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Co-expression of Fas (APO-1, CD95)/Fas ligand by BeWo and NJG choriocarcinoma cell lines
G Rajashekhar1, A Loganath, A C Roy
1Department of Obstetrics and Gynecology, National University Hospital, National University of Singapore, Lower Kent Ridge Road, 119074, Singapore. abgannam@nus.edu.sg
Objective:
Fas (CD95) is a transmembrane protein of the tumor necrosis factor receptor superfamily that induces apoptosis in susceptible cells on crosslinking by its ligand (FasL). The Fas loss of function and concurrent expression of its ligand (FasL) have been associated with malignant phenotype. In this study, we sought to investigate the hitherto undescribed expression of Fas and FasL on the immortalized human choriocarcinoma cell lines BeWo and NJG.
Methods:
Receptor and ligand expression was demonstrated using specific antibodies and multiple techniques including immunocytochemistry, confocal immunofluorescence microscopy, flow cytometry, immunoblots, and reverse transcription polymerase chain reaction (RT-PCR).
Results:
Data from this study indicate that human choriocarcinoma cell subtypes co-express both Fas and FasL. A specific cytoplasmic and membranous pattern of immunoreactivity was noted that was further confirmed at mRNA transcripts by RT-PCR. In addition, we provide evidence using flow cytometry that the Fas receptors are downregulated. The mean fluorescence intensities for NJG and BeWo were 1.47 +/- 0.5 and 1.59 +/- 0.4, while that for Fas-positive Jurkat cells was 25.6 +/- 3.1.
Conclusions:
To our knowledge, this is the first report on the identification and constitutive co-expression of Fas and FasL in BeWo and NJG choriocarcinoma cells. Choriocarcinoma cells evade immune attack by downregulating the Fas receptor and by killing lymphocytes through expression of FasL. Taken together, our investigations suggest that the Fas/FasL system may represent a mechanism by which malignant trophoblasts become resistant to apoptosis, escape immune surveillance, and metastasize.
Insights
Human choriocarcinoma cells (BeWo and NJG) express both Fas and Fas ligand (FasL), downregulating Fas receptors. This Fas/FasL system may enable malignant trophoblasts to resist apoptosis and evade immune surveillance.
Area of Science:
- Cell Biology
- Immunology
- Cancer Research
Background:
- Fas (CD95) is a TNF receptor superfamily member inducing apoptosis.
- Loss of Fas function and Fas ligand (FasL) expression correlate with malignancy.
- The expression of Fas and FasL in choriocarcinoma cell lines was previously undescribed.
Purpose of the Study:
- To investigate the expression of Fas and FasL in immortalized human choriocarcinoma cell lines BeWo and NJG.
- To determine if these cells co-express both the receptor and its ligand.
- To explore the potential role of the Fas/FasL system in choriocarcinoma pathogenesis.
Main Methods:
- Immunocytochemistry and confocal immunofluorescence microscopy for protein localization.
- Flow cytometry to quantify receptor expression levels.
- Immunoblots and RT-PCR to confirm protein and mRNA expression.
Main Results:
- Human choriocarcinoma cell subtypes (BeWo and NJG) constitutively co-express Fas and FasL at both protein and mRNA levels.
- Fas receptor expression is significantly downregulated on choriocarcinoma cells compared to controls (mean fluorescence intensity 1.47-1.59 vs. 25.6).
- A distinct cytoplasmic and membranous pattern of Fas/FasL immunoreactivity was observed.
Conclusions:
- This is the first report identifying constitutive co-expression of Fas and FasL in BeWo and NJG choriocarcinoma cells.
- Choriocarcinoma cells may evade immune attack by downregulating Fas receptors and inducing lymphocyte apoptosis via FasL.
- The Fas/FasL system likely contributes to malignant trophoblast resistance to apoptosis, immune escape, and metastasis.
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