Cowpea leaf and pod spots caused by Periconia igniaria and their potential control using biosynthesized zinc oxide and magnesium oxide nanoparticles

被引:1
作者
Abdel-Samad, Faten H. Y. [1 ]
Huang, Qi [2 ]
Abdel-Latif, Marzouk R. [1 ]
Shehata, Zekry A. [1 ]
Armanyous, Hanaa A. H. [1 ]
Ahmad, Abdelmonim Ali [1 ]
机构
[1] Minia Univ, Plant Pathol Dept, Faulty Agr, El Minia 61519, Egypt
[2] USDA, Agr Res Serv, Floral & Nursery Plants Res Unit, United States Natl Arboretum, Beltsville, MD USA
关键词
Cowpea; Leaf and pod spots; Periconia igniaria; ZnO nanoparticles; MgO nanoparticles; ZNO NANOPARTICLES; FUTURE; GROWTH; PHYLOGENY; TOXICITY; EXTRACT;
D O I
10.1007/s42161-024-01714-z
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Cowpea is subject to attacks by a wide range of plant pathogens including bacteria, fungi, viruses, and nematodes. In this study, a field survey was conducted in cowpea growing regions of El-Minya Governorate of Egypt including Minya, Beni Mazar and Maghagha districts for leaf and pod spot disease. Our results revealed that the disease was present in all surveyed fields with the highest disease incidence and severity found in Minya District. For the first time in Egypt, the causal agent of the disease was determined to be Periconia igniaria based on morphology of the fungal isolates, internal transcribed spacer sequence homology to a P. igniaria strain, and fulfillment of Koch's postulates. To explore control measures, zinc oxide (ZnO) and magnesium oxide (MgO) nanoparticles (NPs) were synthesized biologically using green coffee extract. Both NPs were characterized, and their formulations confirmed using scanning electron microscopy and the energy spectrum dispersion analysis. The biosynthesized ZnO- and MgO-NPs were demonstrated to have antifungal activity against in vitro mycelium growth of P. igniaria at all tested concentrations from 25 to 200 ppm, and ZnO NPs were more effective than MgO NPs at the same concentration. When 100 ppm of ZnO NPs was tested in planta, it significantly reduced disease incidence and severity in detached cowpea leaves and pods under laboratory conditions, and in cowpea plants under greenhouse conditions. Our results demonstrated that the biosynthesized ZnO NPs have great potential to be developed into an effective and eco-friendly control method against cowpea disease caused by P. igniaria.
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页数:14
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共 72 条
  • [1] Green Synthesis of Nanoparticles and Their Energy Storage, Environmental, and Biomedical Applications
    Abuzeid, Hanaa M.
    Julien, Christian M.
    Zhu, Likun
    Hashem, Ahmed M.
    [J]. CRYSTALS, 2023, 13 (11)
  • [2] Agrios G.N., 2005, PLANT PATHOL, V5th, P922, DOI DOI 10.1016/J.PLANTSCI.2005.02.019
  • [3] Antiviral zinc oxide nanoparticles mediated by hesperidin and in silico comparison study between antiviral phenolics as anti-SARS-CoV-2
    Attia, Gouda H.
    Moemen, Yasmine S.
    Youns, Mahmoud
    Ibrahim, Ammar M.
    Abdou, Randa
    El Raey, Mohamed A.
    [J]. COLLOIDS AND SURFACES B-BIOINTERFACES, 2021, 203
  • [4] BARNETT H L, 1972, P241
  • [5] Green Synthesis and Biomedical Applications of ZnO Nanoparticles: Role of PEGylated-ZnO Nanoparticles as Doxorubicin Drug Carrier against MDA-MB-231(TNBC) Cells Line
    Batool, Madiha
    Khurshid, Shazia
    Daoush, Walid M.
    Siddique, Sabir Ali
    Nadeem, Tariq
    [J]. CRYSTALS, 2021, 11 (04)
  • [6] Berner D., 2011, TUNISIAN J PLANT PRO, V6, P49
  • [7] Cowpea (Vigna unguiculata): Genetics, genomics and breeding
    Boukar, Ousmane
    Belko, Nouhoun
    Chamarthi, Siva
    Togola, Abou
    Batieno, Joseph
    Owusu, Emmanuel
    Haruna, Mohammed
    Diallo, Sory
    Umar, Muhammed Lawan
    Olufajo, Olusoji
    Fatokun, Christian
    [J]. PLANT BREEDING, 2019, 138 (04) : 415 - 424
  • [8] Comparative Study on the Fungicidal Activity of Metallic MgO Nanoparticles and Macroscale MgO Against Soilborne Fungal Phytopathogens
    Chen, Juanni
    Wu, Lintong
    Lu, Mei
    Lu, Shasha
    Li, Ziyan
    Ding, Wei
    [J]. FRONTIERS IN MICROBIOLOGY, 2020, 11
  • [9] D'Souza M. A., 2019, Studies in Fungi, V4, P274, DOI 10.5943/sif/4/1/29
  • [10] Understanding the Antifungal Mechanism of Ag@ZnO Core-shell Nanocomposites against Candida krusei
    Das, Bhaskar
    Khan, Md. Imran
    Jayabalan, R.
    Behera, Susanta K.
    Yun, Soon-Il
    Tripathy, Suraj K.
    Mishra, Amrita
    [J]. SCIENTIFIC REPORTS, 2016, 6