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Articles

Antioxidant and antimicrobial properties of Isodon amethystoides (Benth.) CY Wu et Hsuan leaf extracts against agriculturally important pathogenic fungi

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Pages 1690-1697 | Received 16 Aug 2019, Accepted 15 Nov 2019, Published online: 28 Nov 2019

References

  • Harley RM, Atkins S, Budantsev AL, et al. Labiatae In: Kadereit, J.W., editor. The families and genera of vascular plants, VI (Lamiales). Berlin: Springer; 2004. p. 167–275.
  • Yu XQ, Maki M, Drew BT, et al. Phylogeny and historical biogeography of Isodon (Lamiaceae): rapid radiation in south-west China and Miocene overland dispersal into Africa. Mol Phylogenet Evol. 2014;77:183–194.
  • Yang F, Cao YR, Zhang J, et al. Glaucocalyxin A improves survival in bleomycin- induced pulmonary fibrosis in mice. Biochem Bioph Res Co. 2017;482(1):147–153.
  • Zhao F, Sun M, Zhang W, et al. Comparative transcriptome analysis of roots, stems and leaves of Isodon amethystoides reveals candidate genes involved in Wangzaozins biosynthesis. BMC Plant Biol. 2018;18(1):272. [cited 2019 Sep 29]. Available from:
  • Chen ZJ, Li YS, Zhou JY, et al. Immunopharmacological effect of Rabdosia amethystoides (benth.) Hara in Mice. Chin Pharm J 2006;41:908–910.
  • Savary S, Ficke A, Aubertot JN, et al. Crop losses due to diseases and their implications for global food production losses and food security. Food Sec. 2012;4(4):519–537.
  • Mahmuti M, West JS, Watts J, et al. Controlling crop disease contributes to both food security and climate change mitigation. Int J Agr Sustain. 2009;3:189–202.
  • Almeida F, Rodrigues ML, Coelho C. The still underestimated problem of fungal diseases worldwide. Front Microbiol. 2019;10:214. [cited 2019 Sep 29].
  • Barna B, Leiter É, HegeduS N, et al. Effect of the Penicillium chrysogenum antifungal protein (PAF) on barley powdery mildew and wheat leaf rust pathogens. J Basic Microbiol. 2008;48(6):516–520.
  • Chao X, Wang C, Ju L, et al. Multiple locus genealogies and phenotypic characters reappraise the causal agents of apple ring rot in China. Fungal Divers. 2015;71:215–231.
  • Zhang X, Xi H, Lin K, et al. Aspergillus leaf spot of field bindweed (Convolvulus arvensis L.) caused by Aspergillus niger in China. SpringerPlus 2016;5(1):605. [cited 2019 Sep 29].
  • Hughes DJ, West JS, Atkins SD, et al. Effects of disease control by fungicides on greenhouse gas emissions by UK arable crop production. Pest Manag Sci. 2011;67(9):1082–1092.
  • Sayago JE, Ordoñez RM, Kovacevich LN, et al. Antifungal activity of extracts of extremophile plants from the Argentine Puna to control citrus postharvest pathogens and green mold. Postharvest Biol Tec. 2012;67:19–24.
  • Karamiosboo R, Khodaverdi M, Aliakbari F. Antibacterial effect of effective compounds of Satureja hortensis and Thymus vulgaris essential oils against Erwinia amylovora. J Agr Sci Tech 2010;12:35–45.
  • Isaac GS, Abu-Tahon MA. In vitro antifungal activity of medicinal plant extracts against Fusarium oxysporum F. Sp Lycopersici race 3 the causal agent of tomato wilt. Acta Biol Hung. 2014;65(1):107–118.
  • Duan Y, Zhao F, Li H, et al. Evaluation of aqueous chlorine dioxide for disinfecting plant explants. In Vitro Cell Dev Biol-Plant. 2016;52(1):38–44.
  • Zhang R, Zeng Q, Deng Y, et al. Phenolic profiles and antioxidant activity of litchi pulp of different cultivars cultivated in Southern China. Food Chem. 2013;136(3–4):1169–1176.
  • Duan Y, Su Y, Chao E, et al. Callus-mediated plant regeneration in Isodon amethystoides using young seedling leaves as starting materials. Plant Cell Tiss Organ Cult. 2019;136(2):247–253.
  • NCCLS-National Committee for Clinical Laboratory Standards. 2003. Performance Standards for Antimicrobial Susceptibility Testing: eleventh Informational Supplement. Document M100-S11 National Committee for Clinical Laboratory Standard, Wayne, PA, USA.
  • Mihajilov-Krstev T, Radnovic D, Kitic D, et al. Antimicrobial activity of Satureja Hortensis L. essential oil against pathogenic microbial strains. Biotechnol Biotec Eq. 2009;23(4):1492–1496.
  • Rebey IB, Bourgou S, Debez IBS, et al. Effects of extraction solvents and provenances on phenolic contents and antioxidant activities of cumin (Cuminum cyminum L.) seeds. Food Bioprocess Technol. 2012;5:2827–2836.
  • Kchaou W, Abbès F, Blecker C, et al. Effects of extraction solvents on phenolic contents and antioxidant activities of Tunisian date varieties (Phoenix dactylifera L.). Ind Crop Prod. 2013;45:262–269.
  • Ngo TV, Scarlett CJ, Bowyer MC, et al. Impact of different extraction solvents on bioactive compounds and antioxidant capacity from the root of Salacia chinensis L. J Food Quality. 2017;1:1–8.
  • Singariya P, Kumar P, Mourya K. Comparative bioactivity of dhaman grass root extracts in different polar solvents against plant and human pathogens. Int J Green Pharm. 2012;6(3):248. [cited 2019 Sep 29].
  • Mohammadi M, Alaei M, Bajalan I. Phytochemical screening, total phenolic and flavonoid contents and antioxidant activity of Anabasis setifera and Salsola tomentosa extracted with different extraction methods and solvents. Orient Pharm Exp Med. 2016;16(1):31–35.
  • Dirar AI, Alsaadi DHM, Wada M, et al. Effects of extraction solvents on total phenolic and flavonoid contents and biological activities of extracts from Sudanese medicinal plants. S Afr J Bot. 2019;120:261–267.
  • Loff JN. Antibacterial activity of Marula (Sclerocarya birrea (A. rich.) Hochst. subsp. caffra (Sond.) Kokwaro) (Anacardiaceae) bark and leaves. J Ethnopharmacol 2001;76(3):305–308.
  • Famuyide IM, Aro AO, Fasina FO, et al. Antibacterial and antibiofilm activity of acetone leaf extracts of nine underinvestigated South African Eugenia and Syzygium (Myrtaceae) species and their selectivity indices. BMC Complem Altern M 2019;19:141. [cited 2019 Sep 29].
  • Jovtchev G, Stankov A, Georgieva A, et al. Cytotoxic and genotoxic potential of Bulgarian Rosa alba L. essential oil - in vitro model study. Biotechnol Biotec Eq. 2018;32(2):513–519.
  • Fayemi PO, Ozturk I, Kaan D, et al. Bioactivities of phytochemicals in Callistemon citrinus against multi-resistant foodborne pathogens, alpha glucosidase inhibition and MCF-7 cancer cell line. Biotechnol Biotec Eq. 2019;33(1):764–778.
  • Bandonienė D, Murkovic M, Pfannhauser W, et al. Detection and activity evaluation of radical scavenging compounds by using DPPH free radical and on-line HPLC-DPPH methods. Eur Food Res Technol. 2002;214(2):143–147.
  • Kedare SB, Singh RP. Genesis and development of DPPH method of antioxidant assay. J Food Sci Technol. 2011;48(4):412–422.
  • Li W, Hosseinian FS, Tsopmo A, et al. Evaluation of antioxidant capacity and aroma quality of breast milk. Nutrition 2009;25(1):105–114.
  • Mileva M, Kusovski V, Krastev D, et al. Chemical composition, in vitro antiradical and antimicrobial activities of Bulgarian Rosa alba L. essential oil against some oral pathogens. Int J Curr Microbiol App Sci 2014;3:11–20.
  • Michiels JA, Kevers C, Pincemail J, et al. Extraction conditions can greatly influence antioxidant capacity assays in plant food matrices. Food Chem. 2012;130(4):986–993.
  • Mabrouki H, Duarte CMM, Akretche DE. Estimation of total phenolic contents and in vitro antioxidant and antimicrobial activities of various solvent extracts of Melissa officinalis L. Arab J Sci Eng. 2018;43(7):3349–3357.
  • Li GY, Wang YL, Xu ZP, et al. Studies on the chemical constituents of Isodon amethystoides (Ben-th) Cy Wu et Hsuan. Acta Pharm Sin 1981;9:667–671.
  • Sun HD, Xu Yl, Jiang B. Diterpenoids from Isodon Species. Beijing: Science Press; 2001.
  • Kaye KS, Gales AC, Dubourg G. Old antibiotics for multidrug-resistant pathogens: from in vitro activity to clinical outcomes. Int J Antimicrob Agents. 2017;49(5):542–548.
  • Liu F, Zhu XH, Wang Q. The inhibition of Rabdosia excisa on oral bacteria. Pharm J Chin PLA 2010;26:421–423.
  • Mo XL, Qiu WF, Huang SS, et al. Antibacterial and antifungal activities of different plant resources of herba Isodon serra. Mod Chin Med 2016;18:980–984.