The antibacterial activity of biogenic silver and its mode of action

被引:0
|
作者
Liesje Sintubin
Bart De Gusseme
Paul Van der Meeren
Benny F. G. Pycke
Willy Verstraete
Nico Boon
机构
[1] Ghent University,Laboratory of Microbial Ecology and Technology (LabMET)
[2] Ghent University,Particle and Interfacial Technology Group
来源
关键词
Biocide; Nanoparticles; Green chemistry; Biological synthesis; Drinking water; Disinfectant;
D O I
暂无
中图分类号
学科分类号
摘要
In a previous study, biogenic silver nanoparticles were produced by Lactobacillus fermentum which served as a matrix preventing aggregation. In this study the antibacterial activity of this biogenic silver was compared to ionic silver and chemically produced nanosilver. The minimal inhibitory concentration (MIC) was tested on Gram-positive and Gram-negative bacteria and was comparable for biogenic silver and ionic silver ranging from 12.5 to 50 mg/L. In contrast, chemically produced nanosilver had a much higher MIC of at least 500 mg/L, due to aggregation upon application. The minimal bactericidal concentration (MBC) in drinking water varied from 0.1 to 0.5 mg/L for biogenic silver and ionic silver, but for chemically produced nanosilver concentrations, up to 12.5 mg/L was needed. The presence of salts and organic matter decreased the antimicrobial activity of all types of silver resulting in a higher MBC and a slower inactivation of the bacteria. The mode of action of biogenic silver was mainly attributed to the release of silver ions due to the high concentration of free silver ions measured and the resemblance in performance between biogenic silver and ionic silver. Radical formation by biogenic silver and direct contact were found to contribute little to the antibacterial activity. In conclusion, biogenic nanosilver exhibited equal antimicrobial activity compared to ionic silver and can be a valuable alternative for chemically produced nanosilver.
引用
收藏
页码:153 / 162
页数:9
相关论文
共 50 条
  • [31] Polyolefin matrixes with permanent antibacterial activity:: Preparation, antibacterial activity, and action mode of the active species
    Lenoir, Sandrine
    Pagnoulle, Christophe
    Galleni, Moreno
    Compere, Philippe
    Jerome, Robert
    Detrembleur, Christophe
    BIOMACROMOLECULES, 2006, 7 (08) : 2291 - 2296
  • [32] Zingiber officinale: Its antibacterial activity on Pseudomonas aeruginosa and mode of action evaluated by flow cytometry
    Chakotiya, Ankita Singh
    Tanwar, Ankit
    Narula, Alka
    Sharma, Rakesh Kumar
    MICROBIAL PATHOGENESIS, 2017, 107 : 254 - 260
  • [33] Biogenic synthesis and antibacterial activity of controlled silver nanoparticles using an extract of Gongronema Latifolium
    Aisida, Samson O.
    Ugwu, Kenneth
    Akpa, Paul A.
    Nwanya, Assumpta C.
    Ejikeme, Paul M.
    Botha, S.
    Ahmad, Ishaq
    Maaza, M.
    Ezema, Fabian, I
    MATERIALS CHEMISTRY AND PHYSICS, 2019, 237
  • [34] Biogenic silver nanoparticles by Myrtus communis plant extract: biosynthesis, characterization and antibacterial activity
    Alyousef, Abdullah A.
    Arshad, Mohammed
    AlAkeel, Raid
    Alqasim, Abdulaziz
    BIOTECHNOLOGY & BIOTECHNOLOGICAL EQUIPMENT, 2019, 33 (01) : 931 - 936
  • [35] Biogenic Silver Nanoparticles by Cacumen Platycladi Extract: Synthesis, Formation Mechanism, and Antibacterial Activity
    Huang, Jiale
    Zhan, Guowu
    Zheng, Bingyun
    Sun, Daohua
    Lu, Fenfen
    Lin, Yuan
    Chen, Huimei
    Zheng, Zhouding
    Zheng, Yanmei
    Li, Qingbiao
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2011, 50 (15) : 9095 - 9106
  • [36] Biogenic synthesis of silver nanoparticles using guava (Psidium guajava) leaf extract and its antibacterial activity against Pseudomonas aeruginosa
    Department of Botany, Kabi Nazrul College, Murarai, Birbhum
    WB
    731219, India
    不详
    WB
    731219, India
    Appl. Nanosci. (Switzerland), 2190, 6 (895-901):
  • [37] Biogenic synthesis of silver nanoparticles using guava (Psidium guajava) leaf extract and its antibacterial activity against Pseudomonas aeruginosa
    Debadin Bose
    Someswar Chatterjee
    Applied Nanoscience, 2016, 6 : 895 - 901
  • [38] Antibacterial activity and mode of action of a commercial citrus fruit extract
    Alvarez-Ordonez, A.
    Carvajal, A.
    Arguello, H.
    Martinez-Lobo, F. J.
    Naharro, G.
    Rubio, P.
    JOURNAL OF APPLIED MICROBIOLOGY, 2013, 115 (01) : 50 - 60
  • [39] Antibacterial Activity and Mode of Action of Lactoquinomycin A from Streptomyces bacillaris
    Chung, Beomkoo
    Kwon, Oh-Seok
    Shin, Jongheon
    Oh, Ki-Bong
    MARINE DRUGS, 2021, 19 (01)
  • [40] Biogenic synthesis of silver nanoparticles: Antibacterial and cytotoxic potential
    Algebaly, Asma S.
    Mohammed, Afrah E.
    Abutaha, Nael
    Elobeid, Mudawi M.
    SAUDI JOURNAL OF BIOLOGICAL SCIENCES, 2020, 27 (05) : 1340 - 1351