DocumentCode :
1128887
Title :
Submicrosecond intense pulsed electric field effects on intracellular free calcium: mechanisms and effects
Author :
Buescher, E. Stephen ; Smith, Rachel R. ; Schoenbach, Karl H.
Author_Institution :
Center for Pediatric Res., Old Dominion Univ., Norfolk, VA, USA
Volume :
32
Issue :
4
fYear :
2004
Firstpage :
1563
Lastpage :
1572
Abstract :
Application of submicrosecond intense pulsed electric fields (sm/i-PEF) to cells results in rapid, transient rises in intracellular free calcium concentrations ([Ca++]i) in human blood neutrophils, human promyelocytic leukemia cells (HL60), and human T-cell leukemia cells (Jurkat cells). The magnitude of the rise in [Ca++]i in human neutrophils is related to the intensity of applied sm/i-PEF. Some 10-50% of the rise in [Ca++]i triggered by 300-ns pulses is due to release of Ca++ from intracellular sources, while maximally 10% of the rise in [Ca++]i triggered by 60-ns pulses is due to release from intracellular sources. Repetition of a sm/i-PEF application of lesser intensity than the first pulse fails to induce a rise in [Ca++]i, while a second pulse of equal or greater intensity elicits a small or moderate rise, respectively. When sm/i-PEF applications were examined for effects on cellular function, no effect was observed on neutrophil phagocytosis. Suppression of spontaneous H2O2 production was observed after a 300-ns, 60-kV/cm pulse, and transient suppression of neutrophil chemotaxis was observed following a 300-ns and 60-ns, 60-kV/cm pulse. No evidence of proton influx/efflux was found following sm/i-PEF application. sm/i-PEF applications may allow manipulation of selected cell behaviors/function based on their ability to initiate changes in [Ca++]i.
Keywords :
bioelectric phenomena; biological effects of fields; biomembrane transport; blood; calcium; electric field effects; 300 ns; 60 ns; Ca; cell behaviors; cell function; human T-cell leukemia cells; human blood neutrophils; human promyelocytic leukemia cells; intracellular free calcium concentrations; neutrophil chemotaxis; neutrophil phagocytosis; proton efflux; proton influx; submicrosecond intense pulsed electric field effects; Biomembranes; Blood; Calcium; Cells (biology); Humans; Narrowband; Production; Protons; Voltage; Wideband; Intense pulsed electric field; intracellular calcium; submicrosecond;
fLanguage :
English
Journal_Title :
Plasma Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0093-3813
Type :
jour
DOI :
10.1109/TPS.2004.832643
Filename :
1341522
Link To Document :
بازگشت