ISSN 2074-9414 (Print),
ISSN 2313-1748 (Online)

Biocide Effect of Non-Thermal Atmospheric Pressure Plasma

Abstract
Introduction. New methods of sterilization with non-thermal atmospheric pressure plasma remain an extremely relevant field of food science. The present research estimated the effect of non-thermal argon plasma on lactic acid bacteria obtained from walnuts. Study objects and method. The non-thermal argon plasma was generated by electrode discharge induced by a coaxial microwave plasmatron at atmospheric pressure. The discharge was generated in a special electrode construction. Its stability was achieved via low gas flow through the discharge gap. Argon consumption was 10 L/min. The study involved Lactobacillus plantarum and Lactobacillus mali in their natural association and vegetative form. Endo’s medium (Endo agar) was inoculated with lactobacilli. 100 μl of the suspension were added into a Petri dish with nutrient medium and carefully rubbed with a spreader. The plates with Endo agar inoculated with lactobacilli were placed under plasma radiation at a distance of 45 mm. The biocidal effect of plasma radiation was estimated by the diameter of the affected areas. After the plasma treatment, the Petri dishes were incubated in an incubator for 24–48 h at 37°C, after which the diameters of the affected areas were measured again. Results and discussion. The paper introduces experimental data on the effect of argon plasma on lactobacilli isolated from food. After treating the surface of inoculated Petri dishes with non-thermal plasma for five minutes, the diameter of the inhibition zone reached the diameter of a Petri dish (80 mm) and exceeded the diameter of the spark gap of the plasma generator (36 mm). The temperature on the surface of the nutrient medium during plasma treatment was within the optimal temperature for lactobacillus growth, i.e. 37.3 ± 0.6°C, which excluded thermal effects. Only a few colonies survived a five-minute treatment. After one-minute treatment, the number of survived colony-forming units was considerably higher. Conclusion. Non-thermal argon plasma treatment proved effective in inhibiting the growth of gram-positive bacteria (Lactobacillus isolated from walnuts) on solid surfaces (agar plates). After five minutes of plasma treatment, the inactivated area (80 mm) exceeded the anode electrode cross section (36 mm) of the plasma generator.
Keywords
Lactobacillus, walnuts, cold plasma, decontamination, inactivation, microwave, plasmatron
REFERENCES
  1. Fiebrandt M, Lackmann J-W, Stapelmann K. From patent to product? 50 years of low-pressure plasma sterilization. Plasma Processes and Polymers. 2018;15(12). https://doi.org/10.1002/ppap.201800139.
  2. Ivanova IP, Trofimova SV, Karpel Vel Leitner N, Aristova NA, Arkhipova EV, Burkhina OE, et al. The analysis of active products of spark discharge plasma radiation determining biological effects in tissues. Modern Technologies in Medicine. 2012;(2):20–30. (In Russ.).
  3. Savkina OA, Lokachuk MN, Pavlovskaya EN. Issledovanie mikrobnoy kontaminatsii myusley i syrʹya [A study of microbial contamination of muesli and raw materials]. Pishchevaya industriya [Food industry]. 2020;43(1):48–50. (In Russ.). https://doi.org/10.24411/9999-008A-2020-10003.
  4. Babich OO, Prosekov AYu, Sukhikh SA, Milentʹeva IS. Identifikatsiya molochnokislykh bakteriy na poverkhnosti plodov i ovoshchey [Identification of lactic acid bacteria on the surface of fruits and vegetables]. Voprosy nauki. 2012;(2):20–30. (In Russ.).
  5. Darby TM, Jones RM. Beneficial influences of Lactobacillus plantarum on human health and disease. In: Floch MH, Ringel Y, Walker WA, editors. The microbiota in gastrointestinal pathophysiology: Implications for human health, prebiotics, probiotics, and dysbiosis. Academic Press; 2017. pp. 109–117. https://doi.org/10.1016/B978-0-12-804024-9.00010-0.
  6. Solovyeva IV, Tochilina AG, Belova IV, Novikova NA, Ivanova TP. The lactobacillus biological properties. Prospects of express-methods nucleic acid amplification for the foods, food supplements and drugs on its basis quality control. Journal MediAl. 2014;12(2):29–44. (In Russ.).
  7. Sarukhanov AV, Morozova AI, Vasilyeva NA, Krylenkin DV. Flavonoid’s content determination in irradiated samples via spectrophotometric analysis. Bulletin of Science and Practice. 2019;5(10):32–39. (In Russ.). https://doi.org/10.33619/2414-2948/47/04.
  8. Boskou D. Mediterranean diet food: Strategies to preserve a healthy tradition. Journal of Experimental Food Chemistry. 2016;1(1). https://doi.org/10.4172/2472-0542.1000104.
  9. Bermudez-Aguirre D, Wemlinger E, Pedrow P, Barbosa-Cánovas G, Garcia-Perez M. Effect of atmospheric pressure cold plasma (APCP) on the inactivation of Escherichia coli in fresh produce. Food Control. 2013;34(1):149–157. https://doi.org/10.1016/j.foodcont.2013.04.022.
  10. Baier M, Foerster J, Schnabel U, Knorr D, Ehlbeck J, Herppich WB, et al. Direct non-thermal plasma treatment for the sanitation of fresh corn salad leaves: Evaluation of physical and physiological effects and antimicrobial efficacy. Postharvest Biology and Technology. 2013;84:81–87. https://doi.org/10.1016/j.postharvbio.2013.03.022.
  11. Baier M, Janßen T, Wieler LH, Ehlbeck J, Knorr D, Schlüter O. Inactivation of Shiga toxin-producing Escherichia coli O104:H4 using cold atmospheric pressure plasma. Journal of Bioscience and Bioengineering. 2015;120(3):275–279. https://doi.org/10.1016/j.jbiosc.2015.01.003.
  12. Baier M, Görgen M, Ehlbeck J, Knorr D, Herppich WB, Schlüter O. Non-thermal atmospheric pressure plasma: Screening for gentle process conditions and antibacterial efficiency on perishable fresh produce. Innovative Food Science and Emerging Technologies. 2014;22:147–157. https://doi.org/10.1016/j.ifset.2014.01.011.
  13. Perni S, Liu DW, Shama G, Kong MG. Cold atmospheric plasma decontamination of the pericarps of fruit. Journal of Food Protection. 2008;71(2):302–308. https://doi.org/10.4315/0362-028x-71.2.302.
  14. Perni S, Shama G, Kong MG. Cold atmospheric plasma disinfection of cut fruit surfaces contaminated with migrating microorganisms. Journal of Food Protection. 2008;71(8):1619–1625. https://doi.org/10.4315/0362-028x-71.8.1619.
  15. Puligundla P, Kim J-W, Mok C. Effect of corona discharge plasma jet treatment on decontamination and sprouting of rapeseed (Brassica napus L.) seeds. Food Control. 2017;71:376–382. https://doi.org/10.1016/j.foodcont.2016.07.021.
  16. Kilonzo-Nthenge A, Liu S, Yannam S, Patras A. Atmospheric cold plasma inactivation of Salmonella and Escherichia coli on the surface of golden delicious apples. Frontiers in Nutrition. 2018;5. https://doi.org/10.3389/fnut.2018.00120.
  17. Niemira BA. Cold plasma decontamination of foods. Annual Review of Food Science and Technology. 2012;3(1):125–142. https://doi.org/10.1146/annurev-food-022811-101132.
  18. Niemira BA. Cold plasma reduction of Salmonella and Escherichia coli O157:H7 on almonds using ambient pressure gases. Journal of Food Science. 2012;77(3):M171–M175. https://doi.org/10.1111/j.1750-3841.2011.02594.x.
  19. Niemira BA, Sites J. Cold plasma inactivates Salmonella stanley and Escherichia coli O157:H7 inoculated on golden delicious apples. Journal of Food Protection. 2008;71(7):1357–1365. https://doi.org/10.4315/0362-028X-71.7.1357.
  20. Schnabel U, Niquet R, Schlüter O, Gniffke H, Ehlbeck J. Decontamination and sensory properties of microbiologically contaminated fresh fruits and vegetables by microwave plasma processed air (PPA). Journal of Food Processing and Preservation. 2015;39(6):653–662. https://doi.org/10.1111/jfpp.12273.
  21. Critzer FJ, Kelly-Wintenberg K, South SL, Golden DA. Atmospheric plasma inactivation of foodborne pathogens on fresh produce surfaces. Journal of Food Protection. 2007;70(10):2290–2296. https://doi.org/10.4315/0362-028X-70.10.2290.
  22. Baier M, Ehlbeck J, Knorr D, Herppich WB, Schlüter O. Impact of plasma processed air (PPA) on quality parameters of fresh produce. Postharvest Biology and Technology. 2015;100:120–126. https://doi.org/10.1016/j.postharvbio.2014.09.015.
  23. Sysolyatina EV. Bakteritsidnye svoystva nizkotemperaturnoy plazmy in vitro i in vivo [Bactericidal properties of lowtemperature plasma in vitro and in vivo]. Cand. bio. sci. diss. Moscow: Gamaleya National Research Center for Epidemiology and Microbiology; 2013. 128 p.
  24. Kireev G.V. Inaktivatsiya mikroorganizmov nizkotemperaturnoy plazmoy pri atmosfernom davlenii [Inactivation of microorganisms by low-temperature plasma at atmospheric pressure]. Cand. bio. sci. diss. Obolensk: State Research Center for Applied Microbiology and Biotechnology; 2013. 189 p.
  25. Semenov AP, Baldanov BB, Ranzhurov CV, Nikolaev EO, Gomboeva SV. Development of microbicide equipment and research in pathogen inactivation by cold argon plasma. The Siberian Scientific Medical Journal. 2016;36(1):18–22. (In Russ.).
  26. Semenov AP, Baldanov BB, Ranzhurov TsV, Norboev ChN, Namsaraev BB, Dambaev VB, et al. Inactivation of microorganisms in cold argon plasma at the atmospheric pressure. Advances in Applied Physics. 2014;2(3):229–233. (In Russ.).
  27. Baldanov BB. Istochnik slaboionizirovannoy neravnovesnoy plazmy na osnove impulʹsno-periodicheskogo rezhima otritsatelʹnogo koronnogo razryada v potoke argona [Source of low-ionized non-equilibrium plasma based on the pulse-periodic mode of negative corona discharge in an argon flow]. Dr. eng. sci. diss. Ulan-Ude: East Siberia State University of Technology and Management; 2004. 239 p.
How to quote?
Petrukhina DI, Polyakova IV, Gorbatov SA. Biocide Effect of Non-Thermal Atmospheric Pressure Plasma. Food Processing: Techniques and Technology. 2021;51(1):86–97. (In Russ.). https://doi.org/10.21603/2074-9414-2021-1-86-97.
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