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Published on: February 20, 2017
Characterization of T-DM1-resistant breast cancer cells
Juliette Sauveur1, Louise Conilh1, Sabine Beaumel1
1Cancer Research Center of Lyon, INSERM 1052/CNRS 5286/University of Lyon, Lyon, France.
Abstract:
The development of targeted therapies has drastically improved the outcome of patients with different types of cancer. T-DM1 (trastuzumab-emtansine) is an antibody-drug conjugate used for the treatment of HER2-positive breast cancer combining the FDA approved mAb (monoclonal antibody) trastuzumab and the microtubule cytotoxic agent DM1 (emtansine). Despite clinical successes achieved by targeted therapies, a large number of patients develop resistance during treatment. To explore mechanisms of resistance to T-DM1, the MDA-MB-361 HER2-positive breast cancer cell line was exposed in vitro to T-DM1 in the absence or presence of ciclosporin A. Previously reported mechanisms of resistance such as trastuzumab-binding alterations, MDR1 upregulation, and SLC46A3 downregulation were not observed in these models. Despite a decrease in HER2 expression at the cell surface, both resistant cell lines remained sensitive to HER2 targeted therapies such as mAbs and tyrosine kinase inhibitors. In addition, sensitivity to DNA damaging agents and topoisomerase inhibitors were unchanged. Conversely resistance to anti-tubulin agents increased. Resistant cells displayed a decreased content of polymerized tubulin and a decreased content of βIII tubulin although the downregulation of βIII tubulin by siRNA in the parental cell line did not modified the sensitivity to T-DM1. Both cell lines resistant to T-DM1 also presented giant aneuploid cells. Several SLC (solute carrier) transporters were found to be differentially expressed in the resistant cells in comparison to parental cells. These results suggest that some characteristics such as increased baseline aneuploidy and altered intracellular drug trafficking might be involved in resistance to T-DM1.
Insights
Mechanisms of resistance to trastuzumab-emtansine (T-DM1) in HER2-positive breast cancer were investigated. Resistant cells showed increased resistance to anti-tubulin agents and altered tubulin content, suggesting aneuploidy and drug trafficking changes.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Targeted therapies like T-DM1 have improved cancer treatment outcomes.
- Resistance to targeted therapies remains a significant clinical challenge.
- Understanding T-DM1 resistance mechanisms is crucial for improving patient outcomes.
Purpose of the Study:
- To investigate novel mechanisms of resistance to T-DM1 in HER2-positive breast cancer cells.
- To identify cellular changes associated with T-DM1 resistance.
- To explore potential therapeutic vulnerabilities in resistant cells.
Main Methods:
- In vitro exposure of MDA-MB-361 HER2-positive breast cancer cells to T-DM1.
- Assessment of resistance mechanisms including HER2 expression, drug transporter activity, and tubulin polymerization.
- Analysis of cellular characteristics such as aneuploidy and sensitivity to other therapeutic agents.
Main Results:
- Previously known resistance mechanisms were not observed.
- Resistant cells showed decreased polymerized tubulin and βIII tubulin content.
- Increased resistance to anti-tubulin agents and development of giant aneuploid cells were noted.
- Differential expression of solute carrier (SLC) transporters was identified.
Conclusions:
- Resistance to T-DM1 may involve increased aneuploidy and altered intracellular drug trafficking.
- Novel resistance pathways beyond HER2 expression and known transporters are implicated.
- Findings provide insights into T-DM1 resistance and potential therapeutic strategies.
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