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Sol–Gel Synthesis of Dy-Substituted Ni(0.4)Cu(0.2)Zn(0.4)(Fe(2-x)Dy(x))O(4) Nano Spinel Ferrites and Evaluation of Their Antibacterial, Antifungal, Antibiofilm and Anticancer Potentialities for Biomedical Application

BACKGROUND: The constant rise of microbial biofilm formation and drug resistance to existing antimicrobial drugs poses a significant threat to community health around the world because it reduces the efficacy and efficiency of treatments, increasing morbidity, mortality, and health-care expenditures...

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Autores principales: Ansari, Mohammad Azam, Akhtar, Sultan, Rauf, Mohd Ahmar, Alomary, Mohammad N, AlYahya, Sami, Alghamdi, Saad, Almessiere, M A, Baykal, Abdulhadi, Khan, Firdos, Adil, Syed Farooq, Khan, Mujeeb, Hatshan, Mohammad Rafe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8381027/
https://www.ncbi.nlm.nih.gov/pubmed/34434046
http://dx.doi.org/10.2147/IJN.S316471
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author Ansari, Mohammad Azam
Akhtar, Sultan
Rauf, Mohd Ahmar
Alomary, Mohammad N
AlYahya, Sami
Alghamdi, Saad
Almessiere, M A
Baykal, Abdulhadi
Khan, Firdos
Adil, Syed Farooq
Khan, Mujeeb
Hatshan, Mohammad Rafe
author_facet Ansari, Mohammad Azam
Akhtar, Sultan
Rauf, Mohd Ahmar
Alomary, Mohammad N
AlYahya, Sami
Alghamdi, Saad
Almessiere, M A
Baykal, Abdulhadi
Khan, Firdos
Adil, Syed Farooq
Khan, Mujeeb
Hatshan, Mohammad Rafe
author_sort Ansari, Mohammad Azam
collection PubMed
description BACKGROUND: The constant rise of microbial biofilm formation and drug resistance to existing antimicrobial drugs poses a significant threat to community health around the world because it reduces the efficacy and efficiency of treatments, increasing morbidity, mortality, and health-care expenditures. As a result, there is an urgent need to develop novel antimicrobial agents that inhibit microbial biofilm formation. METHODS: The [Ni(0.4)Cu(0.2)Zn(0.4)](Fe(2-x)Dy(x))O(4)(x≤0.04) (Ni-Cu-Zn) nano spinel ferrites (NSFs) have been synthesized by the sol–gel auto-combustion process and were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), energy dispersive x-ray (EDX) and transmission electron microscopy (TEM). The antimicrobial, antibiofilm and antiproliferative activities of Ni-Cu-Zn NSFs were also examined. RESULTS: The XRD pattern confirms the secondary phase DyFeO(3) and Fe(2)O(3) for substituted Dy(3)(+) samples, and the crystallite size ranged from 10 to 19 nm. TEM analysis of NSFs revealed that the particles were cube-shaped and 15nm in size. NSFs exhibited significant antimicrobial, antibiofilm and antiproliferative activity. At concentration of 1 mg/mL, it was found that the NSFs (ie, x=0.0, x=0.01, x=0.02, x=0.03 and x=0.04) inhibit biofilm formation by 27.6, 26.2, 58.5, 33.3 and 25% for methicillin-resistant Staphylococcus aureus (MRSA) and 47.5, 43.5, 48.6, 58.3 and 26.6% for Candida albicans, respectively. SEM images demonstrate that treating MRSA and C. albicans biofilms with NSFs significantly reduces cell adhesion, colonization and destruction of biofilm architecture and extracellular polymeric substances matrices. Additionally, SEM and TEM examination revealed that NSFs extensively damaged the cell walls and membranes of MRSA and C. albicans. Huge ultrastructural alteration such as deformation, disintegration and separation of cell wall and membrane from the cells was observed, indicating significant loss of membrane integrity, which eventually led to cell death. Furthermore, it was observed that NSF inhibited the cancer cell growth and proliferation of HCT-116 in a dose-dependent manner. CONCLUSION: The current study demonstrated that the synthesized Ni-Cu-Zn NSFs could be used to develop potential antimicrobial surface coatings agents for a varieties of biomedical-related materials and devices in order to prevent the biofilms formation and their colonization. Furthermore, the enhanced antiproliferative properties of manufactured SNFs suggest a wide range of biomedical applications.
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spelling pubmed-83810272021-08-24 Sol–Gel Synthesis of Dy-Substituted Ni(0.4)Cu(0.2)Zn(0.4)(Fe(2-x)Dy(x))O(4) Nano Spinel Ferrites and Evaluation of Their Antibacterial, Antifungal, Antibiofilm and Anticancer Potentialities for Biomedical Application Ansari, Mohammad Azam Akhtar, Sultan Rauf, Mohd Ahmar Alomary, Mohammad N AlYahya, Sami Alghamdi, Saad Almessiere, M A Baykal, Abdulhadi Khan, Firdos Adil, Syed Farooq Khan, Mujeeb Hatshan, Mohammad Rafe Int J Nanomedicine Original Research BACKGROUND: The constant rise of microbial biofilm formation and drug resistance to existing antimicrobial drugs poses a significant threat to community health around the world because it reduces the efficacy and efficiency of treatments, increasing morbidity, mortality, and health-care expenditures. As a result, there is an urgent need to develop novel antimicrobial agents that inhibit microbial biofilm formation. METHODS: The [Ni(0.4)Cu(0.2)Zn(0.4)](Fe(2-x)Dy(x))O(4)(x≤0.04) (Ni-Cu-Zn) nano spinel ferrites (NSFs) have been synthesized by the sol–gel auto-combustion process and were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), energy dispersive x-ray (EDX) and transmission electron microscopy (TEM). The antimicrobial, antibiofilm and antiproliferative activities of Ni-Cu-Zn NSFs were also examined. RESULTS: The XRD pattern confirms the secondary phase DyFeO(3) and Fe(2)O(3) for substituted Dy(3)(+) samples, and the crystallite size ranged from 10 to 19 nm. TEM analysis of NSFs revealed that the particles were cube-shaped and 15nm in size. NSFs exhibited significant antimicrobial, antibiofilm and antiproliferative activity. At concentration of 1 mg/mL, it was found that the NSFs (ie, x=0.0, x=0.01, x=0.02, x=0.03 and x=0.04) inhibit biofilm formation by 27.6, 26.2, 58.5, 33.3 and 25% for methicillin-resistant Staphylococcus aureus (MRSA) and 47.5, 43.5, 48.6, 58.3 and 26.6% for Candida albicans, respectively. SEM images demonstrate that treating MRSA and C. albicans biofilms with NSFs significantly reduces cell adhesion, colonization and destruction of biofilm architecture and extracellular polymeric substances matrices. Additionally, SEM and TEM examination revealed that NSFs extensively damaged the cell walls and membranes of MRSA and C. albicans. Huge ultrastructural alteration such as deformation, disintegration and separation of cell wall and membrane from the cells was observed, indicating significant loss of membrane integrity, which eventually led to cell death. Furthermore, it was observed that NSF inhibited the cancer cell growth and proliferation of HCT-116 in a dose-dependent manner. CONCLUSION: The current study demonstrated that the synthesized Ni-Cu-Zn NSFs could be used to develop potential antimicrobial surface coatings agents for a varieties of biomedical-related materials and devices in order to prevent the biofilms formation and their colonization. Furthermore, the enhanced antiproliferative properties of manufactured SNFs suggest a wide range of biomedical applications. Dove 2021-08-18 /pmc/articles/PMC8381027/ /pubmed/34434046 http://dx.doi.org/10.2147/IJN.S316471 Text en © 2021 Ansari et al. https://creativecommons.org/licenses/by-nc/3.0/This work is published and licensed by Dove Medical Press Limited. The full terms of this license are available at https://www.dovepress.com/terms.php and incorporate the Creative Commons Attribution – Non Commercial (unported, v3.0) License (http://creativecommons.org/licenses/by-nc/3.0/ (https://creativecommons.org/licenses/by-nc/3.0/) ). By accessing the work you hereby accept the Terms. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed. For permission for commercial use of this work, please see paragraphs 4.2 and 5 of our Terms (https://www.dovepress.com/terms.php).
spellingShingle Original Research
Ansari, Mohammad Azam
Akhtar, Sultan
Rauf, Mohd Ahmar
Alomary, Mohammad N
AlYahya, Sami
Alghamdi, Saad
Almessiere, M A
Baykal, Abdulhadi
Khan, Firdos
Adil, Syed Farooq
Khan, Mujeeb
Hatshan, Mohammad Rafe
Sol–Gel Synthesis of Dy-Substituted Ni(0.4)Cu(0.2)Zn(0.4)(Fe(2-x)Dy(x))O(4) Nano Spinel Ferrites and Evaluation of Their Antibacterial, Antifungal, Antibiofilm and Anticancer Potentialities for Biomedical Application
title Sol–Gel Synthesis of Dy-Substituted Ni(0.4)Cu(0.2)Zn(0.4)(Fe(2-x)Dy(x))O(4) Nano Spinel Ferrites and Evaluation of Their Antibacterial, Antifungal, Antibiofilm and Anticancer Potentialities for Biomedical Application
title_full Sol–Gel Synthesis of Dy-Substituted Ni(0.4)Cu(0.2)Zn(0.4)(Fe(2-x)Dy(x))O(4) Nano Spinel Ferrites and Evaluation of Their Antibacterial, Antifungal, Antibiofilm and Anticancer Potentialities for Biomedical Application
title_fullStr Sol–Gel Synthesis of Dy-Substituted Ni(0.4)Cu(0.2)Zn(0.4)(Fe(2-x)Dy(x))O(4) Nano Spinel Ferrites and Evaluation of Their Antibacterial, Antifungal, Antibiofilm and Anticancer Potentialities for Biomedical Application
title_full_unstemmed Sol–Gel Synthesis of Dy-Substituted Ni(0.4)Cu(0.2)Zn(0.4)(Fe(2-x)Dy(x))O(4) Nano Spinel Ferrites and Evaluation of Their Antibacterial, Antifungal, Antibiofilm and Anticancer Potentialities for Biomedical Application
title_short Sol–Gel Synthesis of Dy-Substituted Ni(0.4)Cu(0.2)Zn(0.4)(Fe(2-x)Dy(x))O(4) Nano Spinel Ferrites and Evaluation of Their Antibacterial, Antifungal, Antibiofilm and Anticancer Potentialities for Biomedical Application
title_sort sol–gel synthesis of dy-substituted ni(0.4)cu(0.2)zn(0.4)(fe(2-x)dy(x))o(4) nano spinel ferrites and evaluation of their antibacterial, antifungal, antibiofilm and anticancer potentialities for biomedical application
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8381027/
https://www.ncbi.nlm.nih.gov/pubmed/34434046
http://dx.doi.org/10.2147/IJN.S316471
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