Effects of ultra-fast nanosecond electric pulses on mitochondria transmembrane potential and oxidation
Abstract
Abstract Electroporation can be successfully employed for controlled molecular delivery and therefore has found clinical applications for treatment of cancer. However, it’s a pulse-dependent phenomenon, thus modulation of the effects is possible by developing new parametric protocols for pulsed electric field generation. In this work, we have developed a generator capable of generating 50 ns pulses with extreme pulse repetition frequency (up to 6.6 MHz), which should enable plasma membrane permeabilization at significantly lower electric field thresholds due to burst compression and modulation of intracellular effects specific to nanosecond range. We have investigated the effects of 6–16 kV/cm, 50 and 300 ns pulses on mitochondria depolarization, followed by ATP depletion study and characterization of mitochondria oxidation. Finally, we have experimentally confirmed the feasibility of the proposed nanosecond pulsed electric field bursts for calcium electrochemotherapy in vitro. For consolidation of knowledge, we have included the results of standard microsecond pulse procedures (8 × 100 µs). As model a CHO-K1-Luc cell line was used. Based on the experimental data, it is concluded that nanosecond pulses (50 ns) when delivered at ultra-fast repetition frequency allow reduction of cell membrane permeabilization thresholds and can be successfully used for calcium electrochemotherapy even with PEF amplitudes as low as 10 kV/cm.
Article Details
Authors (8)
Paulina Malakauskaitė
Augustinas Želvys
Eglė Mickevičiūtė
Veronika Malyško-Ptašinskė
Barbora Lekešytė
Eivina Radzevičiūtė-Valčiukė
Vytautas Kašėta
Vitalij Novickij