Site avatar
Banner image placeholder
Banner image

Yasser Nehela

Plant Pathologist | Translational Research | Plant Health Innovation

Chitosan Nanoparticles Inactivate Alfalfa Mosaic Virus Replication and Boost Innate Immunity in Nicotiana glutinosa Plants


Journal article


A. Abdelkhalek, S. Qari, M. Abu-Saied, Abdallah Khalil, H. Younes, Y. Nehela, S. Behiry
Plants, 2021

Semantic Scholar DOI PubMedCentral
Cite

Cite

APA   Click to copy
Abdelkhalek, A., Qari, S., Abu-Saied, M., Khalil, A., Younes, H., Nehela, Y., & Behiry, S. (2021). Chitosan Nanoparticles Inactivate Alfalfa Mosaic Virus Replication and Boost Innate Immunity in Nicotiana glutinosa Plants. Plants.


Chicago/Turabian   Click to copy
Abdelkhalek, A., S. Qari, M. Abu-Saied, Abdallah Khalil, H. Younes, Y. Nehela, and S. Behiry. “Chitosan Nanoparticles Inactivate Alfalfa Mosaic Virus Replication and Boost Innate Immunity in Nicotiana Glutinosa Plants.” Plants (2021).


MLA   Click to copy
Abdelkhalek, A., et al. “Chitosan Nanoparticles Inactivate Alfalfa Mosaic Virus Replication and Boost Innate Immunity in Nicotiana Glutinosa Plants.” Plants, 2021.


BibTeX   Click to copy

@article{a2021a,
  title = {Chitosan Nanoparticles Inactivate Alfalfa Mosaic Virus Replication and Boost Innate Immunity in Nicotiana glutinosa Plants},
  year = {2021},
  journal = {Plants},
  author = {Abdelkhalek, A. and Qari, S. and Abu-Saied, M. and Khalil, Abdallah and Younes, H. and Nehela, Y. and Behiry, S.}
}

Abstract

Plant viral infection is one of the most severe issues in food security globally, resulting in considerable crop production losses. Chitosan is a well-known biocontrol agent against a variety of plant infections. However, research on combatting viral infections is still in its early stages. The current study investigated the antiviral activities (protective, curative, and inactivation) of the prepared chitosan/dextran nanoparticles (CDNPs, 100 µg mL−1) on Nicotiana glutinosa plants. Scanning electron microscope (SEM) and dynamic light scattering analysis revealed that the synthesized CDNPs had a uniform, regular sphere shapes ranging from 20 to 160 nm in diameter, with an average diameter of 91.68 nm. The inactivation treatment was the most effective treatment, which resulted in a 100% reduction in the alfalfa mosaic virus (AMV, Acc# OK413670) accumulation level. On the other hand, the foliar application of CDNPs decreased disease severity and significantly reduced viral accumulation levels by 70.43% and 61.65% in protective and curative treatments, respectively, under greenhouse conditions. Additionally, the induction of systemic acquired resistance, increasing total carbohydrates and total phenolic contents, as well as triggering the transcriptional levels of peroxidase, pathogen-related protein-1, and phenylalanine ammonia-lyase were observed. In light of the results, we propose that the potential application of CDNPs could be an eco-friendly approach to enhance yield and a more effective therapeutic elicitor for disease management in plants upon induction of defense systems.


Share
Translate to