Antimicrobial Effects of Biogenic Nanoparticles
Abstract
:1. Introduction
2. Microbial Resistance to Antimicrobial Drugs
2.1. Conventional Antibiotics
2.2. Developing Resistance to Antimicrobials
2.3. Mechanisms of Drug Resistance to Antimicrobials
2.3.1. Decreased Uptake and Efflux Pumps
2.3.2. Alteration of Antimicrobial Target
2.3.3. Modification of Antimicrobial Drugs
2.3.4. Production of Competitive Inhibitor
2.3.5. Persister Cells
2.3.6. Biofilm Formation
2.3.7. Swarming
2.3.8. Intracellular Microbes
3. Promising Biogenic Metallic Nanoparticles for Antibacterial Applications
3.1. Gold Nanoparticles (AuNPs)
3.2. Silver Nanoparticles (AgNPs)
3.3. Zinc Oxide Nanoparticles (ZnO-NPs)
3.4. Copper Nanoparticles (CuO-NPs)
3.5. Titanium Dioxide Nanoparticles (TiO2-NPs)
3.6. Magnesium Oxide Nanoparticles
4. Concluding Remarks and Future Perspectives
Funding
Conflicts of Interest
References
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Origin Plant | NPs Type | Shape of NPs | Size Range of NPs (nm) | Anti-Microbial Effect | References |
---|---|---|---|---|---|
Phyllanthus amarus | CuO | Spherical | 20 | Anti-microbial against B. subtilis | [110] |
Geranium leaves | Ag | Quasilinear | 40 | Antimicrobial | [111] |
Avena sativa | Au | Rod-shaped | 5–20 | No data available | [112] |
Catharanthus roseus | TiO2 | No typical shape | 25–110 | No data available against bacteria | [113] |
Camellia Sinensis | ZnO | Triangular/spherical | 30–40 | Anti-bacterial | [114] |
Bacteria | |||||
Aeromonas hydrophila | ZnO | Spherical | 50–70 | Aanti-bacterial against P. aeruginosa and A. flavus | [115] |
Bacillus mycoides | TiO2 | Spherical | 40–60 | Supress aquatic biofilm growth | [116] |
Proteus mirabilis PTCC1710 | Au | Spherical | 10–20 | No reported anti-bacterial activity | [117] |
Escherichia coli | CdS | Spherical | 2–5 | Anti-bacterial against E. coli strain BW25113 | [118] |
Strains NS2 and NS6 | PbS | 40–70 | Bioremidiation | [119] | |
Fungus and Yeast | |||||
Volvariella volvacea | Au and Ag | Spherical/hexagonal | 20–150 | Anti-bacterial | [120] |
Aspergillus flavus | TiO2 | Oval | 60–74 | Anti-bacterial against S. aureus | [121] |
MKY3 | Ag | Hexagonal | 2–5 | Anti-bacterial against S. aureus and E. coli | [122] |
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Singh, P.; Garg, A.; Pandit, S.; Mokkapati, V.R.S.S.; Mijakovic, I. Antimicrobial Effects of Biogenic Nanoparticles. Nanomaterials 2018, 8, 1009. https://doi.org/10.3390/nano8121009
Singh P, Garg A, Pandit S, Mokkapati VRSS, Mijakovic I. Antimicrobial Effects of Biogenic Nanoparticles. Nanomaterials. 2018; 8(12):1009. https://doi.org/10.3390/nano8121009
Chicago/Turabian StyleSingh, Priyanka, Abhroop Garg, Santosh Pandit, V. R. S. S. Mokkapati, and Ivan Mijakovic. 2018. "Antimicrobial Effects of Biogenic Nanoparticles" Nanomaterials 8, no. 12: 1009. https://doi.org/10.3390/nano8121009