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Updated: Dec 25, 2025

Electrotaxis Studies of Lung Cancer Cells using a Multichannel Dual-electric-field Microfluidic Chip
Published on: December 29, 2015
Cellular processes involved in lung cancer cells exposed to direct current electric field
Huijuan Li1, Shibin Liu2, Xue Yang1
1School of Electronics and Information, Northwestern Polytechnical University, Xi'an, 710072, China.
Abstract:
With the rapid breakthrough of electrochemical treatment of tumors, electric field (EF)-sensitive genes, previously rarely exploited, have become an emerging field recently. Here, we reported our work for the identification of EF-sensitive genes in lung cancer cells. The gene expression profile (GSE33845), in which the human lung cancer CL1-0 cells were treated with a direct current electric field (dcEF) (300 mV/mm) for 2 h, was retrieved from GEO database. Differentially expressed genes (DEGs) were acquired, followed by Gene Ontology (GO), Kyoto Encyclopedia of Genes and Genomes pathway (KEGG) and protein-protein interaction (PPI) analysis. Hub genes were acquired and analyzed by various tools including the Human Protein Atlas, Kaplan-Meier analysis, Cytoscape, FunRich, Oncomine and cBioPortal. Subsequently, three-dimensional protein models of hub genes were modeled by Modeller 9.20 and Rosetta 3.9. Finally, a 100 ns molecular dynamics simulation for each hub protein was performed with GROMACS 2018.2. A total of 257 DEGs were acquired and analyzed by GO, KEGG and PPI. Then, 10 hub genes were obtained, and the signal pathway analysis showed that two inflammatory pathways were activated: the FoxO signaling pathway and the AGE-RAGE signaling pathway. The molecular dynamic analysis including RMSD and the radius of gyration hinted that the 3D structures of hub proteins were built. Overall, our work identified EF-sensitive genes in lung cancer cells and identified that the inflammatory state of tumor cells may be involved in the feedback mechanism of lung cancer cells in response to electric field stimulation. In addition, qualified three-dimensional protein models of hub genes were also constructed, which will be helpful in understanding the complex effects of dcEF on human lung cancer CL1-0 cells.
Insights
This study identifies electric field (EF)-sensitive genes in lung cancer cells, revealing that inflammatory pathways like FoxO and AGE-RAGE are activated by direct current electric fields (dcEF). These findings offer insights into tumor cell responses to EF stimulation.
Area of Science:
- Oncology
- Molecular Biology
- Bioinformatics
Background:
- Electrochemical treatment of tumors is advancing, highlighting the potential of electric field (EF)-sensitive genes.
- Understanding gene expression changes in response to EF stimulation is crucial for developing novel cancer therapies.
Purpose of the Study:
- To identify EF-sensitive genes in human lung cancer cells (CL1-0).
- To analyze the functional pathways and protein structures affected by direct current electric field (dcEF) exposure.
- To explore the role of inflammation in lung cancer cell response to dcEF.
Main Methods:
- Retrieved gene expression profile (GSE33845) of CL1-0 cells treated with dcEF.
- Performed differential gene expression analysis, Gene Ontology (GO), Kyoto Encyclopedia of Genes and Genomes pathway (KEGG), and protein-protein interaction (PPI) analyses.
- Utilized bioinformatics tools for hub gene identification and analysis, followed by 3D protein modeling and molecular dynamics simulations.
Main Results:
- Identified 257 differentially expressed genes (DEGs) and 10 hub genes.
- Pathway analysis revealed activation of the FoxO signaling pathway and the AGE-RAGE signaling pathway, indicating an inflammatory response.
- Constructed 3D protein models for hub genes and performed molecular dynamics simulations to assess structural stability.
Conclusions:
- Identified novel EF-sensitive genes in lung cancer cells.
- Suggests that the inflammatory state of tumor cells is involved in the response to dcEF stimulation.
- Provides valuable 3D protein models for further investigation into the effects of dcEF on lung cancer cells.
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