| Literature DB >> 27270230 |
Aigul Zhunussova1,2, Elina A Vitol3, Boris Polyak1, Sultan Tuleukhanov2, Ari D Brooks4, Richard Sensenig4, Gary Friedman3, Zulfiya Orynbayeva1.
Abstract
Non-thermal atmospheric pressure plasma has attracted great interest due to its multiple potential biomedical applications with cancer treatment being among the most urgent. To realize the clinical potential of non-thermal plasma, the exact cellular and molecular mechanisms of plasma effects must be understood. This work aimed at studying the prostate cancer specific mechanisms of non-thermal plasma effects on energy metabolism as a central regulator of cell homeostasis and proliferation. It was found that cancer cells with higher metabolic rate initially are more resistant to plasma treated phosphate-buffered saline (PBS) since the respiratory and calcium sensitive signaling systems were not responsive to plasma exposure. However, dramatic decline of cancer oxidative phosphorylation developed over time resulted in significant progression of cell lethality. The normal prostate cells with low metabolic activity immediately responded to plasma treated PBS by suppression of respiratory functions and sustained elevation of cytosolic calcium. However, over time the normal cells start recovering their mitochondria functions, proliferate and restore the cell population. We found that the non-thermal plasma induced increase in intracellular ROS is of primarily non-mitochondrial origin. The discriminate non-thermal plasma effects hold a promise for clinical cancer intervention.Entities:
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Year: 2016 PMID: 27270230 PMCID: PMC4894638 DOI: 10.1371/journal.pone.0156818
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 2Non-thermal plasma induces apoptosis in DU145 cancer and PrEC normal prostate cells.
Flow cytometry and microscopy results were obtained 24 hours post plasma treatment. (A) Induction of apoptosis in DU145 and PrECs. The cells were incubated with plasma D7 for 1 and 10 minutes than fresh medium was added to cells for their further maintaining. (B) The quantitative data of the per cent of early and late (EA+LA) apoptotic cells. C. Western blot analysis of apoptosis signature. Vinculin was used as a loading control. (D) Transmission images of normal PrEC and metastatic DU145 cells. The white circle indicates the area of PrECs that remained alive or proliferated after the plasma treatment. Data presented as mean±SEM (n = 3).
Determination of non-thermal plasma doses as a function of pH change.
| Setup parameters | Non-thermal plasma doses | ||||||
|---|---|---|---|---|---|---|---|
| D1 | D2 | D3 | D4 | D5 | D6 | D7 | |
| 2:3:5 | 2:3:10 | 2:3:15 | 2:3:20 | 2:3:30 | 3:3:20 | 3:3:30 | |
| 6.4±0.13 | 4.9±0.11 | 4.5±0.13 | 4.1±0.11 | 3.9±0.14 | 3.7±0.14 | 3.2±0.01 | |
The plasma was applied to double deionized water at different frequency/power ratio and duration. The more acidic the water, the stronger the plasma dose.