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Expression of the Pluripotency Transcription Factor OCT4 in the Normal and Aberrant Mammary Gland

Overview
Journal Front Oncol
Specialty Oncology
Date 2013 Apr 19
PMID 23596564
Citations 17
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Abstract

Breast cancers with lactating features, some of which are associated with pregnancy and lactation, are often poorly differentiated, lack estrogen receptor, progesterone receptor, and HER2 expression and have high mortality. Very little is known about the molecular mechanisms that drive uncontrolled cell proliferation in these tumors and confer lactating features. We have recently reported expression of OCT4 and associated embryonic stem cell self-renewal genes in the normal lactating breast and breastmilk stem cells (hBSCs). This prompted us to examine OCT4 expression in breast cancers with lactating features and compare it with that observed during normal lactation, using rare specimens of human lactating breast. In accordance with previous literature, the normal resting breast (from non-pregnant, non-lactating women) showed minimal OCT4 nuclear expression (0.9%). However, this increased in the normal lactating breast (11.4%), with further increase in lactating adenomas, lactating carcinomas, and pregnancy-associated breast cancer (30.7-48.3%). OCT4 was expressed in the epithelium and at lower levels in the stroma, and was co-localized with NANOG. Comparison of normal non-tumorigenic hBSCs with OCT4-overexpressing tumorigenic breast cell lines (OTBCs) demonstrated upregulation of OCT4, SOX2, and NANOG in both systems, but OTBCs expressed OCT4 at significantly higher levels than SOX2 and NANOG. Similar to hBSCs, OTBCs displayed multi-lineage differentiation potential, including the ability to differentiate into functional lactocytes synthesizing milk proteins both in vitro and in vivo. Based on these findings, we propose a hypothesis of normal and malignant transformation in the breast, which centers on OCT4 and its associated gene network. Although minimal expression of these embryonic genes can be seen in the breast in its resting state throughout life, a controlled program of upregulation of this gene network may be a potential regulator of the normal remodeling of the breast toward a milk-secretory organ during pregnancy and lactation. Deregulation of this gene network either within or outside pregnancy and lactation may lead to aberrant breast cell proliferation and malignant transformation, suggesting a role of these genes in both normal lactation and breast oncogenesis.

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References
1.
Barnes D, Newman L . Pregnancy-associated breast cancer: a literature review. Surg Clin North Am. 2007; 87(2):417-30, x. DOI: 10.1016/j.suc.2007.01.008. View

2.
Beltran A, Rivenbark A, Richardson B, Yuan X, Quian H, Hunt J . Generation of tumor-initiating cells by exogenous delivery of OCT4 transcription factor. Breast Cancer Res. 2011; 13(5):R94. PMC: 3262206. DOI: 10.1186/bcr3019. View

3.
Lensch M, Schlaeger T, Zon L, Daley G . Teratoma formation assays with human embryonic stem cells: a rationale for one type of human-animal chimera. Cell Stem Cell. 2008; 1(3):253-8. DOI: 10.1016/j.stem.2007.07.019. View

4.
Liu C, Lu Y, Wang B, Zhang Y, Zhang R, Lu Y . Clinical implications of stem cell gene Oct-4 expression in breast cancer. Ann Surg. 2011; 253(6):1165-71. DOI: 10.1097/SLA.0b013e318214c54e. View

5.
Boyer L, Lee T, Cole M, Johnstone S, Levine S, Zucker J . Core transcriptional regulatory circuitry in human embryonic stem cells. Cell. 2005; 122(6):947-56. PMC: 3006442. DOI: 10.1016/j.cell.2005.08.020. View