| Literature DB >> 35407234 |
Simerjeet Parmar1, Harwinder Kaur1, Jagpreet Singh2,3, Avtar Singh Matharu4, Seeram Ramakrishna5, Mikhael Bechelany6.
Abstract
Combating antimicrobial resistance (AMR) is an on-going global grand challenge, as recognized by several UN Sustainable Development Goals. Silver nanoparticles (Ag NPs) are well-known for their efficacy against antimicrobial resistance, and a plethora of green synthesis methodologies now exist in the literature. Herein, this review evaluates recent advances in biological approaches for Ag NPs, and their antimicrobial potential of Ag NPs with mechanisms of action are explored deeply. Moreover, short and long-term potential toxic effects of Ag NPs on animals, the environment, and human health are briefly discussed. Finally, we also provide a summary of the current state of the research and future challenges on a biologically mediated Ag-nanostructures-based effective platform for alleviating AMR.Entities:
Keywords: antimicrobial resistance; environmental; green synthesis; silver NP’s
Year: 2022 PMID: 35407234 PMCID: PMC9000675 DOI: 10.3390/nano12071115
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.076
Figure 1“Top-down” and “bottom-up” approaches for the synthesis of nanoparticles.
Figure 2Schematic of Ag-NPs synthesis by the chemical reduction method.
Figure 3A histogram shows the frequency of paper publication on biological approaches for Ag NPs.
Synthesis of AgNPs from various bacterial species.
| Year | S/N | Bacterial Species | Method | Size (nm) | Morphology | References |
|---|---|---|---|---|---|---|
| 2021 | 1. |
| Intracellular | 10–31 | Spherical | [ |
| 2. | Intracellular | 7–15 | - | [ | ||
| 3. |
| Extracellular | 1–6 | Spherical | [ | |
| 4. |
| Extracellular | - | Spherical | [ | |
| 5. |
| Intracellular | 10–100 | Spherical | [ | |
| 6. |
| Intracellular | 10–60 | Cubic, spherical, hexagonal, crystalline, and oval | [ | |
| 7. |
| Extracellular | 26–32 | Spherical | [ | |
| 8. |
| Extracellular | 45 ± 0.15 | FCC, Spherical | [ | |
| 2020 | 9. | Intracellular | 35–85 | Spherical | [ | |
| 10. |
| Extracellular | 5–40 | - | [ | |
| 11. |
| Intracellular | 5–50 | Spherical | [ | |
| 12. |
| Intracellular | 15–500 | Cluster triangular, hexagonal, and crystalline | [ | |
| 13. |
| Extracellular | 6–13 | Spherical | [ | |
| 14. | Intracellular | 5–50 | Spherical | [ | ||
| 15. | Extracellular | 5–15 | Crystalline | [ | ||
| 16. |
| Extracellular | 8–63 | Spherical | [ | |
| 17. |
| Intracellular | 4 ± 1.5 | Spherical | [ | |
| 18. |
| Intracellular | 40–100 | Spherical | [ | |
| 19. |
| Extracellular | 5–60 | Spherical | [ | |
| 20. |
| Intracellular | 45 ± 0.15 | Spherical | [ | |
| 21. |
| Extracellular | 35–200 | Cluster equilateral triangular, and hexagonal | [ | |
| 2019 | 22. | Extracellular | 28–122 | Spherical | [ | |
| 23. | Extracellular | 8–16 | fcc spherical | [ | ||
| 24. |
| Extracellular | 10–100 | Spherical | [ | |
| 25. |
| Extracellular | 70 | Spherical | [ | |
| 26. |
| Intracellular | 50–100 | Crystalline, spherical | [ | |
| 27. |
| Intracellular | 20–50 | Spherical | [ | |
| 28. |
| Extracellular | 4–50 | Spherical | [ | |
| 29. | Extracellular | 77–92 | Spherical | [ | ||
| 30. |
| Extracellular | 160–180 | Spherical | [ |
Figure 4Non-enzymatic intracellular synthesis of AgNPs by bacteria [47].
Figure 5Extracellular enzymatic synthesis of Ag-NPs by bacteria.
Synthesis of metallic NPs from various fungal species.
| Year | S/N | Fungal Species | Method | Size | Morphology | References |
|---|---|---|---|---|---|---|
| 2021 | 1. |
| Intracellular | 10–25 | Polydispersedspherical, hexagonal, and spherical | [ |
| 2. |
| Extracellular | 5–40 | Spherical | [ | |
| 3. |
| Intracellular and extracellular | 51–93 | Spherical | [ | |
| 4. | Extracellular | 5–25 | Spherical | [ | ||
| 5. |
| Extracellular | - | Uniform spherical | [ | |
| 6. |
| Extracellular | 9.47 | Spherical | [ | |
| 7. |
| Intracellular | 10–100 | Spherical | [ | |
| 8. |
| Extracellular | 1–50 | Ellipsoid, polydispersed spherical | [ | |
| 9. |
| Extracellular | 58.35 ± 17.88 | - | [ | |
| 10. |
| Extracellular | 8.92 | - | [ | |
| 11. |
| Extracellular | 15.1 ± 1 | Spherical | [ | |
| 12. |
| Intracellular | 20.56 | Spherical | [ | |
| 13. |
| Extracellular | 10–15 | Spherical | [ | |
| 2020 | 14. |
| Intracellular | 23–105 | Crystalline spherical | [ |
| 15. |
| Intracellular | 2–22 | Spherical | [ | |
| 16. |
| Extracellular | 35–40 | Round | [ | |
| 17. |
| Extracellular | 32.5 | Polydispersed, spherical | [ | |
| 18. |
| Extracellular | 1–20 | Polydispersed, spherical | [ | |
| 19. |
| Extracellular | 6–100, 14–76 | Spherical | [ | |
| 20. | Extracellular | 30–70 | - | [ | ||
| 21. | Extracellular | 25–30 | Spherical | [ | ||
| 22. | Extracellular | 58.35 ± 17.88 | - | [ | ||
| 23. |
| Extracellular | 5–25 | Spherical | [ | |
| 2019 | 24. |
| Extracellular | 5–30 | Spherical | [ |
| 25. |
| Intracellular | 25–75 | Spherical | [ | |
| 26. |
| Extracellular | 30–409 | Spherical | [ | |
| 27. |
| Extracellular | 51.31–111.02 | Spherical | [ | |
| 28. |
| Intracellular | 8–10 | Spherical | [ | |
| 29. |
| Extracellular | 5–35 | Spherical | [ | |
| 30. |
| Extracellular | 34.77 | Ellipsoidal, spherical | [ | |
| 31. |
| Extracellular | 5–25 | Spherical | [ | |
| 32. |
| Extracellular | 25–30 | Spherical | [ | |
| 33. |
| Extracellular | 60–80 | Spherical | [ | |
| 34. |
| Extracellular | 5–50 | Random | [ | |
| 35. |
| Extracellular | 13 | Spherical | [ |
Figure 6Fungal synthesis of Ag-NPs [47].
Ag NPs synthesized from diverse plants.
| Year | S/N | Plant Name | Size (nm) | Morphology | References |
|---|---|---|---|---|---|
| 2021 | 1. |
| 10–20 | Spherical | [ |
| 2. |
| 20–30 | – | [ | |
| 3. |
| 50–500 | FCC | [ | |
| 4. |
| 5–50 | Triangular, hexagonal | [ | |
| 5. |
| 12–36 | Spherical | [ | |
| 6. |
| 5–55 | Spherical | [ | |
| 7. |
| 100 | Spherical, triangular, and cuboidal | [ | |
| 8. |
| 20–50 | Spherical | [ | |
| 9. |
| 20–30 | - | [ | |
| 10. |
| 2–20 | Spherical | [ | |
| 11. | 5–20 | Spherical | [ | ||
| 12. |
| 8 | Spherical | [ | |
| 13. |
| 15–500 | _ | [ | |
| 14. |
| - | Spherical | [ | |
| 2020 | 15. |
| 4 | Spheroidal | [ |
| 16. |
| 10 | Spheroidal | [ | |
| 17. |
| 62 | Spherical | [ | |
| 18. |
| 20–30 | Spherical, Ellipsoidal | [ | |
| 19. |
| 20–70 | Spherical and oval | [ | |
| 20. |
| 10–20 | - | [ | |
| 21. |
| 10–30 | Spheroidal | [ | |
| 22. |
| 55–80 | Triangular or spherical | [ | |
| 23. |
| 25–60 | Spherical | [ | |
| 24. |
| 20 | Spheroidal | [ | |
| 25. |
| 186 | Spherical | [ | |
| 26. |
| 50–100 | Spherical | [ | |
| 27. |
| 30–55 | Spherical | [ | |
| 28. |
| 10–20 | Spherical | [ | |
| 29. |
| 38–65 | Spherical, triangle, truncated triangles, and decahedrons | [ | |
| 30. |
| 20–100 | Spheroidal | [ | |
| 31. |
| 40–60 | Spherical | [ | |
| 32. |
| 50–80 | Spherical | [ | |
| 33. |
| 25 | Spherical, ovoid | [ | |
| 34. |
| 8–20 | FCC | [ | |
| 35. |
| 30–50 | Spherical | [ | |
| 36. | 24.35 | Spherical | [ | ||
| 37. |
| 5–50 | FCC | [ | |
| 2019 | 38. |
| - | Agglomerated form | [ |
| 39. |
| 10–32 | Spherical | [ | |
| 40. | 16–28 | Spherical | [ | ||
| 41. |
| 20–40 | Spherical | [ | |
| 42. |
| 10–30 | Spherical | [ | |
| 43. |
| 40–50 | Spherical | [ | |
| 44. |
| 10.78 | Irregular | [ | |
| 45. |
| 5–30 | Spherical, oval | [ | |
| 46. |
| 10–20 | - | [ | |
| 47. |
| 14–27 | Spherical | [ | |
| 48. |
| 20 | Spherical | [ | |
| 49. |
| 2–100 | Spherical | [ | |
| 50. |
| 16 | Spheroidal | [ | |
| 51. |
| 20–35 | Spheroidal | [ | |
| 52. |
| 73 | Spherical | [ | |
| 53. |
| 123 | Spherical | [ | |
| 54. |
| 25–80 | Rod | [ | |
| 55. |
| - | - | [ | |
| 56. |
| 55–80 | Aggregated | [ | |
| 57. |
| 14 | Spheroidal | [ | |
| 58. |
| 10–25 | Spheroidal | [ | |
| 59. |
| 7–15 | Spherical and ovoid | [ |
Figure 7Plant-based synthesis of Ag-NPs by reaction of AgNO3 with phytochemicals [47].
Ag NPs prepared via bacteria, fungi, and plants.
| Year | S/N | Organism | Biological Entity | Size (nm) | Morphology | Method | References |
|---|---|---|---|---|---|---|---|
| 2021 | 1. | Fungi | 25 | Spherical | Agar well diffusion method | [ | |
| 2. | Fungi |
| 15.5 | Spherical | Brothmicro-dilution method | [ | |
| 3. | Fungi |
| 4–55 | Spherical | Disk diffusion method | [ | |
| 4. | Bacteria |
| 37–168 | Spherical | Broth micro-dilution method | [ | |
| 5. | Plant |
| 20–45 | Spherical | Agar well diffusion method | [ | |
| 6. | Plant |
| 28 | Spherical | Disc diffusion and broth macro-dilution method | [ | |
| 7. | Plant |
| 15–34 | Spherical | Agar cup and broth micro-dilution methods | [ | |
| 8. | Plant |
| 20–25 | Spherical | Agar well diffusion 1method | [ | |
| 9. | Plant |
| 12.9 | Quasi–Spherical | Broth dilution method | [ | |
| 10. | Plant |
| 25 | Spherical | Agar well diffusion | [ | |
| 11. | Plant |
| 12.6 | Quasi-Spherical | Broth dilution method | [ | |
| 12. | Fungi |
| 64.3 | Spherical | Disk diffusion assay | [ | |
| 13. | Fungi |
| 10–40 | Spherical | Disk diffusion and broth micro-dilution methods | [ | |
| 2020 | 14. | Fungi |
| 15–220 | Spherical | Agar well diffusion and broth microdilution methods | [ |
| 15. | Bacteria |
| 127 | Spherical | Agar well diffusion method | [ | |
| 16 | Bacteria |
| 37–168 | Spherical | Broth micro-dilution method | [ | |
| 17. | Bacteria |
| - | Spherical and oval | Agar well diffusion method | [ | |
| 18. | Bacteria |
| 4.8–6.6 | Spherical | Agar well diffusion method | [ | |
| 19. | Plant |
| 10–20 | Spherical | Disk and broth dilution methods | [ | |
| 20. | Plant |
| 1.9–4.3 | Spherical | Agar well diffusion and broth dilution methods | [ | |
| 21. | Plant |
| 55–83 | Spherical | Disk diffusion method | [ | |
| 2019 | 22. | Fungi |
| 5–50 | Spherical | Brothmicro-dilution method | [ |
| 23. | Fungi |
| 5–30 | Spherical | Agar well | [ | |
| 24. | Fungi |
| 10–15 | Spherical | Agar well diffusion | [ | |
| 25. | Fungi |
| 4–30 | Spherical | Disk diffusion method | [ | |
| 26. | Fungi |
| 133 | Spherical | Agar welldiffusionmethod | [ | |
| 27. | Bacteria |
| 150 | Spherical | Disk diffusion method | [ | |
| 28. | Bacteria |
| 38–85 | Spherical | Agar well diffusion method | [ | |
| 29. | Plant |
| 37 | Spherical | Agar well diffusion method | [ | |
| 30. | Plant |
| ~15 | Spherical | Disc and dilution approach | [ | |
| 31. | Plant |
| 23.7 | Spherical | Agar well diffusion and broth dilution approaches | [ | |
| 32. | Plant |
| 18 | Spherical | Disk diffusion and broth microdilution methods | [ | |
| 33. | Plant |
| 15 | Spherical | Disk diffusion method | [ |
Figure 8Silver nanoparticles’ antibacterial mechanism of action is described in general terms [79].