Cargando…

Antibacterial effect of copper nanoparticles produced in a Shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens

The use of copper nanoparticles for the inhibition of plant pathogens Ralstonia solanacearum, which causes wilt disease, and Xanthomonas axonopodis, which causes citrus canker, was investigated in this study. To avoid the inhibiting effect of Cu(2+) ions on the bacterial cells, the copper nanopartic...

Descripción completa

Detalles Bibliográficos
Autores principales: Luong, Huong Thu, Nguyen, Canh Xuan, Lam, Thuong Thuong, Nguyen, Thi-Hanh, Dang, Quang-Le, Lee, Ji-Hoon, Hur, Hor-Gil, Nguyen, Hoa Thi, Ho, Cuong Tu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981026/
https://www.ncbi.nlm.nih.gov/pubmed/35425445
http://dx.doi.org/10.1039/d1ra08187j
_version_ 1784681516449660928
author Luong, Huong Thu
Nguyen, Canh Xuan
Lam, Thuong Thuong
Nguyen, Thi-Hanh
Dang, Quang-Le
Lee, Ji-Hoon
Hur, Hor-Gil
Nguyen, Hoa Thi
Ho, Cuong Tu
author_facet Luong, Huong Thu
Nguyen, Canh Xuan
Lam, Thuong Thuong
Nguyen, Thi-Hanh
Dang, Quang-Le
Lee, Ji-Hoon
Hur, Hor-Gil
Nguyen, Hoa Thi
Ho, Cuong Tu
author_sort Luong, Huong Thu
collection PubMed
description The use of copper nanoparticles for the inhibition of plant pathogens Ralstonia solanacearum, which causes wilt disease, and Xanthomonas axonopodis, which causes citrus canker, was investigated in this study. To avoid the inhibiting effect of Cu(2+) ions on the bacterial cells, the copper nanoparticles were synthesized in the cathode chamber of a non-external circuit bioelectrochemical system (nec_BES) inoculated with Shewanella sp. HN-41 at the anode. The electrons produced by the oxidation of lactate by Shewanella sp. HN-41 were directly transferred to the anolyte in the cathode via a graphite electrode connecting the anode and cathode chambers. SEM images of the produced particles revealed that the copper nanoparticles were aggregated into spherical shapes with an average size of 2.9 μm from smaller particles with a size range from 30 nm to approximately 190 nm. X-ray diffraction demonstrated that the copper nanoparticles were mainly in the form of a single-phase crystal mixture of atacamite (Cu(2)Cl(OH)(3)) and paracatamite (Cu(2)Cl(OH)(3)). Finally, for the application of synthesized nanoparticles, an agar diffusion test was applied to assess the antibacterial activity of the formed copper nanoparticles in propylene glycol solvent against R. solanacearum and X. axonopodis. The results showed that the nanoparticles damaged the cells of R. solanacearum, with a half maximum inhibition (IC(50)) value of 42 ppm, but did not damage X. axonopodis cells.
format Online
Article
Text
id pubmed-8981026
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-89810262022-04-13 Antibacterial effect of copper nanoparticles produced in a Shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens Luong, Huong Thu Nguyen, Canh Xuan Lam, Thuong Thuong Nguyen, Thi-Hanh Dang, Quang-Le Lee, Ji-Hoon Hur, Hor-Gil Nguyen, Hoa Thi Ho, Cuong Tu RSC Adv Chemistry The use of copper nanoparticles for the inhibition of plant pathogens Ralstonia solanacearum, which causes wilt disease, and Xanthomonas axonopodis, which causes citrus canker, was investigated in this study. To avoid the inhibiting effect of Cu(2+) ions on the bacterial cells, the copper nanoparticles were synthesized in the cathode chamber of a non-external circuit bioelectrochemical system (nec_BES) inoculated with Shewanella sp. HN-41 at the anode. The electrons produced by the oxidation of lactate by Shewanella sp. HN-41 were directly transferred to the anolyte in the cathode via a graphite electrode connecting the anode and cathode chambers. SEM images of the produced particles revealed that the copper nanoparticles were aggregated into spherical shapes with an average size of 2.9 μm from smaller particles with a size range from 30 nm to approximately 190 nm. X-ray diffraction demonstrated that the copper nanoparticles were mainly in the form of a single-phase crystal mixture of atacamite (Cu(2)Cl(OH)(3)) and paracatamite (Cu(2)Cl(OH)(3)). Finally, for the application of synthesized nanoparticles, an agar diffusion test was applied to assess the antibacterial activity of the formed copper nanoparticles in propylene glycol solvent against R. solanacearum and X. axonopodis. The results showed that the nanoparticles damaged the cells of R. solanacearum, with a half maximum inhibition (IC(50)) value of 42 ppm, but did not damage X. axonopodis cells. The Royal Society of Chemistry 2022-02-03 /pmc/articles/PMC8981026/ /pubmed/35425445 http://dx.doi.org/10.1039/d1ra08187j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Luong, Huong Thu
Nguyen, Canh Xuan
Lam, Thuong Thuong
Nguyen, Thi-Hanh
Dang, Quang-Le
Lee, Ji-Hoon
Hur, Hor-Gil
Nguyen, Hoa Thi
Ho, Cuong Tu
Antibacterial effect of copper nanoparticles produced in a Shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens
title Antibacterial effect of copper nanoparticles produced in a Shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens
title_full Antibacterial effect of copper nanoparticles produced in a Shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens
title_fullStr Antibacterial effect of copper nanoparticles produced in a Shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens
title_full_unstemmed Antibacterial effect of copper nanoparticles produced in a Shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens
title_short Antibacterial effect of copper nanoparticles produced in a Shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens
title_sort antibacterial effect of copper nanoparticles produced in a shewanella-supported non-external circuit bioelectrical system on bacterial plant pathogens
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981026/
https://www.ncbi.nlm.nih.gov/pubmed/35425445
http://dx.doi.org/10.1039/d1ra08187j
work_keys_str_mv AT luonghuongthu antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens
AT nguyencanhxuan antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens
AT lamthuongthuong antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens
AT nguyenthihanh antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens
AT dangquangle antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens
AT leejihoon antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens
AT hurhorgil antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens
AT nguyenhoathi antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens
AT hocuongtu antibacterialeffectofcoppernanoparticlesproducedinashewanellasupportednonexternalcircuitbioelectricalsystemonbacterialplantpathogens