Plant Protect. Sci., 2023, 59(4):303-316 | DOI: 10.17221/17/2023-PPS

Overview of the control of plant fungal pathogens by natural products derived from medicinal plantsReview

Ming Jiang1, Tong Wang1, 2, Jesus Simal-Gandara3, Chandra Nayaka Siddaiah4, Xiaofeng Dai2,5, Jieyin Chen2,5, Dan Wang2, Zhiqiang Kong2
1 College of Life Science and Technology, Mudanjiang Normal University, Mudanjiang, P.R. China
2 The State Key Laboratory for Biology of Plant Diseases and Insect Pests, Institute of Plant Protection, Chinese Academy of Agricultural Sciences, Beijing, P.R. China
3 Nutrition and Bromatology Group, Department of Analytical Chemistry and Food Science, Faculty of Science, Universidade de Vigo, Ourense, Spain
4 Department of Studies in Biotechnology, University of Mysore, Manasagangotri, Mysore, India
5 Western Agricultural Research Center, Chinese Academy of Agricultural Sciences, Changji, P. R. China

Chemical fungicides can cause drug resistance of plant pathogenic fungi, environmental pollution, and potential threats to humans and animals. Therefore, developing low-toxicity, high-efficient and environment-friendly biological control products is critical for green prevention, controlling plant fungal diseases, and maintaining ecological balance. Biocontrol research mainly includes the following aspects: antagonistic microorganisms, fungicidal proteins, RNA interference techniques and botanical fungicides. Significantly, natural products extracted from medicinal plants are valuable repertoire for inhibiting plant fungal diseases. This review systematically reviewed the research advances of using natural products from medicinal plants to inhibit plant pathogenic fungi, including the types of natural products, extraction methods, and antifungal mechanisms. The further prospects for the study and application, which provide the reference for botanical fungicide development and practical application in preventing and controlling plant fungal disease, were also discussed.

Keywords: medicinal plants; natural products; fungal disease; biological control; botanical fungicide

Received: February 27, 2023; Revised: July 24, 2023; Accepted: August 1, 2023; Prepublished online: October 4, 2023; Published: November 28, 2023  Show citation

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Jiang M, Wang T, Simal-Gandara J, Siddaiah CN, Dai X, Chen J, et al.. Overview of the control of plant fungal pathogens by natural products derived from medicinal plants. Plant Protect. Sci. 2023;59(4):303-316. doi: 10.17221/17/2023-PPS.
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References

  1. Aniszewski T. (2015): Alkaloids. Joensuu: Elsevier.
  2. Anthony E., Patrick F., Sébastien D., Patrick S. (2015): Tangential electrokinetic characterization of hollow fiber membranes: effects of external solution on cell electric conductance and streaming current. Journal of Membrane Science, 496: 293-300. Go to original source...
  3. Beoletto V.G., de las Mercedes Oliva M., Marioli J.M., Carezzano M.E., Demo M.S. (2016): Chapter 14 - Anti-microbial Natural Products Against Bacterial Biofilms. Antibiotic Resistance: 291-307. Go to original source...
  4. Buldini P.L., Ricci L., Sharma J.L. (2002): Recent applications of sample preparation techniques in food analysis. Journal of Chromatography A, 975: 47-70. Go to original source... Go to PubMed...
  5. Cao Y. (2019): Study on biological activity of parthenolide against Xanthomonas oryzae pv. oryzae and its application [Master Thesis]. Nanjing Agricultural University, Nanjing. (in Chinese)
  6. Campaniello D., Corbo M.R., Sinigaglia M. (2010): Antifungal activity of eugenol against Penicillium, Aspergillus, and Fusarium species. Journal of Food Protection, Go to original source... Go to PubMed...
  7. 73: 1124-1128.
  8. Cascaes M.M., Carneiro O.D.S., Nascimento L.D.D., de Moraes Â.A.B., de Oliveira M.S., Cruz J.N., Guilhon G.M.S.P., Andrade E.H.A. (2021): Essential oils from annonaceae species from brazil: a systematic review of their phytochemistry, and biological activities. International Journal of Molecular Sciences, 22: 12140. doi: 10.3390/ijms222212140 Go to original source... Go to PubMed...
  9. Cefali L.C., Ataide J.A., Fernandes A.R., Sousa I.M.O., Gonçalves F.C.D.S., Eberlin S., Dávila J.L., Jozala A.F., Chaud M.V., Sanchez-Lopez E., Marto J., d'Ávila M.A., Ribeiro H.M., Foglio M.A., Souto E.B., Mazzola P.G. (2019): Flavonoid-enriched plant-extract-loaded emulsion: a novel phytocosmetic sunscreen formulation with antioxidant properties. Antioxidants (Basel), 8: 443. doi: 10.3390/antiox8100443 Go to original source... Go to PubMed...
  10. Chen L., Zhou W., Wu L., Gao M.L., Hou T.P., Tao K. (2013): Inhibitory effect of extract from twelve Chinese medical herbs and two active quaternary protoberberine alkaloid from Coptis chinensis Franch. Asian Journal of Chemistry, 25: 9667-9671. Go to original source...
  11. Chen Y.H., Lu M.H., Guo D.S., Zhai Y.Y., Miao D., Yue J.Y., Yuan C.H., Zhao M.M., An D.R. (2019): Antifungal effect of magnolol and honokiol from Magnolia officinalis on Alternaria alternata causing tobacco brown spot. Molecules, 24: 2140. doi: 10.3390/molecules24112140 Go to original source... Go to PubMed...
  12. Chen Y.J., Ma K.Y., Du S.S., Zhang Z.J., Wu T.L., Sun Y., Liu Y.Q., Yin X.D., Zhou R., Yan Y.F., Wang R.X., He Y.H., Chu Q.R., Tang C. (2021): Antifungal exploration of quinoline derivatives against phytopathogenic fungi inspired by quinine alkaloids. Journal of Agricultural and Food Chemistry, 69: 12156-12170. Go to original source... Go to PubMed...
  13. Chuo S.C., Nasir H.M., Mohd-Setapar S.H., Mohamed S.F., Ahmad A., Wani W.A., Muddassir M., Alarifi A. (2020): A glimpse into the extraction methods of active compounds from plants. Critical Reviews in Analytical Chemistry, Go to original source... Go to PubMed...
  14. 52: 667-696.
  15. Dai J., Mumper R.J. (2010): Plant Phenolics: Extraction, Analysis and Their Antioxidant and Anti-cancer Properties. Molecules, 15: 7313-7352. Go to original source... Go to PubMed...
  16. Das S., Nadar S.S., Rathod V.K. (2021): Integrated strategies for enzyme assisted extraction of bioactive molecules: A review. International Journal of Biological Macromolecules, 191: 899-917. Go to original source... Go to PubMed...
  17. de Lima Cherubim D.J., Buzanello Martins C.V., Oliveira Fariña L., da Silva de Lucca R.A. (2020): Polyphenols as natural antioxidants in cosmetics applications. Journal of Cosmetic Dermatology, 19: 33-37. Go to original source... Go to PubMed...
  18. Dėnė L., Lau¾ikė K., Rasiukevièiūtė N., Chrapaèienė S., Brazaitytė A., Vir¹ilė A., Va¹takaitė-Kairienė V., Miliau-skienė J., Sutulienė R., Samuolienė G., Valiu¹kaitė A. (2023): Defense response of strawberry plants against Botrytis cinerea influenced by coriander extract and essential oil. Frontiers in Plant Science, 13: 1098048. doi: 10.3389/fpls.2022.1098048 Go to original source... Go to PubMed...
  19. Dethoup T., Songkumarn P., Rueangrit S., Suesa-ard S., Kaewkrajay C. (2018): Fungicidal activity of Thai medicinal plant extracts against Alternaria brassicicola causing black spot of Chinese kale. European Journal of Plant Pathology, 152: 157-167. Go to original source...
  20. Delazar A., Nahar L., Hamedeyazdan S., Sarker S.D. (2012): Microwave-assisted extraction in natural products isolation. Methods in Molecular Biology, 864: 89-115. Go to original source... Go to PubMed...
  21. Dudai N.O., Larkov U., Ravid E., Putievsky E., Lewinsohn E. (2001): Developmental control of monoterpene content and composition in Micromeria fruicosa (L.) Druce. Annals of Botany, 88: 349-354. Go to original source...
  22. Ekiert H.M., Szopa A. (2022): Biological activities of natural products II. Molecules, 27: 1519. doi: 10.3390/molecules27051519 Go to original source... Go to PubMed...
  23. Ekiert H.M., Szopa A. (2020): Biological activities of natural products. Molecules, 25: 5769. doi: 10.3390/molecules25235769 Go to original source... Go to PubMed...
  24. El-Zahar K.M., Al-Jamaan M.E., Al-Mutairi F.R., Al-Hudiab A.M., Al-Einzi M.S., Mohamed A.A. (2022): Antioxidant, antibacterial, and antifungal activities of the ethanolic extract obtained from berberis vulgaris roots and leaves. Molecules, 27: 6114. doi: 10.3390/molecules27186114. Go to original source... Go to PubMed...
  25. Faria T.D.J., Ferreira R.S., Yassumoto L., Souza J.R.P.D., Ishikawa N.K., Barbosa A.D.M. (2006): Antifungal activity of essential oil isolated from Ocimum gratissimum L. (eugenol chemotype) against phytopathogenic fungi. Brazilian Archives of Biology and Technology, 49: 867-871. Go to original source...
  26. Fu W.H., Tian G.R., Pei Q.H., Ge X.Z., Tian P.F. (2017): Evaluation of berberine as a natural compound to inhibit peach brown rot pathogen Monilinia fructicola. Crop Protection, 91: 20-26. Go to original source...
  27. García-Lafuente A., Guillamón E., Villares A., Rostagno M.A., Martínez J.A. (2009): Flavonoids as anti-inflammatory agents: implications in cancer and cardiovascular disease. Inflammation Research, 58: 537-552. Go to original source... Go to PubMed...
  28. Gawe³ S., Wardas M., Niedworok E., Wardas P. (2004): Dialdehyd malonowy (MDA) jako wska¼nik procesów peroksydacji lipidów w organizmie [Malondialdehyde (MDA) as a lipid peroxidation marker]. Wiad Lek, 57: 453-455. (in Polish)
  29. Geng H., Yu X., Lu A., Cao H., Zhou B., Zhou L., Zhao Z. (2016): Extraction, chemical composition, and antifungal activity of essential oil of bitter almond. International Journal of Molecular Sciences, 17: 1421. doi: 10.3390/ijms17091421 Go to original source... Go to PubMed...
  30. Ghasemi G., Alirezalu A., Ishkeh S.R., Ghosta Y. (2020): Phytochemical properties of essential oil from Artemisia sieberi Besser (Iranian accession) and its antioxidant and antifungal activities. Natural Product Research, 35: 4154-4158. Go to original source... Go to PubMed...
  31. Graf S. (2017): Characterisation of metrafenone and succinate dehydrogenase inhibitor resistant isolates of the grapevine powdery mildew erysiphe necator [Ph.D. Thesis]. Technische Universität Kaiserslautern, Kaiserslautern, Germany.
  32. Hamad Y.K., Abobakr Y., Salem M.Z.M., Ali H.M., Al-Sarar A.S., Al-Zabib A.A. (2019): Activity of plant extracts/essential oils against three plant pathogenic fungi and mosquito larvae: GC/MS analysis of bioactive compounds. BioResources, 14: 4489-4511. Go to original source...
  33. He F., Shi Y.J., Zhao Q., Zhao K.J., Cui X.L., Chen L.H., Yang H.B., Zhang F., Mi J.X., Huang J.L., Wan X.Q. (2021): Genome-wide investigation and expression profiling of polyphenol oxidase (PPO) family genes uncover likely functions in organ development and stress responses in Populus trichocarpa. BMC Genomics, 22: 731. doi: 10.1186/s12864-021-08028-9 Go to original source... Go to PubMed...
  34. He J.G., Dou M.L., Xie J., Hou S., Liu Q.F., Hu Z., Zhang B.J., Zheng S., Yin F.M., Zhang M., Xie C.P., Lu D.; Ding X.F., Zhu C.H., Sun R.F. (2021): Discovery of zeylenone from Uvaria grandiflora as a potential botanical fungicide. Pest Management Science, 77: 5407-5417. Go to original source... Go to PubMed...
  35. Hoshino Y., Villanueva L. (2023): Four billion years of microbial terpenome evolution. FEMS Microbiology Reviews, 47: fuad008. doi: 10.1093/femsre/fuad008 Go to original source... Go to PubMed...
  36. Isah T. (2019): Stress and defense responses in plant secondary metabolites production. Biological Research, 52: 39. doi: 10.1186/s40659-019-0246-3 Go to original source... Go to PubMed...
  37. Jian J.Y., Fan Y.M., Liu Q., Jin J., Yuan C.M., Gu W., Hu Z.X., Huang L.J., Hao X.J. (2023): Quinoline alkaloids from the roots of Orixa japonica with the anti-pathogenic fungi activities. Chemistry & Biodiversity, 20: e202201097. doi: 10.1002/cbdv.202201097 Go to original source... Go to PubMed...
  38. Jung D.H., Nahar J., Mathiyalagan R., Rupa E.J., Ramadhania Z.M., Han Y., Yang D.C., Kang S.C. (2022): Focused review on molecular signalling mechanisms of ginsenosides on anti-lung cancer and anti-inflammatory activities. Anti-Cancer Agents in Medicinal Chemistry, 23: 3-14. Go to original source... Go to PubMed...
  39. Khambay B.P., Batty D., Jewess P.J., Geoffrey L.B., Derek W.H. (2003): Mode of action and pesticidal activity of the natural product dunnione and of some analogues. Pest Management Science, 59: 174-182. Go to original source... Go to PubMed...
  40. Kim D.S., Goo Y.M., Cho J., Lee J., Lee D.Y., Sin S.M., Kil Y.S., Jeong W.M., Ko K.H., Yang K.J., Kim Y.G., Kim S.G., Kim K., Kim Y.J., Kim J.K., Shin E.C. (2018): Effect of Volatile Organic Chemicals in Chrysanthemum indicum Linné on Blood Pressure and Electroencephalogram. Molecules, 23: 2063. doi: 10.3390/molecules23082063 Go to original source... Go to PubMed...
  41. Knogge W. (1996): Fungal infection of plants. Plant Cell, Go to original source... Go to PubMed...
  42. 8: 1711-1722.
  43. Kong W.B., Huo H.R., Gu Y., Cao Y.Q., Wang J.L., Liang J.Y., Niu S.Q. (2022): Antifungal activity of camphor against four phytopathogens of Fusarium. South African Journal of Botany, 148: 437-445. Go to original source...
  44. Kowalska H., Czajkowska K., Cichowska J., Lenart A. (2017): What's new in biopotential of fruit and vegetable by-products applied in the food processing industry. Trends in Food Science & Technology, 67: 150-159. Go to original source...
  45. Lagrouh F., Dakka N., Bakri Y. (2017): The antifungal activity of Moroccan plants and the mechanism of action of secondary metabolites from plants. Journal de Mycologie Médicale, 27: 303-311. Go to original source... Go to PubMed...
  46. Lebeda A., Jancova D., Luhova L. (1999): Enzymes in fungal plant pathogenesis. Phyton - Annales rei Botanicae,
  47. 39: 51-56.
  48. Li A.P., Zhao Z.M., Zhang S.Y., Zhang Z.J., Shi Y.P. (2021a): Fungicidal activity and mechanism of action of glabridin from Glycyrrhiza glabra L. International Journal of Molecular Sciences, 22: 10966. doi: 10.3390/ijms222010966 Go to original source... Go to PubMed...
  49. Li J., Tao L.H., Ye M., W K.B., W W., H C.X., F L.M., S F.W. (2021b): Synergistic antifungal activity of natural phenolic compounds and two chemical fungicides [J]. Chinese Agricultural Science Bulletin, 37: 150-157. (in Chinese)
  50. Lichman B.R. (2021): The scaffold-forming steps of plant alkaloid biosynthesis. Natural Product Reports, 38: 103-129. Go to original source... Go to PubMed...
  51. Liu L., Wang X., Zhang P.G., Shen L.W., Yang L. (2020): Inhibition of total flavonoids in cirsium japonicum DC on growth physiological indexes and control effect of Fusarium oxysporum f. sp. Melonis in Field. Journal of Plant Protection, 47: 628-636. (in Chinese)
  52. Liu X.M., Yan D.D., Ouyang C.B., Yang D.S., Wang Q.X., Li Y., Guo M.X., Cao A.C. (2017a): Oils extracted from Eupatorium adenophorum leaves show potential to control Phythium myriotylum in commercially-grown ginger. Plos One, 12: e0176126. doi: 10.1371/journal.pone.0176126 Go to original source... Go to PubMed...
  53. Liu X.M., Ouyang C.B., Wang Q.X., Li Y., Yan D., Yang D., Fang W. (2017b): Effects of oil extracts of Eupatorium adenophorum on Phytophthora capsici and other plant pathogenic fungi in vitro. Pesticide Biochemistry and Physiology, 140: 90-96. Go to original source... Go to PubMed...
  54. Liu, Y.X. (2017): Purification of alkaloids from Cynanchum komarovii and preliminary study on inhibitory activity against Fusarium Oxysporum Schlecht [Master Thesis]. North Minzu University, Ningxia. (In Chinese)
  55. Luo J., Wang H.F., Xu F., Wang J., Chi Z.Y., Xie K.X., Wu C.H., Shao X.F. (2020): Inhibitory effect of flavonoids from Sedum aizoon L. Against Penicillium italicum on Citrus. Journal of Nuclear Agricultural Sciences, 34: 1737-1745. (in Chinese)
  56. Macías-Cortés E., Gallegos-Infante J.A., Rocha-Guzmán N.E., Moreno-Jiménez M.R., Cervantes-Cardoza V., Castillo-Herrera G.A., González-Laredo R.F. (2022): Antioxidant and anti-inflammatory polyphenols in ultrasound-assisted extracts from salvilla (Buddleja scordioides Kunth). Ultrasonics Sonochemistry, 83: 105917. doi: 10.1016/j.ultsonch.2022.105917 Go to original source... Go to PubMed...
  57. Ma D.Y., Ji D.C., Liu J.L., Xu Y., Chen T., Tian S.P. (2020): Efficacy of methyl thujate in inhibiting Penicillium expansum growth and possible mechanism involved. Postharvest Biology and Technology, 161: 111070. doi: 10.1016/j.postharvbio.2019.111070 Go to original source...
  58. Mahato N., Sharma K., Koteswararao R., Sinha M., Baral E., Cho M.H. (2019): Citrus essential oils: Extraction, authentication and application in food preservation. Critical Reviews in Food Science and Nutrition, 59: 611-625. Go to original source... Go to PubMed...
  59. Manzoor M.F., Ahmad N., Ahmed Z., Siddique R., Zeng X.A., Rahaman A., Muhammad Aadil R., Wahab A. (2019): Novel extraction techniques and pharmaceutical activities of luteolin and its derivatives. Journal of Food Biochemistry, 43: e12974. doi: 10.1111/jfbc.12974 Go to original source... Go to PubMed...
  60. Miyamoto T., Hayashi K., Ogawara T. (2020): First report of the occurrence of multiple resistance to Flutianil and Pyriofenone in field isolates of Podosphaera xanthii, the causal fungus of cucumber powdery mildew. European Journal of Plant Pathology, 156: 953-963. Go to original source...
  61. Nadar S.S., Rao P., Rathod V.K. (2018): Enzyme assisted extraction of biomolecules as an approach to novel extraction technology: A review. Food Research International, Go to original source...
  62. 108: 309-330.
  63. Ngo M.T., Han J.W., Nguyen M.V., Dang Q.L., Kim H., Choi G.J. (2020): Antifungal properties of natural products from Pterocarya tonkinensis against phytopathogenic fungi. Pest Management Science. 77: 1864-1872. Go to original source...
  64. Olea A.F., Bravo A., Martínez R., Thomas M., Sedan C., Espinoza L., Carrasco H. (2019): Antifungal activity of eugenol derivatives against Botrytis cinerea. Molecules, 24: 1239. doi: 10.3390/molecules24071239 Go to original source... Go to PubMed...
  65. Omar H.S., Abd El-Rahman S.N., AlGhannam S.M., Reyad N.E.-H.A., Sedeek M.S. (2021): Antifungal evaluation and molecular docking studies of Olea europaea leaf extract, Thymus vulgaris and boswellia carteri essential oil as prospective fungal inhibitor candidates. Molecules, 26: 6118. doi: 10.3390/molecules26206118 Go to original source... Go to PubMed...
  66. Ons L., Bylemans D., Thevissen K., Cammue B.P.A. (2020): Combining Biocontrol Agents with Chemical Fungicides for Integrated Plant Fungal Disease Control. Microorganisms, 8: 1930. doi: 10.3390/microorganisms8121930 Go to original source... Go to PubMed...
  67. Oufensou S., Balmas V., Azara E., Fabbri D.. Dettori M.A., Schüller C., Zehetbauer F., Strauss J., Delogu G., Migheli Q. (2020): Naturally occurring phenols modulate vegetative growth and deoxynivalenol biosynthesis in Fusarium graminearum. ACS Omega, 5: 29407-29415. Go to original source... Go to PubMed...
  68. Pan J.L. (2018): Antifungal mechanism of matrine to Botryosphaeria dothidea [Doctor Thesis]. Northeast Forestry University, Haerbin. (in Chinese)
  69. Pei Q.H., Li Y., Ge X.Z., Tian P.F. (2019): Multipath effects of berberine on peach brown rot fungus Monilinia fructicola. Crop Protection, 116: 92-100. Go to original source...
  70. Peng L.Q., Cao J. (2021): Modern microextraction techniques for natural products. Electrophoresis, 42: 219-232. Go to original source... Go to PubMed...
  71. Peng X, Zhang Y.A., Wan C.P., Gan Z.Y., Chen C.Y., Chen J.Y. (2022): Antofine triggers the resistance against Penicillium italicum in ponkan fruit by driving AsA-GSH cycle and ROS-Scavenging system. Frontiers in Microbiology, 13: 874430. doi: 10.3389/fmicb.2022.874430 Go to original source... Go to PubMed...
  72. Poloni N.M., Carvalho G., Vicentini S.N.C., Dorigan A.F., Maciel J.L.N., McDonald B.A., Moreira S.I., Hawkins N.J., Fraaije B.A., Kelly D.E., Kelly S.L., Ceresini P.C. (2020): Widespread distribution of resistance to triazole fungicides in Brazilian populations of the wheat blast pathogen. Plant Pathology, 70: 436-448. Go to original source...
  73. Rani L., Thapa K., Kanojia N., Sharma N., Singh S., Grewal A.S., Srivastav A.L., Kaushal J. (2021): An extensive review on the consequences of chemical pesticides on human health and environment. Journal of Cleaner Production, 238: 124657. doi: 10.1016/j.jclepro.2020.124657 Go to original source...
  74. Rongai D., Pulcini P., Pesce B., Milano F. (2015): Antifungal activity of some botanical extracts on Fusarium oxysporum. Open Life Sciences, 10: 409-416. Go to original source...
  75. Sabarwal A., Kumar K., Singh R.P. (2018): Hazardous effects of chemical pesticides on human health-Cancer and other associated disorders. Environmental Toxicology and Pharmacology, 63: 103-114. Go to original source... Go to PubMed...
  76. Saini R.K., Prasad P., Shang X., Keum Y-S. (2021): Advances in lipid extraction methods-A review. International Journal of Molecular Sciences, 22: 13643. doi: 10.3390/ijms222413643 Go to original source... Go to PubMed...
  77. Saputri D.D., Utami A.W.A. (2020): In vitro assays to investigate ethanol extract of Ipomoea batatas leaves as potential biofungicide for controlling Fusarium. IOP Conference Series Earth and Environmental Science, 486: 012031. doi: 10.1088/1755-1315/468/1/012031 Go to original source...
  78. Sebaa N.A., Zatla A.T., Dib M.E.A., Tabti B., Costa J., Muselli A. (2019): Antifungal activity of essential oil and hydrosol extract of Ballota nigra L. and their protective effects against the black rot of tomatoes. Current Nutrition & Food Science, 15: 662-671. Go to original source...
  79. Sernaite L., Rasiukeviciute N., Dambrauskiene E., Viskelis P., Valiuskaite A. (2020): Biocontrol of strawberry pathogen Botrytis cinerea using plant extracts and essential oils. Zemdirbyste-Agriculture, 107: 147-152. Go to original source...
  80. Shamsudin N.F., Ahmed Q.U., Mahmood S., Ali Shah S.A., Khatib A., Mukhtar S., Alsharif M.A., Parveen H., Zakaria Z.A. (2022): Antibacterial effects of flavonoids and their structure-activity relationship study: A comparative interpretation. Molecules, 27: 1149. doi: 10.3390/molecules27041149 Go to original source... Go to PubMed...
  81. Shen Q., Si H.Q. (2009): Research progress of the extraction methods of plant essential oils abroad. Science and Technology of Food Industry, 30: 349-351. (in Chinese)
  82. Silva A.V., Yerena L.R., Necha L.L.B. (2021): Chemical profile and antifungal activity of plant extracts on Colletotrichum spp. isolated from fruits of Pimenta dioica (L.) Merr. Pesticide Biochemistry and Physiology, 179: 104949. doi: 10.1016/j.pestbp.2021.104949 Go to original source... Go to PubMed...
  83. Singh V., Pal A., Darokar M.P. (2021): Glabridin synergy with norfloxacin induces ROS in multidrug resistant Staphylococcus aureus. Journal of General and Applied Microbiology, 67: 269-272. Go to original source... Go to PubMed...
  84. Sparks T.C., Hahn D.R., Garizi N.V. (2017): Natural products, their derivatives, mimics and synthetic equivalents: role in agrochemical discovery. Pest Management Science, Go to original source... Go to PubMed...
  85. 73: 700-715.
  86. Sridhar A., Ponnuchamy M., Kumar P.S., Kapoor A., Vo D.N., Prabhakar S. (2021): Techniques and modeling of polyphenol extraction from food: a review. Environmental Chemistry Letters, 19: 3409-3443. Go to original source... Go to PubMed...
  87. Tan Z.Y., Deng J., Ye Q.X., Zhang Z.F. (2022): The antibacterial activity of natural-derived flavonoids. Current Topics in Medicinal Chemistry, 22: 1009-1019. Go to original source... Go to PubMed...
  88. Tu Y. (2011): The discovery of artemisinin (qinghaosu) and gifts from Chinese medicine. Nature Medicine, Go to original source...
  89. 17: 1217-1220.
  90. Uwineza P.A., Wa¶kiewicz A. (2020): Recent advances in supercritical fluid extraction of natural bioactive compounds from natural plant materials. Molecules, 25: 3847. doi: 10.3390/molecules25173847 Go to original source... Go to PubMed...
  91. Wang B., Liu F., Li, Q., Xu S., Zhao X., Xue P., Feng X. (2019a): Antifungal activity of zedoary turmeric oil against Phytophthora capsici through damaging cell membrane. Pesticide Biochemistry and Physiology, 159 :59-67. Go to original source... Go to PubMed...
  92. Wang H. (2020): Study on the anti-microbial ingredients of Picrasma quassioides [Master Thesis]. Northwest Agriculture and Forestry University, Xianyang. (in Chinese)
  93. Wang K.B., Wu W., Wang Q., Yin M., Zhang X.F., Yang C.D., Fu Z.C., Li Q.X., Pu J., Huang J.M., He C.X. (2020): Antifungal activity against Rhizoctonia solani: Mixtures of phenolic monoterpenes and difenoconazole or thifluzamide. Chinese Agricultural Science Bulletin, 36: 80-84. (in Chinese)
  94. Wang X.X, Han X.B., Wang S., Wang Y.B., Wang P., Zhao Z.L., Qin H.M., Jing C.L., Liang C. (2023): Extraction of honokiol from Artemisia argyi and in vitro and in vivo investigation of its antifungal activity. Natural Product Research, Go to original source...
  95. 37: 651-656.
  96. Wang X.Y., Zhang X.M, Sun M., Wang L., Zou Y.Y., Fu L., Han C.Y., Li A.Q., Li L.M., Zhu C.Y. (2022): Impact of vanillin on postharvest disease control of apple. Frontiers in Microbiology, 13: 979737. doi: 10.3389/fmicb.2022.979737 Go to original source... Go to PubMed...
  97. Wang Y.L., Li J.D., Kong X.P. (2019b): Ultrasound-assisted extraction and antibacterial activity of total flavonoids from Artemisia argyi. Food Science and Technology, 44: 204-207. (In Chinese)
  98. Wen C.T., Zhang J.X., Zhang H.H., Dzah C.S., Zandile M., Duan Y.Q., Ma H., Luo X.P. (2018): Advances in ultrasound assisted extraction of bioactive compounds from cash crops - A review. Ultrasonics Sonochemistry, 48: 538-549. Go to original source... Go to PubMed...
  99. Wen K.C., Chen H.C., Chang C.Y., Lin Y.T., Hsiu S.L., Chiang H.M. (2011): Development of an assay method for natural products containing cosmetics (II)-licorice. Journal of Food and Drug Analysis, 19: 230-237, 242. Go to original source...
  100. Xu S., Zhao X.Z., Zhou Q., Chen Y.C., Li L.W., Wei S.H. (2020): Extraction, isolation, and derivatisation of flavonoids from root of Glycyrrhiza uralensis and study on their anti-microbial activities. Journal of Plant Resources and Environment, 29: 32-41. (in Chinese)
  101. Xue H., Jiang Y., Zhao H., Köllner T.G., Chen S., Chen F., Chen F. (2019): Characterisation of composition and antifungal properties of leaf secondary metabolites from thirteen cultivars of Chrysanthemum morifolium Ramat. Molecules, 24: 4202. doi: 10.3390/molecules24234202 Go to original source... Go to PubMed...
  102. Xue J.C., Yuan S., Meng H., Hou X.T., Li J., Zhang H.M., Chen L.L., Zhang C.H., Zhang G.Z. (2023): The role and mechanism of flavonoid herbal natural products in ulcerative colitis. Biomedicine & Pharmacotherapy, 158: 114086. doi: 10.1016/j.biopha.2022.114086 Go to original source... Go to PubMed...
  103. Yan Y.F. (2021): Evaluation of antifungal activity of natural honokiol and isoxanthohumol, and synergistic effects of magnolol and honokiol [Master Thesis]. Lanzhou University, Gansu. (in Chinese)
  104. Yan Y.F., Wu T.L., Du S.S., Wu Z.R., Hu Y.M., Zhang Z.J., Zhao W.B., Yang C.J., Liu Y.Q. (2021): The antifungal mechanism of isoxanthohumol from Humulus lupulus Linn. International Journal of Molecular Sciences, 22: 10853. doi: 10.3390/ijms221910853 Go to original source... Go to PubMed...
  105. Yan Y.F., Yang C.J., Shang X.F., Zhao Z.M., Liu Y.Q., Zhou R., Liu H., Wu T.L., Zhao W.B., Wang Y.L., Hu G.F., Qin F., He Y.H., Li H.X., Du S.S. (2020): Bioassay-guided isolation of two antifungal compounds from Magnolia officinalis, and the mechanism of action of honokiol. Pesticide Biochemistry and Physiology, 170: 104705. doi: 10.1016/j.pestbp.2020.104705 Go to original source... Go to PubMed...
  106. Yang C.J., Gao Y., Du K.Y., Luo X.Y. (2020): Screening of 17 Chinese medicine plants against phytopathogenic fungi and active component in Syzygium aromaticum. Journal of Plant Diseases and Protection, 127: 237-244. Go to original source...
  107. Yang C.P., Xie L.J., Ma Y.Q., Cai X.W., Yue G.Z., Qin G.W., Zhang M. G., Chang X.L., Qiu X.Y., Luo L.Y. (2021a): Study on the fungicidal mechanism of glabridin against Fusarium graminearum. Pesticide Biochemistry and Physiology, 179: 104963. doi: 10.1016/j.pestbp.2021.104963 Go to original source... Go to PubMed...
  108. Yang Y.G., Ju Z.C., Yang Y.B., Zhang Y.H, Yang L., Wang Z.T. (2021b): Phytochemical analysis of Panax species: a review. Journal of Ginseng Research, 45: 1-21. Go to original source... Go to PubMed...
  109. Yusnawan E., Inayati A. (2018): Antifungal activity of crude extracts of Ageratum conyzoides, Cyperus rotundus, and Amaranthus spinosus Against rust disease. The Journal of Agricultural Science, 40: 403-414. Go to original source...
  110. Zaynab M., Fatima M., Abbas S., Sharif Y., Umair M., Zafar M.H., Bahadar K. (2018): Role of secondary metabolites in plant defense against pathogens. Microbial Pathogenesis, 124: 198-202. Go to original source... Go to PubMed...
  111. Zhang C.X., Wang Z., Zhu Q.Q., Pu B., Jiao S.R. (2015): Inhibitory effects and mechanism of Coptis chinensis extract against plant pathogenic fungi. Natural Product Research and Development, 27: 1232-1236. (In Chinese)
  112. Zhang K., Jiang Y., Zhao H., Köllner T.G., Chen S., Chen F., Chen F. (2020a): Diverse terpenoids and their associated antifungal properties from roots of different cultivars of Chrysanthemum Morifolium Ramat. Molecules, 25: 2083. doi: 10.3390/molecules25092083 Go to original source... Go to PubMed...
  113. Zhang S., Xia W., Xu Z.Z., Jin H.Y., Zhang W.Q. (2016): Alkaloids from Chimonanthus praecox Seeds and their antioxidant and antibacterial activities. Agrochemicals, 55: 651-653. (in Chinese)
  114. Zhang X.L. (2016): Preliminary studies on allelopathy and mechanism of extracts from Garland chrysanthemum on watermelon Fusarium wilt [Master Thesis]. Jiangxi Agricultural University, Nanchang. (in Chinese)
  115. Zhang Z.W., Xi H.C., Chang W.C., Huang L., Chen X. (2020b): Current situation of commercialised application of plant-derived pesticides in China and suggestions for industrial development. World Pesticides, 42: 6-15. (In Chinese)
  116. Zhao Z.M., Shang X.F., Lawoe R.K., Liu Y.Q., Zhou R., Sun Y., Yan Y.F., Li J.C., Yang Z.G., Yang C.J. (2019): Anti-phytopathogenic activity and the possible mechanisms of action of isoquinoline alkaloid sanguinarine. Pesticide Biochemistry and Physiology, 159: 51-58. Go to original source... Go to PubMed...
  117. Zhou D., Wang Z., Li M., Xing M., Tan T., Tu K. (2018): Carvacrol and eugenol effectively inhibit Rhizopus stolonifer and control postharvest soft rot decay in peaches. Journal of Applied Microbiology, 124: 166-178. Go to original source... Go to PubMed...
  118. Zhu Z.H., Zhao S.J., Wang C.H. (2022): β-Carboline alkaloids from Peganum harmala inhibit Fusarium oxysporum from Codonopsis radix through damaging the cell membrane and inducing ROS accumulation. Pathogens, 11: 1341. doi: 10.3390/pathogens11111341 Go to original source... Go to PubMed...

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