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Published on: May 14, 2016
DNA strand breaks and cell cycle perturbation in herceptin treated breast cancer cell lines
S Mayfield1, J P Vaughn, T E Kute
1Wake Forest University Cancer Center, Winston-Salem, NC 27157-1072, USA.
Background:
Herceptin is a humanized antibody that binds to the product of the HER-2 oncogene. Clinical studies have indicated that treatment with Herceptin may slow disease progression in tumors expressing high levels of the HER-2 antigen. However, the mechanism of this action is not known.
Methods:
Four different cell lines were used that had different levels of HER-2 expression. Treated and nontreated cells were analyzed for DNA strand breaks and cell cycle perturbation using standard flow cytometry methods.
Results:
In this study we found that cell lines expressing high levels of HER-2, when treated with Herceptin, exhibited marked increases in DNA strand breaks as measured by the TUNEL assay, and that these cells also exhibited slowed growth. BT-474 and SKBR-3 cell lines, both of which express high levels of the HER-2 antigen, had significant increases in labeled nucleotide expression at 3 and 6 day time points following exposure to Herceptin at a concentration of 10 microg/ml. Similar treatment of MCF-7 and MDA-231 cell lines, both of which express low levels of HER-2, had little effect on the level of labeled nucleotide expression at either the 3 or 6 day time points. Following 4 days of Herceptin treatment, BT-474 and SKBR-3 cell lines had significant decreases in the percentage of cells in the S phase of growth. This effect was not seen in either the MCF-7 or MDA-231 cell lines.
Conclusion:
Herceptin has a biological effect only on cells that contain high levels of HER-2. This effect is a decrease in cell proliferation that is coincident with, and may be caused by an increase frequency of DNA strand breaks.
Insights
Herceptin (trastuzumab) effectively slows cancer growth in HER-2 positive cells by increasing DNA damage and reducing proliferation. This targeted therapy demonstrates a clear biological effect on cells with high HER-2 expression.
Area of Science:
- Oncology
- Molecular Biology
- Immunotherapy
Background:
- Herceptin is a humanized antibody targeting the HER-2 oncogene product.
- Clinical studies suggest Herceptin slows disease progression in HER-2-expressing tumors.
- The precise mechanism of Herceptin's action remains unclear.
Purpose of the Study:
- To investigate the mechanism of action of Herceptin.
- To determine the effect of Herceptin on cells with varying HER-2 expression levels.
- To analyze DNA strand breaks and cell cycle changes induced by Herceptin.
Main Methods:
- Utilized four cell lines with differential HER-2 expression.
- Analyzed DNA strand breaks using the TUNEL assay.
- Assessed cell cycle perturbation via flow cytometry.
Main Results:
- High HER-2 expressing cell lines (BT-474, SKBR-3) showed increased DNA strand breaks and slowed growth after Herceptin treatment.
- Low HER-2 expressing cell lines (MCF-7, MDA-231) exhibited minimal response to Herceptin.
- Herceptin treatment led to decreased S-phase cells in high HER-2 lines, indicating cell cycle inhibition.
Conclusions:
- Herceptin's biological activity is specific to cells with high HER-2 expression.
- Herceptin induces a decrease in cell proliferation.
- Increased DNA strand breaks are a likely cause of Herceptin's anti-proliferative effect.
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