Yıl: 2022 Cilt: 10 Sayı: 10 Sayfa Aralığı: 2056 - 2060 Metin Dili: İngilizce DOI: 10.24925/turjaf.v10i10.2056-2060.5481 İndeks Tarihi: 27-05-2023

In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities

Öz:
In this study; it was aimed to investigate the anticancer and cytotoxic activities on DU-145 prostate cancer and MCF-7 breast cancer cell lines and WI-38 human fibroblast cell line of essential oil (Nioli) obtained from Melaleuca viridiflora Sol. ex Gaertn. plant and its antimicrobial effects on various bacteria and yeast cells. Content analyzes of Nioli essential oil were made by Gas Chromatography-Mass Spectrometry (GK-KS). The antimicrobial effects of the essential oil were determined using Disk Diffusion and Minimum Inhibition Concentration (MIC) tests. Its cytotoxic effects were determined by the XTT (2,3-bis-(2-methoxy-4-) nitro-5)-sulfophenyl)-2H-tetrazolium- 5-carboxanilide) test; were investigated at different concentrations in breast cancer (MCF-7), prostate cancer (DU-145) and healthy human fibroblast (WI-38) cell lines. In the disc diffusion method of essential oil; It was determined that it formed an inhibition zone against Klebsiella pneumoniae bacteria at 200, 100, 50, 25 and 12.5 μg/mL concentrations, and against Candida albicans yeast at 200 and 100 μg/mL concentrations. Nioli essential oil showed the highest antibacterial effect against Bacillus cereus. While it was moderately effective against Pseudomonas aeruginosa and Candida albicans, it reached MIC values effective against other bacteria. It was observed that the anticancer activity of Nioli essential oil was more effective in DU-145 prostate cancer cells compared to MCF-7 breast cancer cells, and it had no toxicity in WI-38 healthy human fibroblast cells.
Anahtar Kelime:

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • Adukwu EC, Bowles M, Edwards-Jones V, Bone H. 2016. Antimicrobial activity, cytotoxicity and chemical analysis of lemongrass essential oil (Cymbopogon flexuosus) and pure citral. Appl Microbiol Biotechnol, 100: 9619–9627
  • Akgül H, Mohammed FS, Kına E, Uysal İ, Sevindik M, Doğan M. 2022. Total Antioxidant and Oxidant Status and DPPH Free radical activity of Euphorbia eriophora. Turkish Journal of Agriculture-Food Science and Technology, 10(2): 272-275.
  • Akiel MA, Alshehri OY, Aljihani SA, Almuaysib A, Bader A, Al-Asmari AI, Alamri HS, Alrfaei BM, Halwani MA. 2022. Viridiflorol induces anti-neoplastic effects on breast, lung, and brain cancer cells through apoptosis. Saudi Journal of Biological Sciences, 29: 816–821
  • Awouafack MD, Mcgaw LJ, Gottfried S, Mbouangouere R, Tane P, Spiteller M, Eloff JN. 2013. Antibicrobial activity and cytotoxicity of the ethanol extract, fractions and eight compounds ısolated from Eriosema robustum. BMC Complementary Medicine and Therapies, 13: 289
  • Bayram E, Kırıcı S, Tansı S, Yılmaz G, Arabacı O, Kızıl S, Telci İ. 2010. Possibilities to Increase Production of Medicinal and Aromatic Plants. Turkey Agricultural Eng. 7th Technical Congress, 11-15 January 2010 Ankara, Proceedings Book I, pp.437-456
  • Bhalla Y, Gupta VK, Jaitak V. 2013. Anticancer activity of essential oils. J Sci Food Agric, 93:3643–3653
  • Bombarda I, Raharivelomanana P, Ramanoelina P, Faure R, Bianchini JP, Gaydou EM. 2001. Spectrometric identifications of sesquiterpene alcohols from niaouli (Melaleuca quinquenervia) essential oil. Analytica Chimica Acta, 447 113–123
  • Byahatti S, Bogar C, Bhat K, Dandagi G. 2018. Evaluation of anticancer activity of Melaleuca alternifolia (i.e. tea tree oil) on leukemia cancer cell line (K562): An in vitro study. Journal of Medicinal Plants Studies, 6(5): 01-06
  • Chabir N, Romdhane M, Valentin A, Moukarzel B, Marzouq H, Brahim N, Mars M, Bouajila J. 2011. Chemical study and antimalarial, antioxidant and anticancer activities of Melaleuca armillaris (sol ex gateau) sm essential oil. Journal of Medicinal Food vol. 14, NO. 11 | https://doi.org/10.1089/jmf.2010.0168
  • Chao W, Sub CC, Pengc HY, Choub ST. 2017. Melaleuca quinquenervia essential oil inhibits α-melanocyte-stimulating hormone-induced melanin production and oxidative stress in B16 melanoma cells. Phytomedicine, 34: 191–201
  • CLSI. 2018. Performance Standards for Antimicrobial Disk Susceptibility Tests. Approved Standard. 13th Edition, CLSI document M02. Clinical and Laboratory Standards Institute Clinical and Laboratory Standards Institute, Pennsylvania USA.
  • CLSI. 2012. Methods for Dilution Antimicrobial Susceptibility Tests for Bacteria that Grow Aerobically. Approved Standard. 9th Edition, CLSI document M07-A9. Clinical and Laboratory Standards Institute, Pennsylvania USA.
  • CLSI. 2012. Reference Method for Broth Dilution Antifungal Susceptibility Testing of Yeasts. Approved Standard. 2th Edition, CLSI document M27-A2. Clinical and Laboratory Standards Institute, Pennsylvania USA.
  • Çelik E, Çelik GY. 2007. Antimicrobial properties of plant essential oils. Orlab On-Line Journal of Microbiology, 2:(5), 1-6
  • Daştan SD. 2016. Evaluation of in vitro anticancer effect of Plantago major L. and Plantago lanceolata L. leaf extracts from Sivas. Cumhuriyet University. Journal of the Institute of Health Sciences, (1)1: 07-14
  • Elliot WR, Jones DL. 1993. Encyclopaedia of Australian Plants Suitable for Cultivation. Melbourne: Lothian Publishing Co. Pty. Ltd., vol:6, pp. 315-317, 359
  • Hammer KA, Carson CF, Riley TV. 1998. Antimicrobial activity of essential oils and other plant extracts. Journal of Applied Microbiology, 86, 985–990
  • Jain D, Murti Y, Khan WU, Hossain R, Hossain MN, Agrawal KK, Ashraf RA, Islam MT, Janmeda P, Taheri Y, Alshehri MM, Daştan SD, Yeskaliyeva B, Kipchakbayeva A, Sharifi- Rad J, Cho WC. 2021. Roles of therapeutic bioactive compounds in hepatocellular carcinoma. Oxidative Medicine and Cellular Longevity, p:31 https://doi.org/10.1155/2021/9068850
  • Jain D, Pathak N, Khan S, Raghuram GV, Bhargava A, Samarth R, Mishra PK. 2011. Evaluation of cytotoxicity and anticarcinogenic potential of mentha leaf extracts. International Journal of Toxicology, 30: (2), 225-236
  • Kına E, Uysal İ, Mohammed FS, Doğan M, Sevindik M. 2021. In-vitro antioxidant and oxidant properties of Centaurea rigida. Turkish Journal of Agriculture-Food Science and Technology, 9(10): 1905-1907.
  • Kiltie A, Knowles MA, Selby PJ. 2005. Radiotheraphy and molecular radiotheraphy. Introduction to The Cellular and Molecular Biology of Cancer Oxford University Press USA, 414
  • Kuete V. 2010. Potential of cameroonian plants and derived products againts microbial infections. Planta Med., 76: 1479– 1491
  • Mohammed FS, Kına E, Uysal İ, Mencik K, Dogan M, Pehlivan M, Sevindik M. 2022. Antioxidant and Antimicrobial Activities of Ethanol Extract of Lepidium spinosum. Turkish Journal of Agriculture-Food Science and Technology, 10(6): 1116-1119.
  • Mouhssen L. 2004. Methods to study the phytochemistry and bioactivity of essential oils. Phytotherapy Research, 18: 435– 448
  • Oussalah M, Caillet S, Saucier L, Lacroix M. 2007. Inhibitory effects of selected plant essential oils on the growth of four pathogenic bacteria: E. coli O157:H7, Salmonella typhimurium, Staphylococcus aureus and Listeria monocytogenes. Food Control, 18, 414–420
  • Parkin DM, Bray F, Ferlay J, Pisani P. 2005. Global cancer statistics 2002. A Cancer Journal for Clinicians, 55 (2): 74- 108
  • Ponce AG, Fritz R, Valle RC, Roura RC. 2003. Antimicrobial activity of essential oils on the native microflora of organic Swiss chard. Lebensm.-Wiss. U.-Technol., 36: 679–684
  • Rapper SL, Tankeu SY, Kamatou G, Viljoen A, Vuuren SV. 2021. The use of chemometric modelling to determine chemical composition-antimicrobial activity relationships of essential oils used in respiratory tract infections. Fitoterapia, 154: 105024
  • Sevindik M, Akgul H, Pehlivan M, Selamoglu Z. 2017. Determination of therapeutic potential of Mentha longifolia ssp. longifolia. Fresen Environ Bull, 26(7): 4757-4763.
  • Sevindik M. 2019. The novel biological tests on various extracts of Cerioporus varius. Fresenius Environmental Bulletin, 28(5): 3713-3717.
  • Sharifi-Rad J, Salehi B, Varoni EM, Sharopov F, Yousaf Z, Ayatollahi SY, Mehdi Sharifi-Rad FK, Afdjei MH, Sharifi- Rad M, Iriti M. 2017. Plants of the melaleuca genus as antimicrobial agents: From farm to pharmacy. Phytother Res., 31(10):1475-1494
  • Tanker M, Tanker N, Şarer E, Atasu E, Şener B, Kurucu S, Meriçli F. 1990. Result of Certain İnvestigation on the Volatile Oil Centaining Plants of Turkey. Essential Oils for Perfumery and Flavours. Preceedings of an International Conference, May, Antalya
  • Tanker N, Koyuncu M, Coşkun M. 2016. Pharmaceutical Botany. Ankara University Faculty of Pharmacy Publications, Ankara, P: 247
  • Tekin A, Kaya E, Yazıcı S. 2012. Content analysis of cancer- related alternative medicine. Mehmet Akif Ersoy University Journal of Social Sciences Institute, 4: (6), 14-34
  • Toroğlu S, Çenet M. 2006. Usage areas of some plants used for therapeutic purposes and methods used for determination of antimicrobial activities. KSU Journal of Science and Engineering, 9: (2), 12-21
  • Unal O, Eraslan EC, Uysal I, Mohammed FS, Sevindik M, Akgul H. 2022. Biological activities and phenolic contents of Rumex scutatus collected from Turkey. Fresenius Environmental Bulletin, 31(7): 7341-7346.
  • Uysal İ, Mohammed FS, Şabik AE, Kına E, Sevindik M. 2021. Antioxidant and Oxidant status of medicinal plant Echium italicum collected from different regions. Turkish Journal of Agriculture-Food Science and Technology, 9(10): 1902- 1904.
  • Xia L, Yuangang Z, Yujie F, Liping Y, Chengbo G, Wei W, Thomas E. 2009. Antimicrobial activity and cytotoxicity towards cancer cells of Melaleuca alternifolia (tea tree) oil. Eur Food Res Technol, 229: 247–253.
APA Sönmez Gürer E, TUNC T (2022). In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. , 2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
Chicago Sönmez Gürer Eda,TUNC Tutku In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. (2022): 2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
MLA Sönmez Gürer Eda,TUNC Tutku In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. , 2022, ss.2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
AMA Sönmez Gürer E,TUNC T In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. . 2022; 2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
Vancouver Sönmez Gürer E,TUNC T In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. . 2022; 2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
IEEE Sönmez Gürer E,TUNC T "In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities." , ss.2056 - 2060, 2022. 10.24925/turjaf.v10i10.2056-2060.5481
ISNAD Sönmez Gürer, Eda - TUNC, Tutku. "In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities". (2022), 2056-2060. https://doi.org/10.24925/turjaf.v10i10.2056-2060.5481
APA Sönmez Gürer E, TUNC T (2022). In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. Türk Tarım - Gıda Bilim ve Teknoloji dergisi, 10(10), 2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
Chicago Sönmez Gürer Eda,TUNC Tutku In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. Türk Tarım - Gıda Bilim ve Teknoloji dergisi 10, no.10 (2022): 2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
MLA Sönmez Gürer Eda,TUNC Tutku In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. Türk Tarım - Gıda Bilim ve Teknoloji dergisi, vol.10, no.10, 2022, ss.2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
AMA Sönmez Gürer E,TUNC T In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. Türk Tarım - Gıda Bilim ve Teknoloji dergisi. 2022; 10(10): 2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
Vancouver Sönmez Gürer E,TUNC T In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities. Türk Tarım - Gıda Bilim ve Teknoloji dergisi. 2022; 10(10): 2056 - 2060. 10.24925/turjaf.v10i10.2056-2060.5481
IEEE Sönmez Gürer E,TUNC T "In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities." Türk Tarım - Gıda Bilim ve Teknoloji dergisi, 10, ss.2056 - 2060, 2022. 10.24925/turjaf.v10i10.2056-2060.5481
ISNAD Sönmez Gürer, Eda - TUNC, Tutku. "In Vitro of Melaleuca viridiflora Sol. ex Gaertn Plant Investigation of Antimicrobial, Anticancer and Cytotoxic Activities". Türk Tarım - Gıda Bilim ve Teknoloji dergisi 10/10 (2022), 2056-2060. https://doi.org/10.24925/turjaf.v10i10.2056-2060.5481