Submitted:
23 July 2026
Posted:
24 July 2026
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Method
3. Biocompatibility of Gold and Silver Nanoparticles Obtained by ’Green’ Synthesis
3.1. Biocompatibility Linked to the Substances Used in ’Green’ Synthesis or Biosynthesis
3.2. Showing Biocompatibility by Testing Ag and Au Nanoparticles Obtained by ’Green’ Synthesis
3.2.1. In Vitro Tests
| Cell lines used for in vitro tests to support the characterization ’biocompatible’ | Effects | Type of biosynthesized nanoparticle | Substances involved | References |
| Human lung epithelial A549 cells | Cell viability | Ag | Garlic clove extract | [161] |
| Mouse fibroblast cells L929 | Cell viability | Ag | Ammania baccifera extract | [162] |
| Human dermal fibroblast | Cell viability | Au Ag |
Origanum vulgare extract Apigenin (flavonoid) |
[163] [135] |
| Fibroblast L 929 cells | Cell viability | Au Ag |
Cucurmin Lantana Montevidensis |
[164] [165] |
| Mammalian HEK 293 embryonic kidney cells | Cell viability | Ag | Extract from mixture Asafoetida and Agave americana leaf | [166] |
| Human HEK-293 embryonic kidney cells | Cell viability | Ag, Au |
Gelidium pussilum extract, Olea europaea leaf extract, Amino acids, Anabaena variabilis extract |
[158] [167] [10] [159] |
| Human fibroblast normal cells | Cytotoxicity at low concentrations | Au | Ziziphus nummularia extract | [62] |
| Human dermal fibroblast cells | Cell viability | Au | Amino acids | [4] |
| Human gingival fibroblast cells | Cell viability, cell morphology | Ag | Glucose | [5] |
| Human epithelial cell line HEK 293T | Cell viability | Ag | L-cysteine and citrate | [6] |
| Human mesenchymal stem cells | Cell viability | Ag | Olea europaea extract | [167] |
| Mouse embryonic fibroblasts NIH3T3 | Cell viability | Ag | Citrate | [7] |
| L 929 murine fibroblasts | Cell viability | Au Ag |
Alginates Ipomoea cairica leaf extract |
[168] [169] |
| [Mouse macrophage cells RAW 264.7 | Cell viability | Au | Citrate Ascorbic acid Lilium wallichianum leaf extract |
[8] [11] [170] |
| Human HEK kidney cells | Cell viability | Ag | Cyperus rotundus | [171] |
| Mouse embryonic fibroblast NIH3T3 | Cell viability, cell morphology | Ag Au Ag |
Garlic extract Shark Chondroitin sulfate Green tea extract |
[172] [160] [173] |
| Monkey kidney cells VERO | Cell viability, genotoxicity | Ag | Ascorbic acid | [9] |
3.2.2. In Vivo Tests
3.2.3. Comprehensive Testing Protocols
4. Therapeutic Application of Biosynthesized Ag and Au Nanoparticles in Human Medicine
5. Conclusions
Supplementary Materials
Funding
Data Availability Statement
Conflicts of Interest
References
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| Reason given for biocompatibility | Element(s) in nanoparticle | references |
| Aqueous extracts of earthworm and snail used in synthesis contain valuable biological entities | Ag, Au | [17] |
| Bio-directed synthesis | Ag | [18] |
| Capping with biomolecules of natural origin | Ag | [19] |
| Green (bio)synthesis | Ag | [20,21,22] |
| Natural biocorona | Au | [23] |
| Production by biological systems | Au | [24] |
| Synthesis/capping with citrate and conjugation with bovine serum albumin | Au | [25} |
| Synthesis and capping by non-toxic sodium lignosulfonate | Ag | [26] |
| Use of algal extracts in synthesis | Ag Au Ag |
[27] [28] [29] |
| Use of amino acids in synthesis | Ag | [3] |
| Use of bio-reducing and bio-capping agents | Ag | [16] |
| Use of carbohydrates | Au | [30] |
| Use of fungi in synthesis, leading to capping with fungal constituents; | Ag, Au | [31,32] |
| Use of herbal drug extract in synthesis | Ag, Au | [33] |
| Use of plant extract in synthesis | Ag, Au | [14,29,34,35,36,37,38,39,40,41,42,43,44] |
| Use of probiotic substances | Ag | [45] |
| Use of specified mushroom extracts | Au | [46] |
| Reference | Matters relevant to biocompatibility not covered or clarified by the reference |
| Baskaran et al. [185] | immunotoxicity, reproductive toxicity and genotoxicity |
| Aljohani et al. [188] | Chronic toxicity, immunotoxicity, genotoxicity, or developmental toxicity. |
| Mahmud et al. [186] Hossaini et al. [187] | Neurotoxicity, immunotoxicity, developmental toxicity and genotoxicity |
| Kahn et al. [189] | Immunotoxicity and neurotoxicity . |
| Stalin et al. [170] | Chronic toxicity, immunotoxicity, genotoxicity, and developmental toxicity. |
| Jaswanthika et al. [190] | The concentration tested 25µg/l was the same as, or was less than, the minimum inhibitory concentrations for several tested bacterial strains. |
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