Nanosecond Pulsed Bipolar Cancellation of the Killing Effect on Glioblastoma

Abstract

Insights

Nanosecond pulsed electric fields (nsPEFs) show promise for glioblastoma treatment by enabling local tumor cell killing. The bipolar cancellation (BPC) effect enhances efficacy in 3D cell models, suggesting reduced side effects and improved outcomes.

Area of Science:

  • Biophysics
  • Oncology
  • Biomedical Engineering

Background:

  • Glioblastoma (GBM) is an aggressive brain tumor with limited treatment options and significant side effects.
  • Current therapies for malignant gliomas often result in adverse effects like seizures and edema.
  • Nanosecond pulsed electric fields (nsPEFs) offer a potential localized treatment modality for GBM.

Purpose of the Study:

  • To investigate the bipolar cancellation (BPC) effect of nsPEFs on U87-MG cells.
  • To evaluate the efficacy of nsPEFs in cell ablation and viability.
  • To explore the potential of nsPEFs to reduce neurostimulation and associated side effects.

Main Methods:

  • Cell viability and ablation experiments were conducted using U87-MG cells.
  • Varying numbers of pulses and electric field amplitudes of nsPEFs were applied.
  • The bipolar cancellation (BPC) effect was analyzed under different nsPEF conditions.

Main Results:

  • Maximum BPC efficiency of 163.9% was achieved with nsPEFs at 15 kV/cm and 15 pulses.
  • Unipolar nsPEFs (20 kV/cm, 15 pulses) resulted in 90% cell killing in suspension.
  • The electric field threshold for 3D cell ablation (5.805 ± 1.455 kV/cm) was lower than for monolayer cells (8.95 ± 0.75 kV/cm).

Conclusions:

  • nsPEFs can effectively ablate glioblastoma cells, with a lower threshold for 3D cell structures.
  • The BPC effect is more pronounced in 3D cell models, indicating potential for targeted therapy.
  • Modulating pulse number impacts ablation area and BPC efficiency similarly in 3D models.

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