Related Experiment Video
Updated: Jun 11, 2025

miRNA Expression Analyses in Prostate Cancer Clinical Tissues
Published on: September 8, 2015
Low Magnetic Field Exposure Alters Prostate Cancer Cell Properties
Sigrun Lange1, Jameel M Inal2,3, Igor Kraev4
1Pathobiology and Extracellular Vesicles Research Group, School of Life Sciences, University of Westminster, London W1W 6UW, UK.
Abstract:
Prostate cancer is the second most common neoplasia and fifth-leading cause of cancer death in men worldwide. Electromagnetic and magnetic fields have been classified as possible human carcinogens, but current understanding of molecular and cellular pathways involved is very limited. Effects due to extremely low magnetic/hypomagnetic fields (LMF) are furthermore poorly understood. Extracellular vesicles (EVs) are crucial mediators of cellular communication with multifaceted roles in cancer progression, including via transport and uptake of various protein and microRNA (miRNA) EV-cargoes. miRNAs regulate gene expression and are implicated in cancer-related processes such as proliferation, metastasis, and chemoresistance. This study investigated the effects of LMF exposure (20 nT) by magnetic shielding on the prostate cancer cell line PC3 compared to the prostate epithelial cell line PNT2 under short-term (4 h) conditions. We examined EV profiles following a 4 h LMF exposure alongside associated functional enrichment KEGG and GO pathways for the EV proteomes. The 4 h LMF exposure significantly reduced cellular EV release and modified PC3 EV cargoes to a more inflammatory and metastatic profile, with 16 Disease Pathways and 95 Human Phenotypes associated specifically with the LMF-treated PC3 EV proteomes. These included cancerous, metabolic, blood, skin, cardiac and skeletal Disease Pathways, as well as pain and developmental disorders. In the normal PNT2 cells, less EV protein cargo was observed following LMF exposure compared with cells not exposed to LMF, and fewer associated functional enrichment pathways were identified. This pointed to some differences in various cellular functions, ageing, defence responses, oxidative stress, and disease phenotypes, including respiratory, digestive, immune, and developmental pathways. Furthermore, we analysed alterations in matrix metalloproteinases (MMPs) and miRNAs linked to metastasis, as this is crucial in cancer aggressiveness. The 4 h LMF exposure caused a significant increase in MMP2 and MMP9, as well as in onco-miRs miR-155, miR-210, miR-21, but a significant reduction in tumour-suppressor miRs (miR-200c and miR-126) in the metastatic PC3 cells, compared with normal PNT2 cells. In addition, 4 h LMF exposure significantly induced cellular invasion of PC3 cells. Overall, our findings suggest that changes in magnetic field exposures modulate EV-mediated and miR-regulatory processes in PCa metastasis, providing a basis for exploring novel therapeutic strategies.
Insights
Low magnetic fields (LMF) exposure altered prostate cancer cell communication via extracellular vesicles (EVs), promoting a more metastatic profile. This suggests magnetic field changes impact EV-mediated processes crucial for prostate cancer progression.
Area of Science:
- Environmental Health
- Cancer Biology
- Cellular Communication
Background:
- Prostate cancer is a leading cause of cancer death globally.
- The role of electromagnetic fields, particularly extremely low magnetic/hypomagnetic fields (LMF), in cancer is poorly understood.
- Extracellular vesicles (EVs) are key in cell-to-cell communication and cancer progression, transporting microRNAs (miRNAs) that regulate gene expression.
Purpose of the Study:
- To investigate the short-term effects of LMF exposure on prostate cancer cell line PC3 and normal prostate epithelial cell line PNT2.
- To analyze changes in EV profiles, protein cargoes, and associated functional pathways after LMF exposure.
- To examine alterations in metastasis-related matrix metalloproteinases (MMPs) and miRNAs.
Main Methods:
- PC3 and PNT2 cells were exposed to 20 nT LMF for 4 hours.
- EV release and protein cargo were analyzed.
- Functional enrichment analysis (KEGG, GO) was performed on EV proteomes.
- Levels of MMPs and specific miRNAs (oncomiRs and tumor-suppressor miRs) were quantified.
- Cellular invasion assays were conducted.
Main Results:
- LMF exposure significantly reduced EV release from PC3 cells.
- PC3 cell EV cargoes shifted towards an inflammatory and metastatic profile, associated with 16 Disease Pathways and 95 Human Phenotypes.
- LMF exposure increased MMP2, MMP9, onco-miRs (miR-155, miR-210, miR-21), and decreased tumor-suppressor miRs (miR-200c, miR-126) in PC3 cells.
- PC3 cell invasion was significantly induced by LMF exposure.
- PNT2 cells showed fewer changes in EV cargo and associated pathways compared to PC3 cells.
Conclusions:
- Short-term LMF exposure modulates EV-mediated communication and miRNA regulation in prostate cancer cells.
- These changes promote a more aggressive and metastatic phenotype in PCa cells.
- Findings provide a basis for exploring novel therapeutic strategies targeting magnetic field-induced changes in cancer progression.

