Cargando…

Green Nanoparticles Engineering on Root-knot Nematode Infecting Eggplants and Their Effect on Plant DNA Modification

BACKGROUND: Root-knot nematodes are known to cause significant damage to eggplants. New approaches by green silver nanoparticles (GSN) are used to control plant-parasitic nematode to avoid chemical nematicide hazards. OBJECTIVES: Analyses of the incorporation of different concentrations of nanoparti...

Descripción completa

Detalles Bibliográficos
Autores principales: Abdellatif, Kamal Fouad, Abdelfattah, Ragaa Hamouda, El-Ansary, Mostafa Sayed Mostafa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Institute of Genetic Engineering and Biotechnology 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5434995/
https://www.ncbi.nlm.nih.gov/pubmed/28959343
http://dx.doi.org/10.15171/ijb.1309
_version_ 1783237156004691968
author Abdellatif, Kamal Fouad
Abdelfattah, Ragaa Hamouda
El-Ansary, Mostafa Sayed Mostafa
author_facet Abdellatif, Kamal Fouad
Abdelfattah, Ragaa Hamouda
El-Ansary, Mostafa Sayed Mostafa
author_sort Abdellatif, Kamal Fouad
collection PubMed
description BACKGROUND: Root-knot nematodes are known to cause significant damage to eggplants. New approaches by green silver nanoparticles (GSN) are used to control plant-parasitic nematode to avoid chemical nematicide hazards. OBJECTIVES: Analyses of the incorporation of different concentrations of nanoparticles on two different algae (Ulva lactuca and Turbinaria turbinata) were carried out. Furethermore, the effect of GSN on the eggplant DNA profile was studied using RAPD and EST molecular markers. MATERIALS AND METHODS: Green Silver Nanoparticles (GSN) have been synthesized and characterized using the algal extract solution prepared from two algal genera. Nematicidal effect of the GSN was evaluated in greenhouse on eggplants (Solanum melongena cv. Login). Genomic DNA was extracted for use in molecular analysis. Both RAPD and EST molecular markers were used to study the GSN effect on eggplant DNA modification. RESULTS: GSN (17 mg.mL(-1)) obtained from U. lactuca was more effective in reducing second-stage juveniles (J2s) of M. javanica (69.44%) population in soil. All treatments improved eggplants growth parameters. Change in DNA profile using of both RAPD and EST markers was noted. CONCLUSIONS: GSN (12.75 mg.100 mL(-1)) were effective on controlling the root-knot nematode (both T. turbinata and U. lactuca algae), similar to chemical control in eggplants. GSN did not cause any phototoxicity in eggplants under treatment.
format Online
Article
Text
id pubmed-5434995
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher National Institute of Genetic Engineering and Biotechnology
record_format MEDLINE/PubMed
spelling pubmed-54349952017-09-28 Green Nanoparticles Engineering on Root-knot Nematode Infecting Eggplants and Their Effect on Plant DNA Modification Abdellatif, Kamal Fouad Abdelfattah, Ragaa Hamouda El-Ansary, Mostafa Sayed Mostafa Iran J Biotechnol Research Article BACKGROUND: Root-knot nematodes are known to cause significant damage to eggplants. New approaches by green silver nanoparticles (GSN) are used to control plant-parasitic nematode to avoid chemical nematicide hazards. OBJECTIVES: Analyses of the incorporation of different concentrations of nanoparticles on two different algae (Ulva lactuca and Turbinaria turbinata) were carried out. Furethermore, the effect of GSN on the eggplant DNA profile was studied using RAPD and EST molecular markers. MATERIALS AND METHODS: Green Silver Nanoparticles (GSN) have been synthesized and characterized using the algal extract solution prepared from two algal genera. Nematicidal effect of the GSN was evaluated in greenhouse on eggplants (Solanum melongena cv. Login). Genomic DNA was extracted for use in molecular analysis. Both RAPD and EST molecular markers were used to study the GSN effect on eggplant DNA modification. RESULTS: GSN (17 mg.mL(-1)) obtained from U. lactuca was more effective in reducing second-stage juveniles (J2s) of M. javanica (69.44%) population in soil. All treatments improved eggplants growth parameters. Change in DNA profile using of both RAPD and EST markers was noted. CONCLUSIONS: GSN (12.75 mg.100 mL(-1)) were effective on controlling the root-knot nematode (both T. turbinata and U. lactuca algae), similar to chemical control in eggplants. GSN did not cause any phototoxicity in eggplants under treatment. National Institute of Genetic Engineering and Biotechnology 2016-12 /pmc/articles/PMC5434995/ /pubmed/28959343 http://dx.doi.org/10.15171/ijb.1309 Text en © 2016 by National Institute of Genetic Engineering and Biotechnology https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Abdellatif, Kamal Fouad
Abdelfattah, Ragaa Hamouda
El-Ansary, Mostafa Sayed Mostafa
Green Nanoparticles Engineering on Root-knot Nematode Infecting Eggplants and Their Effect on Plant DNA Modification
title Green Nanoparticles Engineering on Root-knot Nematode Infecting Eggplants and Their Effect on Plant DNA Modification
title_full Green Nanoparticles Engineering on Root-knot Nematode Infecting Eggplants and Their Effect on Plant DNA Modification
title_fullStr Green Nanoparticles Engineering on Root-knot Nematode Infecting Eggplants and Their Effect on Plant DNA Modification
title_full_unstemmed Green Nanoparticles Engineering on Root-knot Nematode Infecting Eggplants and Their Effect on Plant DNA Modification
title_short Green Nanoparticles Engineering on Root-knot Nematode Infecting Eggplants and Their Effect on Plant DNA Modification
title_sort green nanoparticles engineering on root-knot nematode infecting eggplants and their effect on plant dna modification
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5434995/
https://www.ncbi.nlm.nih.gov/pubmed/28959343
http://dx.doi.org/10.15171/ijb.1309
work_keys_str_mv AT abdellatifkamalfouad greennanoparticlesengineeringonrootknotnematodeinfectingeggplantsandtheireffectonplantdnamodification
AT abdelfattahragaahamouda greennanoparticlesengineeringonrootknotnematodeinfectingeggplantsandtheireffectonplantdnamodification
AT elansarymostafasayedmostafa greennanoparticlesengineeringonrootknotnematodeinfectingeggplantsandtheireffectonplantdnamodification