Altering calcium influx for selective destruction of breast tumor
Han-Gang Yu1, Sarah McLaughlin2, Mackenzie Newman3
1Department of Physiology and Pharmacology, West Virginia University, One Medical Center Drive, Morgantown, WV, 26506, USA. hyu@hsc.wvu.edu.
Background:
Human triple-negative breast cancer has limited therapeutic choices. Breast tumor cells have depolarized plasma membrane potential. Using this unique electrical property, we aim to develop an effective selective killing of triple-negative breast cancer.
Methods:
We used an engineered L-type voltage-gated calcium channel (Cec), activated by membrane depolarization without inactivation, to induce excessive calcium influx in breast tumor cells. Patch clamp and flow cytometry were used in testing the killing selectivity and efficiency of human breast tumor cells in vitro. Bioluminescence and ultrasound imaging were used in studies of human triple-negative breast cancer cell MDA-MB-231 xenograft in mice. Histological staining, immunoblotting and immunohistochemistry were used to investigate mechanism that mediates Cec-induced cell death.
Results:
Activating Cec channels expressed in human breast cancer MCF7 cells produced enormous calcium influx at depolarized membrane. Activating the wild-type Cav1.2 channels expressed in MCF7 cells also produced a large calcium influx at depolarized membrane, but this calcium influx was diminished at the sustained membrane depolarization due to channel inactivation. MCF7 cells expressing Cec died when the membrane potential was held at -10 mV for 1 hr, while non-Cec-expressing MCF7 cells were alive. MCF7 cell death was 8-fold higher in Cec-expressing cells than in non-Cec-expressing cells. Direct injection of lentivirus containing Cec into MDA-MB-231 xenograft in mice inhibited tumor growth. Activated caspase-3 protein was detected only in MDA-MB-231 cells expressing Cec, along with a significantly increased expression of activated caspase-3 in xenograft tumor treated with Cec.
Conclusions:
We demonstrated a novel strategy to induce constant calcium influx that selectively kills human triple-negative breast tumor cells.
Insights
Researchers developed a novel method to selectively kill triple-negative breast cancer cells by exploiting their unique electrical properties. This engineered calcium channel (Cec) induces excessive calcium influx, leading to targeted cancer cell death and inhibiting tumor growth in mice.
Area of Science:
- Biophysics
- Molecular Biology
- Oncology
Background:
- Triple-negative breast cancer (TNBC) presents limited therapeutic options.
- TNBC cells exhibit a depolarized plasma membrane potential, a unique electrical characteristic.
- This study leverages this electrical property for selective cancer cell elimination.
Purpose of the Study:
- To develop a novel therapeutic strategy for selective killing of TNBC cells.
- To utilize an engineered L-type voltage-gated calcium channel (Cec) for targeted cancer therapy.
- To investigate the mechanism of Cec-induced cell death in TNBC.
Main Methods:
- Engineered Cec channels activated by membrane depolarization to induce calcium influx.
- In vitro studies using patch clamp and flow cytometry for cell killing selectivity and efficiency.
- In vivo studies using bioluminescence and ultrasound imaging in mouse xenografts.
- Mechanism investigation via histological staining, immunoblotting, and immunohistochemistry.
Main Results:
- Cec channels induced enormous calcium influx in depolarized breast cancer cells.
- MCF7 cells expressing Cec showed 8-fold higher cell death compared to controls.
- Cec treatment inhibited tumor growth in MDA-MB-231 xenografts in mice.
- Increased activated caspase-3 expression confirmed Cec-induced apoptosis.
Conclusions:
- A novel strategy was demonstrated to induce constant calcium influx for selective TNBC cell killing.
- Engineered calcium channels offer a promising approach for targeted cancer therapy.
- Exploiting unique cellular electrical properties can lead to selective cancer treatments.
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