| Literature DB >> 31963450 |
Leticia Oliveira-Ferrer1, Karin Milde-Langosch1, Kathrin Eylmann1, Maila Rossberg1, Volkmar Müller1, Barbara Schmalfeldt1, Isabell Witzel1, Jasmin Wellbrock2, Walter Fiedler2.
Abstract
During the last few years, diverse studies have shown that tumors can actively interact with the lymphatic system and promote metastases development. In order to examine the molecular mechanisms involved in this interaction, we co-cultured tumor and lymphatic endothelial cells (LEC) and subsequently analyzed the molecular alterations of LECs. Therefore, LECs were co-cultivated with either a highly or weakly metastatic breast cancer cell line using contact (mixture) and non-contact (transwell) co-cultures. mRNA profiles from LECs were subsequently analyzed for genes specifically induced by highly metastatic tumor cells ("metastatic specific"). Among the up-regulated "metastatic specific" genes, we found candidates involved in cell cycle, cell adhesion and motility (BST2, E-selectin, and HMMR), cytokines (CCL7, CXCL6, CXCL1, and CSF2) and factors of the complement system (C1R, C3, and CFB). Among the down-regulated genes, we detected the hyaluronan receptor STAB2, angiogenic factor apelin receptor (APLNR), and the glycosylation enzyme MAN1A1. In an additional prostate cancer co-culture model, we could confirm a "metastatic specific" upregulation of E-selectin and CCL7 in LECs after interaction with the prostate cancer cell lines LNCAP (highly metastatic) and DU145 (weakly metastatic). These data allowed us to identify a set of genes regulated in LECs during in vitro communication with cancer cells, which might subsequently facilitate lymphatic metastasis.Entities:
Keywords: breast cancer; co-culture; lymphatic endothelial cells; lymphatic metastasis; prostate cancer
Year: 2020 PMID: 31963450 PMCID: PMC7013901 DOI: 10.3390/ijms21020602
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Principle of co-culture experiments. (a) Human dermal lymphatic endothelial cells (Lymphatic Endothelial Cells (LECs); green) and breast cancer cell lines MCF7 or MDA-MB231 (red) were co-cultured in a 1:1 ratio for 48 h and the morphology and association pattern was observed; (b) Schematic representation of mixed co-culture systems and subsequent cell sorting for further molecular characterization; (c) Schematic representation of no-contact co-cultures using a transwell system.
Validation of selected “metastatic specific” genes, deregulated in LECsMDA-MB-231 versus LECsMCF7 after 48 h.
| LECs Co-Cultivated with MDA-MB-231 vs. MCF7 | |||||
|---|---|---|---|---|---|
| Gene Symbol | Gene Description | MIXTURE | TRANSWELL | ||
| Fold Change | Fold Change | ||||
| Adhesion and Motility | MICROARRAY | Validation qRT-PCR | Validation WB/FACS | qRT-PCR | |
| BST2 | bone marrow stromal cell antigen 2 | 2.86 | 7.33 | FACS | −1.05 |
| SELE | selectin E | 4.10 | 9.58 | FACS | −1.43 |
| HMMR | hyaluronan-mediated motility receptor (RHAMM) | 2.63 | 6.89 | WB | −1.30 |
|
| |||||
| CCL7 | chemokine (C-C motif) ligand 7 | 21.50 | 127.56 | −1.04 | |
| CXCL1 | chemokine (C-X-C motif) ligand 1 (melanoma growth stimulating activity, alpha) | 5.79 | 24.50 | 3.62 | |
| CXCL6 | chemokine (C-X-C motif) ligand 6 (granulocyte chemotactic protein 2) | 15.04 | 54.57 | 8.63 | |
| CSF2 | colony stimulating factor 2 (granulocyte-macrophage) | 3.55 | 177.29 | 3.25 | |
|
| |||||
| C1R | complement component 1, r subcomponent | 5.44 | 26.48 | 9.88 | |
| C3 | complement component 3 | 11.82 | 46.50 | 7.57 | |
| CFB | complement factor B | 6.22 | 36.55 | 10.79 | |
LECsMDA-MB-231: LECs co-cultured with cell line MDA-MB-231; LECsMCF7: LECs co-cultures with cell line MCF7; WB = western blot; FACS = fluorescence activated cell sorting.
Figure 2Protein expression level of E-selectin, BST2, and HMMR in LECs after different culture conditions. (a) E-selectin and BST2 expression, measured by flow cytometry, is strongly increased in LECs after co-culture (mixture) with MDA-MB231 cells in comparison to LECs co-cultured with MCF7 cells or LECs in mono-culture; (b) Increased expression of HMMR was detected using Western blot in LECsMB-MDA231 versus LECsMCF7; (c) Increased E-selectin expression was measured by flow cytometry in LECs after co-culture (mixture as well as transwell) with LNCAP cells in comparison to LECs co-cultured with DU145 cells or LECs in mono-culture; (d) CCL7 levels were measured by ELISA in the supernatant of mono- and co-culture systems. Increased amount of CCL7 was detected in co-cultures of LECs/MDA-MB231 and LECs/LNCAP in comparison to monocultures or the LECs/MCF7 and LECs/DU145 systems. BST2 and E-selectin were analyzed using flow cytometry directly on co-cultures without previous cell sorting by double staining with cell tracker. For HMMR, Western blot analyses were performed with co-cultured LECs after cell sorting, as previously described.
Fold change expression of selected genes in LECsLNCAP compared to LECsDU145 after 48 h.
| MIXTURE | TRANSWELL | |||
|---|---|---|---|---|
| Gene Symbol | LECLNCAP vs. LECDU145 | LECLNCAP vs. LECØ | LECDU145 vs. LECØ | LECLNCAP vs. LECDU145 |
| SELE | 36.89 | 53.82 | 1.46 | 8.72 |
| BST2 | −38.30 | 2.24 | 85.92 | 1.26 |
| HMMR | 1.14 | −4.02 | −4.60 | −1.16 |
| CCL7 | >100 | 93.05 | −1.80 | 4.76 |
| CXCL6 | >100 | 78.52 | −14.30 | 74.29 |
| CSF2 | 27.00 | 11.31 | −2.40 | 13.50 |
| C1R | 4.16 | 98.02 | 23.59 | 5.11 |
| CFB | −13.20 | 1.39 | 18.38 | −6.15 |
| C3 | 33.47 | 82.71 | 2.47 | 10.52 |
LECsLNCAP: LECs co-cultured with cell line LNCAP; LECsDU145: LECs co-cultures with cell line DU145; LECsØ: LECs in monoculture.