Improving Cold Atmospheric Pressure Plasma Efficacy on Breast Cancer Cells Control-Ability and Mortality Using Vitamin C and Static Magnetic Field

Plasma Chemistry and Plasma Processing - Tập 40 Số 2 - Trang 511-526 - 2020
Ramin Mehrabifard1, H. Mehdian2, K. Hajisharifi2, Elaheh Amini3
1Kharazmi University [Tehran] (Tehran - Iran)
2Department of Physics and Institute for Plasma Research, Kharazmi University, Tehran, Iran
3Department of Animal Biology, Faculty of Biological Science, Kharazmi University, Tehran, Iran

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Weltmann KD, Kindel E, von Woedtke T et al (2010) Atmospheric-pressure plasma sources: prospective tools for plasma medicine. Pure Appl Chem 82:1223–1237

Yousfi M, Merbahi N, Pathak A, Eichwald O (2014) Low-temperature plasmas at atmospheric pressure: toward new pharmaceutical treatments in medicine. Fundam Clin Pharmacol 28:123–135

Graves DB (2012) The emerging role of reactive oxygen and nitrogen species in redox biology and some implications for plasma applications to medicine and biology. J Phys D Appl Phys 45:263001

Zhang Z, Xu Z, Cheng C et al (2017) Bactericidal effects of plasma induced reactive species in dielectric barrier gas-liquid discharge. Plasma Chem Plasma Process 37:415–431. https://doi.org/10.1007/s11090-017-9784-z

Xin Q, Zhang X, Lei L (2008) Inactivation of bacteria in oil field injection water by non-thermal plasma treatment. Plasma Chem Plasma Process 28:689–700. https://doi.org/10.1007/s11090-008-9152-0

Daeschlein G, von Woedtke T, Kindel E et al (2010) Antibacterial activity of an atmospheric pressure plasma jet against relevant wound pathogens in vitro on a simulated wound environment. Plasma Process Polym 7:224–230. https://doi.org/10.1002/ppap.200900059

Shapourzadeh A, Rahimi-Verki N, Atyabi SM et al (2016) Inhibitory effects of cold atmospheric plasma on the growth, ergosterol biosynthesis, and keratinase activity in Trichophyton rubrum. Arch Biochem Biophys 608:27–33. https://doi.org/10.1016/j.abb.2016.07.012

Rupf S, Lehmann A, Hannig M et al (2010) Killing of adherent oral microbes by a non-thermal atmospheric plasma jet. J Med Microbiol 59:206–212

Stoffels E, Sakiyama Y, Graves DB (2008) Cold atmospheric plasma: charged species and their interactions with cells and tissues. IEEE Trans Plasma Sci 36:1441–1457

Heinlin J, Morfill G, Landthaler M et al (2010) Plasma medicine: possible applications in dermatology. JDDG J der Dtsch Dermatologischen Gesellschaft 8:968–976

Ehlbeck J, Schnabel U, Polak M et al (2010) Low temperature atmospheric pressure plasma sources for microbial decontamination. J Phys D Appl Phys 44:13002. https://doi.org/10.1088/0022-3727/44/1/013002

Keidar M (2015) Plasma for cancer treatment. Plasma Sources Sci Technol 24:33001

Bekeschus S, Kolata J, Winterbourn C et al (2014) Hydrogen peroxide: a central player in physical plasma-induced oxidative stress in human blood cells. Free Radic Res 48:542–549

Liu Z, Xu D, Zhou C et al (2018) Effects of the pulse polarity on helium plasma jets: discharge characteristics, key reactive species, and inactivation of myeloma cell. Plasma Chem Plasma Process. https://doi.org/10.1007/s11090-018-9920-4

Lu X, Naidis GV, Laroussi M et al (2016) Reactive species in non-equilibrium atmospheric-pressure plasmas: generation, transport, and biological effects. Phys Rep 630:1–84. https://doi.org/10.1016/J.PHYSREP.2016.03.003

Winterbourn CC (2008) Reconciling the chemistry and biology of reactive oxygen species. Nat Chem Biol 4:278

Ghodbane S, Lahbib A, Sakly M, Abdelmelek H (2013) Bioeffects of static magnetic fields: oxidative stress, genotoxic effects, and cancer studies. Biomed Res Int 2013:602987. https://doi.org/10.1155/2013/602987

Hashish AH, El-Missiry MA, Abdelkader HI, Abou-Saleh RH (2008) Assessment of biological changes of continuous whole body exposure to static magnetic field and extremely low frequency electromagnetic fields in mice. Ecotoxicol Environ Saf 71:895–902

Jing D, Shen G, Cai J et al (2010) Effects of 180 mT static magnetic fields on diabetic wound healing in rats. Bioelectromagnetics 31:640–648

Brkovic S, Postic S, Ilic D (2015) Influence of the magnetic field on microorganisms in the oral cavity. J Appl Oral Sci 23:179–186

Sadri M, Abdolmaleki P, Abrun S et al (2017) Static magnetic field effect on cell alignment, growth, and differentiation in human cord-derived mesenchymal stem cells. Cell Mol Bioeng 10:249–262. https://doi.org/10.1007/s12195-017-0482-y

Li J, Ma Y, Li N et al (2014) Natural static magnetic field-induced apoptosis in liver cancer cell. Electromagn Biol Med 33:47–50

Dobson J (2012) Cancer therapy: death by magnetism. Nat Mater 11:1006

Markov MS (2007) Therapeutic application of static magnetic fields. Environmentalist 27:457–463

Sureda A, Batle JM, Tauler P et al (2006) Vitamin C supplementation influences the antioxidant response and nitric oxide handling of erythrocytes and lymphocytes to diving apnea. Eur J Clin Nutr 60:838–846. https://doi.org/10.1038/sj.ejcn.1602388

Ohno S, Ohno Y, Suzuki N et al (2009) High-dose vitamin C (ascorbic acid) therapy in the treatment of patients with advanced cancer. Anticancer Res 29:809–815

Amatore C, Arbault S, Ferreira DCM et al (2008) Vitamin C stimulates or attenuates reactive oxygen and nitrogen species (ROS, RNS) production depending on cell state: quantitative amperometric measurements of oxidative bursts at PLB-985 and RAW 264.7 cells at the single cell level. J Electroanal Chem 615:34–44. https://doi.org/10.1016/j.jelechem.2007.11.037

Ha YM, Park MK, Kim HJ et al (2009) High concentrations of ascorbic acid induces apoptosis of human gastric cancer cell by p38-MAP kinase-dependent up-regulation of transferrin receptor. Cancer Lett 277:48–54

Cheng X, Rajjoub K, Shashurin A et al (2017) Enhancing cold atmospheric plasma treatment of cancer cells by static magnetic field. Bioelectromagnetics 38:53–62. https://doi.org/10.1002/bem.22014

Deng G, Jin Q, Yin S et al (2018) Experimental study on bacteria disinfection using a pulsed cold plasma jet with helium/oxygen mixed gas. Plasma Sci Technol. https://doi.org/10.1088/2058-6272/aacaee

Duan Y, Huang C, Yu QS (2007) Cold plasma brush generated at atmospheric pressure. Rev Sci Instrum. https://doi.org/10.1063/1.2409624

Dringen R, Kussmaul L, Hamprecht B (1998) Detoxification of exogenous hydrogen peroxide and organic hydroperoxides by cultured astroglial cells assessed by microtiter plate assay. Brain Res Protoc 2:223–228. https://doi.org/10.1016/S1385-299X(97)00047-0

Hojnik N, Modic M, Ni Y et al (2019) Effective fungal spore inactivation with an environmentally friendly approach based on atmospheric pressure air plasma. Environ Sci Technol 53:1893–1904. https://doi.org/10.1021/acs.est.8b05386

Liu ZC, Liu DX, Chen C et al (2015) Physicochemical processes in the indirect interaction between surface air plasma and deionized water. J Phys D Appl Phys 48:495201

Machala Z, Tarabova B, Hensel K et al (2013) Formation of ROS and RNS in water electro-sprayed through transient spark discharge in air and their bactericidal effects. Plasma Process Polym 10:649–659

Tian W, Kushner MJ (2014) Atmospheric pressure dielectric barrier discharges interacting with liquid covered tissue. J Phys D Appl Phys 47:165201

Safari R, Sohbatzadeh F (2015) Effect of DC magnetic field on atmospheric pressure argon plasma jet. Indian J Phys 89:495–502. https://doi.org/10.1007/s12648-014-0609-0

Ledda M, Megiorni F, Pozzi D et al (2013) Non ionising radiation as a non chemical strategy in regenerative medicine: Ca2+-ICR “in vitro” effect on neuronal differentiation and tumorigenicity modulation in NT2 cells. PLoS ONE 8:e61535. https://doi.org/10.1371/journal.pone.0061535

Raylman RR, Clavo AC, Wahl RL (1996) Exposure to strong static magnetic field slows the growth of human cancer cells in vitro. Bioelectromagn J Bioelectromagn Soc 17:358–363

Gurhan H, Bruzón R, Xiong Y, Barnes F (2018) Effect of a low intensity static magnetic field on different biological parameters that characterize the cellular stress. In: 2018 United States National Committee of URSI National Radio Science Meeting (USNC-URSI NRSM), pp 1–2

Friedl P, Gilmour D (2009) Collective cell migration in morphogenesis, regeneration and cancer. Nat Rev Mol Cell Biol 10:445

Schmidt A, Bekeschus S, von Woedtke T, Hasse S (2015) Cell migration and adhesion of a human melanoma cell line is decreased by cold plasma treatment. Clin Plasma Med 3:24–31. https://doi.org/10.1016/j.cpme.2015.05.003

Yun J, Mullarky E, Lu C et al (2015) Vitamin C selectively kills KRAS and. Science (80-) 350:1391–1396

Lv H, Wang C, Fang T et al (2018) Vitamin C preferentially kills cancer stem cells in hepatocellular carcinoma via SVCT-2. Precis Oncol 2:1. https://doi.org/10.1038/s41698-017-0044-8

Padayatty SJ, Riordan HD, Hewitt SM et al (2006) Intravenously administered vitamin C as cancer therapy: three cases. CMAJ 174:937–942. https://doi.org/10.1503/cmaj.050346

Lim JY, Kim D, Kim BR et al (2016) Vitamin C induces apoptosis in AGS cells via production of ROS of mitochondria. Oncol Lett 12:4270–4276. https://doi.org/10.3892/ol.2016.5212

Maramag C, Menon M, Balaji KC et al (1997) Effect of vitamin C on prostate cancer cells in vitro: effect on cell number, viability, and DNA synthesis. Prostate 32:188–195. https://doi.org/10.1002/(SICI)1097-0045(19970801)32

Ma Y, Ha CS, Hwang SW et al (2014) Non-thermal atmospheric pressure plasma preferentially induces apoptosis in p53-mutated cancer cells by activating ROS stress-response pathways. PLoS ONE 9:e91947

Ishaq M, Kumar S, Varinli H et al (2014) Atmospheric gas plasma-induced ROS production activates TNF-ASK1 pathway for the induction of melanoma cancer cell apoptosis. Mol Biol Cell 25:1523–1531