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Updated: Jun 2, 2026

Hemogenic Reprogramming of Human Fibroblasts by Enforced Expression of Transcription Factors
Published on: November 4, 2019
SV40-transformation of embryonic human diploid fibroblasts results in multiple molecular changes
E Kolettas1, D Spandidos, R Rosenberger
1UNIV CRETE,SCH MED,IRAKLION,CRETE,GREECE. NATL INST BIOL STAND & CONTROLS,MOL STRUCT LAB,S MIMMS EN6 3QG,HERTS,ENGLAND.
Abstract:
Attempts were made to identify the cellular and molecular changes associated with SV40-transformation of human fibroblasts, MRC-5. SV40-transformed human fibroblasts, MRC-5V1, displayed a polygonal to round morphology, grew slowly, had reduced plating efficiencies but high saturation densities. However, they could be propagated in low serum-containing medium and grew very efficiently in soft agar. These altered growth properties of MRC-5V1 suggested that SV40 induced changes in cell adhesion and growth factor requirements. Indeed, MRC-5V1 expressed markedly reduced levels of cellular fibronectin, high levels of tPA and the expression of procollagen alpha 2(I) and decorin were absent. Moreover, MRC-5V1 did not express HGF/SF, a paracrine effector of epithelial cells and expressed very low levels of EGF receptor. However, SV40 induced the expression of TGF alpha, one of the ligands of the EGF receptor, TGF beta 1 and TGF beta 2, all of which are associated with cellular transformation. Given the establishment of autocrine loops in MRC-5V1 and the fact that decorin interacts with fibronectin and collagens and negatively regulates the activity of TGF beta s, these changes could account for the altered growth and transformation properties of MRC-5V1. Several studies have provided a link between oncogenic transformation, transcriptional and translational control. SV40 markedly reduced the expression of junB but not c-jun in MRC-5V1 and the expression of EIF-4E and EF1 delta were not significantly affected. The data shows that SV40-transformation of human fibroblasts is associated with multiple genetic changes affecting the expression of genes involved in cell adhesion, signal transduction and transcription, hence suggesting the breakdown of several cellular control mechanisms.
Insights
Simian virus 40 (SV40) transformation of human fibroblasts alters cell adhesion and growth factor signaling. This leads to genetic changes impacting cell control mechanisms, contributing to oncogenic transformation.
Area of Science:
- Cell Biology
- Molecular Biology
- Oncology
Background:
- Simian virus 40 (SV40) is a DNA tumor virus known to induce cellular transformation.
- Human fibroblasts (MRC-5) are a common model system for studying cellular changes.
- Understanding SV40-induced alterations is crucial for cancer research.
Purpose of the Study:
- To identify cellular and molecular changes in human fibroblasts (MRC-5) upon SV40 transformation.
- To investigate the impact of SV40 on cell adhesion, growth factor signaling, and gene expression.
- To elucidate the mechanisms underlying SV40-mediated oncogenic transformation.
Main Methods:
- SV40-transformation of MRC-5 human fibroblasts to create MRC-5V1 cell line.
- Analysis of cell morphology, growth properties (plating efficiency, saturation density, soft agar colony formation).
- Assessment of gene expression for fibronectin, tPA, procollagen, decorin, HGF/SF, EGF receptor, TGF-α, TGF-β1, TGF-β2, junB, c-jun, EIF-4E, and EF1δ.
Main Results:
- SV40-transformed MRC-5V1 cells exhibited altered morphology and growth characteristics, including reduced plating efficiency and enhanced soft agar growth.
- Key molecular changes included reduced fibronectin, increased tPA, absent procollagen and decorin expression, and altered expression of growth factors (TGF-α, TGF-β1, TGF-β2) and their receptors.
- SV40 transformation significantly reduced junB expression, indicating transcriptional control alterations.
Conclusions:
- SV40-transformation induces significant cellular and molecular alterations in human fibroblasts.
- These changes involve cell adhesion, growth factor signaling pathways, and transcriptional regulation.
- The data suggests a breakdown of cellular control mechanisms contributing to the transformed phenotype.
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