A Review on Plants and Microorganisms Mediated Synthesis of Silver Nanoparticles, Role of Plants Metabolites and Applications
Abstract
:1. Introduction
2. Methods of Silver Nanoparticles Synthesis
2.1. Top-Down Approach
2.2. Bottom-Up Approach
3. Syntheses of Silver Nanoparticles Using Plant Extracts
4. Synthesis of Silver Nanoparticles Using Bacteria
5. Synthesis of Silver Nanoparticles Using Fungi
6. Plants Secondary Metabolites and Their Role in Synthesis of Nanoparticles
7. Applications of Silver Nanoparticles
7.1. Applications of Silver Nanoparticles as Antimicrobial Agents
7.2. Applications of Silver Nanoparticles in Biomedicine
7.3. Applications of Nanoparticles in Environment and Waste Water Treatment
7.4. Applications of Nanoparticles in the Control of Mosquitoes
7.5. Applications of Nanoparticles in Agriculture
7.6. Applications of Nanoparticles in Food Safety and Food Packaging
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Plant Species | Part of Plant Used | Size (nm) | Shape | References |
---|---|---|---|---|
Nauclea latifolia | Fruit | 10 | Irregular | [51] |
Citrus sinensis | Peels | 10–70 | Spherical | [52] |
Cynara scolymus | Leaf extract | 98.47 ± 2.04 | Spherical | [53] |
Alfalfa sprouts | Plant shoot | 2–3 | Icosahedral | [24] |
Ananas comosus | Plant broth | 12 | Spherical | [6] |
Argemone mexicana | Leaves extract | 30 | Spherical | [25] |
Neem and Triphala | Leaves extract | 43–59 | Spherical | [26] |
Peanut | Shell extract | 10–50 | Spherical/oval | [27] |
Malus domestica | Leaf extract | 20 | Spherical | [28] |
Polyalthia longifolia | Leaf extract | 35–10 | Spherical | [29] |
Papaya | Fruit extract | - | Spherical | [30] |
Ocimum sanctum | Leaf extract | - | Spherical | [31] |
Ceratonia siliqua | Leaf extract | 5–40 | - | [21] |
Cassia auriculata | - | - | Spherical | [32] |
Geranium spp. | Leaf extract | 40 | - | [33] |
Ficus benghalensis | Leaf extract | 10–50 | Spherical | [34] |
Acorus calamus | Rhizome | 31.83 | Spherical | [35] |
Boerhavia diffusa | - | 25 | - | [36] |
Citrus limon | Peel | 59 | Spherical | [54] |
Ananas comosus | Fruit | 5–30 | Spherical | [6] |
Annona glabra | Leaf extract | 10–100 | Spherical | [55] |
Bacteria Species | Size(nm) | Shape | References |
---|---|---|---|
Escherichia coli | 1.2–62 | Spherical/quasi-spherical | [61] |
Pseudomonas stutzeri | 200 | Triangles and hexagons | [57] |
Serratia nematodiphila | 65–70 | Spherical shape | [62] |
Bacillus stearothermophilus | 42–92 | Spherical | [63] |
Lactobacillus casei | 25–50 | Spherical | [64] |
Nocardiopsis spp. | 45 ± 0.15 | Spherical | [65] |
Streptomyces hygroscopicus | 20–30 | - | [66] |
Staphylococcus aureus | 160–180 | Irregular | [59] |
Rhodococcus spp. | 5–50 | Spherical | [67] |
Marine Ochrobactrum spp. | 38–85 | Spherical | [68] |
Escherichia coli | 1–100 | Spherical | [69] |
Lactobacillus strains | 15–500 | Triangular/hexagonal | [70] |
Bacillus methylotrophicus | 10–30 | Spherical | [71] |
Vibrio alginolyticus | 50–100 | Crystalline/spherical | [62] |
Fusarium semitectum | 1–50 | Ellipsoid/spherical | [72] |
Fungi Species | Size (nm) | Shape | References |
---|---|---|---|
Aspergillus niger | 1–20 | Polydispersed spherical | [45] |
Alternaria alternata | 32 | Spherical | [81] |
Penicillium fellutanum | 5–25 | Spherical | [82] |
Fusarium semitectum | 10–60 | Crystlline/spherical | [83] |
Schizophyllum commune | 51–93 | Spherical | [84] |
Endophytic fungus | 10–25 | Hexagonaerel/spherical | [85] |
Trichoderma viride | 5–40 | Spherical | [86] |
Pestalotia spp. | 12 | Polydispersed/spherical | [87] |
Penicillium citrinum | 109 | Uniform spherical | [88] |
Fusarium acuminatum | 13 | Spherical | [89] |
Aspergillus niger | 1–20 | Polydispersed/spherical | [45] |
Fusarium oxysporum | 5–13 | Spherical | [90] |
Guignardia mangiferae | 5–30 | Spherical | [91] |
Duddingtonia flagrans | 30–409 | Spherical | [77] |
Arthroderma fulvum | 21 | Spherical | [92] |
Plant Species | Metabolites Identified | References |
---|---|---|
Acalypha indica | Quercetin | [96] |
Nigella arvensis | Flavonoids, alkaloids | [97] |
Lantana camara | Flavonoids | [98] |
Mimusops elengi | Polyphenols | [99] |
Zingiber officinale | Flavonoid, alkaloids | [100] |
Solanum xanthocarpum | Alkaloids, phenolic, sugars | [101] |
Trianthema decandra | Saponin | [102] |
Aegle marmelos | Tannin | [103] |
Anacardium occidentale | Proteins, polyols | [104] |
Desmodium triflorum | Ascorbic acid | [105] |
Decalepis hamiltonii | Polyols, phenols | [106] |
Syzygium cumini | Polyphenols | [107] |
Azadirachta indica | Flavonoids, terpenoids | [108] |
Coleus aromaticus | Flavonoids | [109] |
Hibiscus rosa-sinensis | Carboxylate ion groups | [110] |
Helianthus annuus | Flavonoids, proteins, | [98] |
Dioscorea bulbifera | Flavonoids, polyphenols | [111] |
Glycyrrhiza glabra | Flavonoids and terpenoid | [112] |
Achyranthes aspera | Polyols | [113] |
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Mustapha, T.; Misni, N.; Ithnin, N.R.; Daskum, A.M.; Unyah, N.Z. A Review on Plants and Microorganisms Mediated Synthesis of Silver Nanoparticles, Role of Plants Metabolites and Applications. Int. J. Environ. Res. Public Health 2022, 19, 674. https://doi.org/10.3390/ijerph19020674
Mustapha T, Misni N, Ithnin NR, Daskum AM, Unyah NZ. A Review on Plants and Microorganisms Mediated Synthesis of Silver Nanoparticles, Role of Plants Metabolites and Applications. International Journal of Environmental Research and Public Health. 2022; 19(2):674. https://doi.org/10.3390/ijerph19020674
Chicago/Turabian StyleMustapha, Tijjani, Norashiqin Misni, Nur Raihana Ithnin, Abdullahi Muhammad Daskum, and Ngah Zasmy Unyah. 2022. "A Review on Plants and Microorganisms Mediated Synthesis of Silver Nanoparticles, Role of Plants Metabolites and Applications" International Journal of Environmental Research and Public Health 19, no. 2: 674. https://doi.org/10.3390/ijerph19020674
APA StyleMustapha, T., Misni, N., Ithnin, N. R., Daskum, A. M., & Unyah, N. Z. (2022). A Review on Plants and Microorganisms Mediated Synthesis of Silver Nanoparticles, Role of Plants Metabolites and Applications. International Journal of Environmental Research and Public Health, 19(2), 674. https://doi.org/10.3390/ijerph19020674