAST-CANCER; INITIATING CELLS; LUNG-CANCER; SIGNALING PATHWAY; CARCINOMA-CELLS; GENE-EXPRESSION; FACTOR YY1;
D O I
10.1186/s13046-016-0359-2
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The transcription factor Yin Yang 1 (YY1) is frequently overexpressed in cancerous tissues compared to normal tissues and has regulatory roles in cell proliferation, cell viability, epithelial-mesenchymal transition, metastasis and drug/immune resistance. YY1 shares many properties with cancer stem cells (CSCs) that drive tumorigenesis, metastasis and drug resistance and are regulated by overexpression of certain transcription factors, including SOX2, OCT4 (POU5F1), BMI1 and NANOG. Based on these similarities, it was expected that YY1 expression would be associated with SOX2, OCT4, BMI1, and NANOG's expressions and activities. Data mining from the proteomic tissue-based datasets from the Human Protein Atlas were used for protein expression patterns of YY1 and the four CSC markers in 17 types of cancer, including both solid and hematological malignancies. A close association was revealed between the frequency of expressions of YY1 and SOX2 as well as SOX2 and OCT4 in all cancers analyzed. Two types of dynamics were identified based on the nature of their association, namely, inverse or direct, between YY1 and SOX2. These two dynamics define distinctive patterns of BMI1 and OCT4 expressions. The relationship between YY1 and SOX2 expressions as well as the expressions of BMI1 and OCT4 resulted in the classification of four groups of cancers with distinct molecular signatures: 1) Prostate, lung, cervical, endometrial, ovarian and glioma cancers (YY1(lo)SOX2(hi)BMI1(hi)OCT4(hi)) 2) Skin, testis and breast cancers (YY1(hi)SOX2(lo)BMI1(hi)OCT4(hi)) 3) Liver, stomach, renal, pancreatic and urothelial cancers (YY1(lo)SOX2(lo)BMI1(hi)OCT4(hi)) and 4) Colorectal cancer, lymphoma and melanoma (YY1(hi)SOX2(hi)BMI1(lo)OCT4(hi)). A regulatory loop is proposed consisting of the cross-talk between the NF-kB/PI3K/AKT pathways and the downstream inter-regulation of target gene products YY1, OCT4, SOX2 and BMI1.
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页数:14
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共 134 条
[1]   Gene amplification in cancer [J].
Albertson, Donna G. .
TRENDS IN GENETICS, 2006, 22 (08) :447-455
[2]   Genetic and Epigenetic Modifications of Sox2 Contribute to the Invasive Phenotype of Malignant Gliomas [J].
Alonso, Marta M. ;
Diez-Valle, Ricardo ;
Manterola, Lorea ;
Rubio, Angel ;
Liu, Dan ;
Cortes-Santiago, Nahir ;
Urquiza, Leire ;
Jauregi, Patricia ;
Lopez de Munain, Adolfo ;
Sampron, Nicolas ;
Aramburu, Ander ;
Tejada-Solis, Sonia ;
Vicente, Carmen ;
Odero, Maria D. ;
Bandres, Eva ;
Garcia-Foncillas, Jesus ;
Idoate, Miguel A. ;
Lang, Frederick F. ;
Fueyo, Juan ;
Gomez-Manzano, Candelaria .
PLOS ONE, 2011, 6 (11)
[3]   Modulation of the activity of multiple transcriptional activation domains by the DNA binding domains mediates the synergistic action of Sox2 and Oct-3 on the Fibroblast growth factor-4 enhancer [J].
Ambrosetti, DC ;
Schöler, HR ;
Dailey, L ;
Basilico, C .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (30) :23387-23397
[4]  
Annovazzi L, 2011, CANCER GENOM PROTEOM, V8, P139
[5]   SOX2 is an amplified lineage-survival oncogene in lung and esophageal squamous cell carcinomas [J].
Bass, Adam J. ;
Watanabe, Hideo ;
Mermel, Craig H. ;
Yu, Soyoung ;
Perner, Sven ;
Verhaak, Roel G. ;
Kim, So Young ;
Wardwell, Leslie ;
Tamayo, Pablo ;
Gat-Viks, Irit ;
Ramos, Alex H. ;
Woo, Michele S. ;
Weir, Barbara A. ;
Getz, Gad ;
Beroukhim, Rameen ;
O'Kelly, Michael ;
Dutt, Amit ;
Rozenblatt-Rosen, Orit ;
Dziunycz, Piotr ;
Komisarof, Justin ;
Chirieac, Lucian R. ;
LaFargue, Christopher J. ;
Scheble, Veit ;
Wilbertz, Theresia ;
Ma, Changqing ;
Rao, Shilpa ;
Nakagawa, Hiroshi ;
Stairs, Douglas B. ;
Lin, Lin ;
Giordano, Thomas J. ;
Wagner, Patrick ;
Minna, John D. ;
Gazdar, Adi F. ;
Zhu, Chang Qi ;
Brose, Marcia S. ;
Cecconello, Ivan ;
Ribeiro, Ulysses, Jr. ;
Marie, Suely K. ;
Dahl, Olav ;
Shivdasani, Ramesh A. ;
Tsao, Ming-Sound ;
Rubin, Mark A. ;
Wong, Kwok K. ;
Regev, Aviv ;
Hahn, William C. ;
Beer, David G. ;
Rustgi, Anil K. ;
Meyerson, Matthew .
NATURE GENETICS, 2009, 41 (11) :1238-U105
[6]   Prognostic significance of YY1 protein expression and mRNA levels by bioinformatics analysis in human cancers: A therapeutic target [J].
Bonavida, Benjamin ;
Kaufhold, Samantha .
PHARMACOLOGY & THERAPEUTICS, 2015, 150 :149-168
[7]   Eleven daughters of NANOG [J].
Booth, HAF ;
Holland, PWH .
GENOMICS, 2004, 84 (02) :229-238
[8]   Stem cell marker (Nanog) and Stat-3 signaling promote MicroRNA-21 expression and chemoresistance in hyaluronan/CD44-activated head and neck squamous cell carcinoma cells [J].
Bourguignon, L. Y. W. ;
Earle, C. ;
Wong, G. ;
Spevak, C. C. ;
Krueger, K. .
ONCOGENE, 2012, 31 (02) :149-160
[9]   Novel STAT3 Target Genes Exert Distinct Roles in the Inhibition of Mesoderm and Endoderm Differentiation in Cooperation with Nanog [J].
Bourillot, Pierre-Yves ;
Aksoy, Irene ;
Schreiber, Valerie ;
Wianny, Florence ;
Schulz, Herbert ;
Hummel, Oliver ;
Hubner, Norbert ;
Savatier, Pierre .
STEM CELLS, 2009, 27 (08) :1760-1771
[10]   Core transcriptional regulatory circuitry in human embryonic stem cells [J].
Boyer, LA ;
Lee, TI ;
Cole, MF ;
Johnstone, SE ;
Levine, SS ;
Zucker, JR ;
Guenther, MG ;
Kumar, RM ;
Murray, HL ;
Jenner, RG ;
Gifford, DK ;
Melton, DA ;
Jaenisch, R ;
Young, RA .
CELL, 2005, 122 (06) :947-956