| Literature DB >> 36078139 |
Frederik Schlottmann1, Vesna Bucan1, Sarah Strauß1, Felix Koop1, Peter M Vogt1, Tobias R Mett1.
Abstract
Breast carcinoma is one of the most common malignant tumors in women. In cases of hormone-sensitive cells, tamoxifen as an anti-estrogenic substance is a first line medication in the adjuvant setting. The spectrum of autologous breast reconstructions ranges from fat infiltrations to complex microsurgical procedures. The influence of adipose-derived stem cells (ASC) on the tumor bed and a possibly increased recurrence rate as a result are critically discussed. In addition, there is currently no conclusive recommendation regarding tamoxifen-treated patients and autologous fat infiltrations. The aim of the present study was to investigate the effect of tamoxifen on the gene expression of a variety of genes involved in tumorigenesis, cell growth and transformation. Mammary epithelial cell line and mammary carcinoma cell lines were treated with tamoxifen in vitro as well as co-cultured with ASC. Gene expression was quantified by PCR arrays and showed increased expression in the mammary carcinoma cell lines with increasing time of treatment and concentration of tamoxifen. The data presented can be considered as an addition to the controversial discussion on the relationship between ASC and breast carcinoma cells. Further studies are needed to quantify the in vivo interaction of ASC and mammary carcinoma cells and to conclusively assess the impact of tamoxifen in reconstructive cases with fat grafting.Entities:
Keywords: ASC; PCR array; adipose derived stem cells; autologous fat grafting; breast cancer; breast reconstruction; mamma carcinoma; tamoxifen; tumorigenesis
Mesh:
Substances:
Year: 2022 PMID: 36078139 PMCID: PMC9454616 DOI: 10.3390/cells11172733
Source DB: PubMed Journal: Cells ISSN: 2073-4409 Impact factor: 7.666
Overview of the genes examined and their associated pathways using the Human Cancer PathwayFinder RT2 Profiler PCR Array (Qiagen, Venlo, Netherlands). Overall, 84 genes representative of 9 different biological pathways involved in tumorigenesis and transformation were examined. Biological pathways included angiogenesis, apoptosis, cell cycle, cellular senescence, DNA damage and repair, epithelial-to-mesenchymal transition, hypoxia signaling, metabolism and telomere maintenance.
| Function | Gene |
|---|---|
| Angiogenesis | Angiopoetin 1 (ANGPT1) |
| Apoptosis | Apoptotic peptidase activating factor 1 (APAF1) |
| Cell cycle | Aurora kinase A (AURKA) |
| Cellular Senescence | BMI1 polycomb ring finger oncogene (BMI1) |
| DNA Damage and Repair | Damage-specific DNA binding protein 2, 48kDa (DDB2) |
| Epithelial-to-Mesenchymal Transition | Cadherin 2, type 1, N-cadherin (neuronal) (CDH2) |
| Hypoxia Signaling | Adrenomedullin (ADM) |
| Metabolism | ATP citrate lyase (ACLY)Acyl-CoA synthetase long-chain family member 4 (ACSL4) |
| Telomeres and Telomerase | Dyskeratosis congenita 1, dyskerin (DKC1) |
Figure 1Gene expression of the examined genes of the PCR arrays of ASC, MCF-10A cells and corresponding co-cultures. (A) From left to right, ASC, MCF-10A cells and co-culture were each treated with 5 µg, 15 µg or 25 µM tamoxifen for 48 or 96 h. The color-coding (see Figure 2) indicates a relative increase (black) or reduction (red) in gene expression. The 84 genes studied and their associated pathways in tumorigenesis and transformation are listed in Table 1. (B) ASC of passage 2 after treatment with 25 µM tamoxifen after 96 h in culture. (C) MCF-10A cells of passage 29 after treatment with 25 µM tamoxifen after 96 h in culture. (D) Co-culture of ASC and MCF-10A cells after treatment with 25 µM tamoxifen after 96 h in culture.
Figure 2Legend of the color-coding of Figure 1, Figure 3 and Figure 4. Negative values (black color-coding) indicate a relative reduction of the Ct value and thus increased gene expression. Positive values (red color-coding) indicate a relative increase in Ct values and thus reduced gene expression.
Figure 3Gene expression of the examined genes of the PCR arrays of ASC, MCF-7 cells and corresponding co-cultures. (A) From left to right, ASC, MCF-7 cells and co-culture were each treated with 5 µg, 15 µg or 25 µM tamoxifen for 48 or 96 h. The color coding (see Figure 2) indicates a relative increase (black) or reduction (red) in gene expression. The 84 genes studied and their associated pathways in tumorigenesis and transformation are listed in Table 1. (B) ASC of passage 2 after treatment with 25 µM tamoxifen after 96 h in culture. (C) MCF-7 cells of passage 32 after treatment with 25 µM tamoxifen after 96 h in culture. (D) Co-culture of ASC and MCF-7 cells after treatment with 25 µM tamoxifen after 96 h in culture.
Figure 4Gene expression of the examined genes of the PCR arrays of ASC, BT-474 cells and corresponding co-cultures. (A) From left to right, ASC, BT-474 cells and co-culture were each treated with 5 µg, 15 µg or 25 µM tamoxifen for 48 or 96 h. The color coding (see Figure 2) indicates a relative increase (black) or reduction (red) in gene expression. The 84 genes studied and their associated pathways in tumorigenesis and transformation are listed in Table 1. (B) ASC of passage 2 after treatment with 25 µM tamoxifen after 96 h in culture. (C) BT-474 cells of passage 15 after treatment with 25 µM tamoxifen after 96 h in culture. (D) Co-culture of ASC and BT-474 cells after treatment with 25 µM tamoxifen after 96 h in culture.
Overview of the genes and their corresponding pathways that showed the strongest expression variation.
| Function | Gene |
|---|---|
| Angiogenesis |
|
| Apoptosis |
|
| Cell Cycle |
|
| Cellular Senescence |
|
| DNA Damage and Repair |
|
| Epithelial-to-Mesenchymal Transition |
|
| Hypoxia Signaling |
|
| Metabolism | −/− |
| Telomeres and Telomerase |
|
Figure 5Expression patterns of the 14 genes with the strongest variations. For an overview of the gene abbreviations, please refer to Table 1. A positive value indicates a higher Ct value and thus down-regulated gene expression. A negative value means earlier and thus increased gene expression. (A) Expression patterns of ASC, MCF-10A cells and co-cultures. (B) Expression patterns of ASC, MCF-7 cells and co-cultures. (C) Expression patterns of ASC, BT-474 cells and co-cultures.