Related Experiment Videos
Effects of 50 Hz electric currents and magnetic fields on the prokaryote Propionibacterium acnes
S Ramstad1, C M Futsaether, A Johnsson
1Department of Physics, Norwegian University of Science and Technology, Trondheim, Norway. stale.ramstad@phys.ntnu.no
Abstract:
The effects of 50 Hz sinusoidal electric currents and magnetic fields on the Gram-positive skin bacterium Propionibacterium acnes were investigated. Intracellular free calcium ([Ca(2+)](i)), intracellular pH (pH(i)), and cell viability were examined, based on their relevance to ELF field studies and on previous studies conducted on P. acnes (UVA irradiation, photosensitization using porphyrin-based sensitizers, and broad-band red light). The [Ca(2+)](i) and the pH(i) were measured spectrofluorimetrically using the fluorescent probes fura-2 and BCECF, respectively. Sham-exposed controls were used to assess the field exposed samples. Cell suspensions were exposed to 50 Hz, 0.2 mT sinusoidal magnetic fields generated by using Helmholtz coils for up to 30 min. The estimated maximum induced electric field was 0.2 mV/m. Changes in [Ca(2+)](i) and cell viability were not detected. Ag/AgCl electrodes were used to expose cell suspensions to 50 Hz sinusoidal electric currents. The current densities were in the range 0.015-1500 A/m(2) (corresponding electric fields congruent with0.01-1000 V/m). Changes in [Ca(2+)](i) were not observed after current exposure. Current densities of 800 A/m(2) (electric field E congruent with550 V/m) were required for a 50% reduction in cell viability. Current densities greater than 800 A/m(2) were required for a reduction in pH(i). However, a pH gradient across the cell membrane (inside alkaline) was maintained even when exposure resulted in less than 0. 2% survival (1400 A/m(2), E congruent with950 V/m). Thus, dissipation of the pH gradient across the cell membrane and changes in [Ca(2+)](i) were not a consequence of cell inactivation by 50 Hz electric currents. This is in contrast to inactivation of P. acnes by UVA irradiation or photosensitization, where such changes have been obtained.
Insights
Low-frequency electric fields and magnetic fields do not affect intracellular calcium or pH in Propionibacterium acnes. High electric current densities are required to reduce P. acnes viability, without altering its pH gradient.
Area of Science:
- Biophysics
- Microbiology
- Electromagnetic Field Effects
Background:
- Propionibacterium acnes is a Gram-positive bacterium relevant to skin health.
- Previous studies investigated P. acnes responses to UVA irradiation and photosensitization.
- Understanding effects of extremely low frequency (ELF) fields on bacteria is crucial.
Purpose of the Study:
- To investigate the effects of 50 Hz sinusoidal electric currents and magnetic fields on P. acnes.
- To examine changes in intracellular free calcium ([Ca(2+)](i)), intracellular pH (pH(i)), and cell viability.
Main Methods:
- Bacterial cell suspensions were exposed to 50 Hz, 0.2 mT magnetic fields using Helmholtz coils.
- Cell suspensions were exposed to 50 Hz electric currents (0.015-1500 A/m(2)) using Ag/AgCl electrodes.
- Intracellular calcium and pH were measured spectrofluorimetrically using fura-2 and BCECF probes.
Main Results:
- No significant changes in [Ca(2+)](i) or cell viability were detected upon magnetic field exposure.
- Electric current densities up to 1500 A/m(2) did not alter [Ca(2+)](i).
- A 50% reduction in cell viability required current densities of 800 A/m(2); pH(i) reduction required higher densities.
- The pH gradient across the cell membrane was maintained even at low survival rates.
Conclusions:
- 50 Hz electric currents and magnetic fields do not significantly impact [Ca(2+)](i) or pH(i) in P. acnes.
- Cell inactivation by 50 Hz electric currents is not mediated by changes in [Ca(2+)](i) or pH gradient dissipation.
- These findings contrast with P. acnes responses to UVA irradiation and photosensitization.