GC/MS analysis of Juniperus procera extract and its activity with silver nanoparticles against Aspergillus flavus growth and aflatoxins production
Tài liệu tham khảo
Ortiz, 2008, Screening study of potential lead compounds for natural products based fungicides from Juniperus lucayana, Nat. Prod. Commun., 3, 469
Tumen, 2013, Antifungal activity of heartwood extracts from three Juniperus species, BioResource, 8, 12
Abd El-Ghany, 2014, Juniperus procera as food safe additive, their antioxidant, anticancer and antimicrobial activity against some food-borne Bacteria, J. Biol. Chem. Res., 31, 668
Bakri, 2020, Efficacy of Juniperus procera constituents with silver nanoparticles against Aspergillus fumigatus and Fusarium chlamydosporum, BioNanoScience, 10, 62, 10.1007/s12668-019-00716-x
Cosentino, 2003, Composition and antimicrobial properties of Sardinian Juniperus essential oils against foodborne pathogens and spoilage microorganisms, J. Food Prot., 66, 1288, 10.4315/0362-028X-66.7.1288
Newall, 1996, Herbal medicines
Kiswii, 2014, Efficacy of selected medicinal plants from eastern kenya against Aspergillus flavus, J. Plant Sci., 2, 226, 10.11648/j.jps.20140205.22
Grayer, 1994, A survey of antifungal compounds from higher plants, Phytochemistry, 37, 19, 10.1016/0031-9422(94)85005-4
Abd El-Ghany, 2014, Eco-friendly and safe role of Juniperus procera in controlling of fungal growth and secondary metabolites, J. Plant Pathol. Microbiol., 5, 231
Abd El-Ghany, 2016, Evaluation of natural sources for repress cytotoxic Trichothecenes and Zearalenone production with using Enzyme-linked immunosorbent assay, Life Sci. J., 13, 74
Abd El-Ghany, 2017, PCR identification of Aspergillus niger with using natural additives for controlling and detection of malformins and maltoryzine production by HPLC, BioNanoSci, 7, 588, 10.1007/s12668-017-0455-6
Pankaj, 2010, In-vitro antifungal activity of different fraction of Juniperus communis leaves and bark against Aspergillus niger and Aflatoxigenic Aspergillus flavus, Int. J. Pharma Bio Sci., 1, 1
Retchkiman-Schabes, 2006, Biosynthesis and characterization of Ti/Ni bimetallic nanoparticles, Opt. Mater., 29, 95, 10.1016/j.optmat.2006.03.014
Gu, 2003, Presenting vancomycin on nanoparticles to enhance antimicrobial activities, Nano Lett., 3, 1261, 10.1021/nl034396z
Ahmad, 2005, Alginate nanoparticles as antituberculosis drug carriers: formulation development, pharmacokinetics and therapeutic potential, Ind. J. Chest Dis. Allied Sci., 48, 171
Gong, 2007, Preparation and antibacterial activity of Fe3O4@Ag nanoparticles, Nanotechnology, 18, 604, 10.1088/0957-4484/18/28/285604
Abd El-Ghany, 2013, Stachybotrys chartarum: a novel biological agent for the extracellular synthesis of silver nanoparticles and their antimicrobial activity, Indon. J. Biotechnol., 18, 75
Abd El-Ghany, 2013, Silver nanoparticles biosynthesis by Fusarium moniliforme and their antimicrobial activity against some food-borne bacteria, Mycopath, 11, 1
Abd El-Ghany, 2018, Recent advances in green synthesis of silver nanoparticles and their applications: about future directions. A review, BioNanoSci, 8, 5, 10.1007/s12668-017-0413-3
Abd El-Ghany, 2018, Molecular characterization of Trichoderma asperellum and lignocellulolytic activity on barley straw treated with silver nanoparticles, BioResources, 13, 1729
Kim, 2009, An in vitro study of the antifungal effect of silver nanoparticles on Oak Wilt Pathogen Raffaelea sp, J. Microbiol. Biotechnol., 19, 760
Mythili, 2018, Utilization of market vegetable waste for silver nanoparticle synthesis and its antibacterial activity, Mater. Lett., 225, 101, 10.1016/j.matlet.2018.04.111
Aravinthan, 2015, Sunroot mediated synthesis and characterization of silver nanoparticles and evaluation of its antibacterial and Rat splenocyte Ccytotoxic effects, Int. J. Nanomed., 11, 1977
Sengottaiyan, 2016, Green synthesis of silver nanoparticles using Solanum indicum L. and their antibacterial, splenocyte cytotoxic potentials, Res. Chem. Intermed., 42, 3095, 10.1007/s11164-015-2199-7
Khalil, 2019, Antifungal and anti-mycotoxin efficacy of biogenic silver nanoparticles produced by fusarium chlamydosporum and Penicillium chrysogenum at non-cytotoxic doses, Chemosphere, 218, 477, 10.1016/j.chemosphere.2018.11.129
Duran, 2007, Antibacterial effect of silver nanoparticles produced by fungal process on textile fabrics and their effluent treatment, J. Biomed. Nanotechnol., 3, 203, 10.1166/jbn.2007.022
Duran, 2015, Silver nanoparticles: a new view on mechanistic aspects on antimicrobial activity, Nanomed. Nanotechnol. Biol. Med., 12, 789, 10.1016/j.nano.2015.11.016
Shen, 2020, Transcriptome sequencing analysis reveals silver nanoparticles antifungal molecular mechanism of the soil fungi Fusarium solani species complex, J. Hazard. Mater., 388, 10.1016/j.jhazmat.2020.122063
Migahid, 1974, Flora of Saudi Arabia, 1
Chaudhary, 1997, vol. 1
Raper, 1973
Samson, 1981
Binder, 2007, Worldwide occurrence of mycotoxins in commodities, feeds and feed ingredients, Anim. Feed Sci. Technol., 137, 265, 10.1016/j.anifeedsci.2007.06.005
Mailafia, 2017, Isolation and identification of fungi associated with spoilt fruits vended in Gwagwalada market, Abuja, Nigeria, Vet. World, 10, 393, 10.14202/vetworld.2017.393-397
Pawar, 2007, In vitro efficacy of 75 essential oils against Aspergillus niger, Mycoses, 49, 316, 10.1111/j.1439-0507.2006.01241.x
Abdel Rasoul, 2012, Evaluation of antibacterial properties and biochemical effects of monoterpenes on plant pathogenic bacteria, Afr. J. Microbiol. Res., 6, 3667
Tsao, 2000, Antifungal activity of monoterpenoids against postharvest pathogens Botrytis cinerea and Monilinia fructicola, J. Essent. Oil Res., 12, 113, 10.1080/10412905.2000.9712057
Sokovic, 2002, Antifungal activities of selected aromatic plants growing wild in Greece, NahrungFood, 46, 317, 10.1002/1521-3803(20020901)46:5<317::AID-FOOD317>3.0.CO;2-B
Zhang, 2019, Sun. Antifungal activity of thymol and carvacrol against postharvest pathogens Botrytis cinerea, J. Food Sci. Technol., 56, 2611, 10.1007/s13197-019-03747-0
Conner, 1984, Effects of essential oils from plants on growth of food spoilage yeast, J. Food Sci., 49, 429, 10.1111/j.1365-2621.1984.tb12437.x
Nychas, 1995, Natural antimicrobial from plants, 58
Emami, 2010, Antioxidant activity of the essential oils of different parts ofJuniperus excelsa M. Bieb. subsp. excelsa and J. excelsa M. Bieb. subsp. polycarpos (K. Koch) Takhtajan (Cupressaceae), Iran. J. Pharm. Res., 10, 799
Hadaruga, 2011, Comparative study of Juniperus communis and Juniperus virginiana essential oils: TLC and GC analysis, J. Planar Chromatogr., 24, 130, 10.1556/JPC.24.2011.2.9
Barrero, 2005, Herrador. Antimicrobial activity of sesquiterpenes from the essential oil of Juniperus thurifera wood, Planta Med., 71, 67, 10.1055/s-2005-837753
Keskes, 2017, LC-MS–MS and GC-MS analyses of biologically active extracts and fractions from Tunisian Juniperus phoenice leaves, Pharm. Biol., 55, 88, 10.1080/13880209.2016.1230139
Glisic, 2007, Antimicrobial activity of the essential oil and different fractions of Juniperus communis L. and a comparison with some commercial antibiotics, J. Serb. Chem. Soc., 72, 311, 10.2298/JSC0704311G
Hossain, 2008, Chemical composition and anti-fungal properties of the essential oils and crude extracts of Orthosiphon stamineus Benth, Ind. Crops Prod., 27, 328, 10.1016/j.indcrop.2007.11.008
Schmidt, 2006, Abaco bush medicine: chemical composition of the essential oils of four aromatic medicinal plants from Abaco Island, Bahamas, J. Herbs Spices Med. Plants, 12, 43, 10.1300/J044v12n03_04
Su, 2016, Composition of the leaf essential oil of Phoebe formosana from Taiwan and its in vitro cytotoxic, antibacterial, and antifungal activities, Nat. Prod. Commun., 11, 845
Nasser, 2017, Antimicrobial, antioxidant, and cytotoxic activities of Ocimum forskolei and Teucrium yemense (Lamiaceae) essential oils, Medicines (Basel), 4, 17
Sun, 2007, D-limonene: safety and clinical applications, Altern. Med. Rev., 12, 259
Sieniawska, 2017, Natural terpenes influence the activity of antibiotics against isolated Mycobacterium tuberculosis, Med. Princ. Pract., 26, 108, 10.1159/000454680
Marina, 2011, Chemical composition and antifungal activities of essential oils from leaves, calyx and corolla of Salvia brachyodon Vandas, J. Essent. Oil Res., 17, 227
Mun, 2011, Antifungal activity of organic extracts from Juniperus virginiana heartwood against wood decay Fungi, For. Prod. J., 61, 443
Mughal, 1996, Antifungal activity of some plant extracts, Pak. J. Phytopath., 8, 46
Qasem, 1996, Fungitoxicity of weed extracts to tomato wilt pathogen (Fusarium oxysporum f. sp. lycopersici), Emir. J. Agric. Sci., 8, 103, 10.9755/ejfa.v8i1.5252
Muhammad, 1996, Additional antibacterial diterpenes from the bark of Juniperus procera, Phytother. Res., 10, 604, 10.1002/(SICI)1099-1573(199611)10:7<604::AID-PTR922>3.0.CO;2-C
El Jemli, 2018, Antifungal and insecticidal properties of Juniperus thurifera leaves, Nat. Prod. Commun., 13, 1047
Cavaleiro, 2006, Antifungal activity of Juniperus essential oils against dermatophyte, Aspergillus and Candida strains, J. Appl. Microbiol., 100, 1333, 10.1111/j.1365-2672.2006.02862.x
Kim, 2007, Antimicrobial effects of silver nanoparticles, Nanomed. Nanotechnol. Biol. Med., 3, 95, 10.1016/j.nano.2006.12.001
Ganash, 2018, Morphological and biomolecules dynamics of phytopathogenic fungi under stress of silver nanoparticles, BioNanoScience, 8, 566, 10.1007/s12668-018-0510-y
Abo-Shama, 2020, Synergistic and antagonistic effects of metal nanoparticles in combination with antibiotics against some reference strains of pathogenic microorganisms, Infect. Drug Resist., 13, 351, 10.2147/IDR.S234425
Huang, 2020, Synergistic antifungal activity of green synthesized silver nanoparticles and epoxiconazole against setosphaeria turcica, J. Nanomater., 10.1155/2020/9535432
Mahmoud, 1999, Inhibition of growth and aflatoxin biosynthesis of Aspergillus flavus by extracts of some Egyptian plants, Lett. Appl. Microbiol., 29, 334, 10.1046/j.1472-765X.1999.00636.x
Sánchez, 2005, Inhibition of growth and mycotoxin production of Aspergillus flavus and Aspergillus parasiticus by extracts of Agave species, Int. J. Food Microbiol., 98, 271, 10.1016/j.ijfoodmicro.2004.07.009
Gömöri, 2018, Effect of essential oil vapours on aflatoxin production of Aspergillus parasiticus, World Mycotoxin J., 11, 579, 10.3920/WMJ2017.2260
Gömöri, 2013, Evaluation of five essential oils for the control of food spoilage and mycotoxin producing fungi, Acta Biol. Szeged., 57, 113
Ameen, 2019, Phytosynthesis of silver nanoparticles using Mangifera indica flower extract as bioreductant and their broad-spectrum antibacterial activity, Bioorg. Chem., 88, 10.1016/j.bioorg.2019.102970
Ibrahim, 2020, Green-synthesization of silver nanoparticles using endophytic bacteria isolated from garlic and its antifungal activity against wheat Fusarium head blight pathogen Fusarium graminearum, Nanomaterials, 10, 219, 10.3390/nano10020219
Al-Zaban, 2019, Antifungal and anti-aflatoxin efficacy of mycosynthesis nanosilver particles produced by fusarium species: a physicocultural and molecular study, Dig. J. Nanomater. Biostruct., 14, 943
Hafez, 2017, Green synthesis of silver nanoparticles using Morus nigra leave extract and evaluation their antifungal potency on phytopathogenic fungi, J. Appl. Pharm. Sci., 7, 041
2015, M.S. Ayatollahi Inhibitory effects of silver nanoparticles on growth and aflatoxin B1 production by Aspergillus parasiticus, Iran. J. Med. Sci., 40, 501
Masood, 1991, The effect of aqueous plant extracts on growth and aflatoxin production by Aspergillus flavus, Lett. Appl. Microbiol., 13, 32, 10.1111/j.1472-765X.1991.tb00562.x
Abd El-Aziz, 2012, Prevention of aflatoxin contamination of maize by Aspergillus flavus through aqueous plant extracts in Saudi Arabia, Afr. J. Microbiol. Res., 6, 6931, 10.5897/AJMR12.1455
Neveen, 2015, Chemical composition and antifungal activity of Ocimum basilicum L, Essent. Oil, 3, 374