Antimicrobial Applications of Clay Nanotube-Based Composites
Abstract
:1. Introduction
2. Clay Nanotubes Loading with Antimicrobial Agents
2.1. Loading of Organic Compouds Inside Clay Nanotubes
2.2. Grafting of Antimicrobial Nanoparticles on Clay Nanotubes Surfaces
3. Surfaces and Liquids Disinfection and Protection Using Clay Nanotubes-Based Antimicrobial Nanocomposites
4. Application of Clay Nanotube-Based Antibacterial Composites
4.1. Bone and Tissue Engineering
4.2. Wound Dressing
4.3. Filtration Membranes with Enhanced Antibacterial Activity
4.4. Food Contact Materials
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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№ | Anticeptic | Chemical Formula, Molecular Mass (g/mol.) | Loading Procedure | Loading Efficiency, wt % | Release Kinetics | Application | Reference |
---|---|---|---|---|---|---|---|
1 | Gentamicin | C21H43N5O7, 477.6 | Vacuum cycling, washing | 11 | 94% after 48 h (halloysite_gentamicin); 60% in 10.4 days (PMMA_ halloysite_gentamicin composite) | Bone cement | [38] |
2 | Brilliant Green | C27H33N2HO4S, 482.64 | Vacuum cycling, washing | 15–20 | 96% after 5 h, 99.9% after 1.1 day (Halloysite-PCL Scaffold); Cu-BTA coated BG/halloysite 99% after 8.3 days | poly-e-caprolactone scaffolds | [49,50] |
3 | Metronidazole | C6H9N3O3, 171.2 | mixing | 25 | Metronidazole/halloysite 70% after 10 h; Polycaprolactone/gelatin polymer/Metronidazole/halloysite 90% after 15 days | anti-infective GTR/GBR implant membrane | [104] |
4 | Chlorhexidine | C22H30Cl2N10, 505.45 | Vacuum cycling, washing | 15–20 | 85% after 4 h | Scaffolds, wound repair, patient recovery. | [49] |
Chlorhexidine gluconate | C34H54Cl2N10O14, 897.76 | Vacuum cycling, washing | 25% after 1 h | Cotton fabric coating | [58] | ||
5 | Povidone iodine | C6H9I2NO, 364.95 | Vacuum cycling, washing | 15–20 | 76% after 6.5 h | Scaffolds, wound repair, patient recovery. | [49] |
6 | Doxycyclin | C22H24N2O8, 444,43 | Vacuum cycling, washing | 15–20 | 99% after 4 h | Scaffolds, wound repair, patient recovery. | [49] |
7 | Iodine | I2, 253,8 | 15–20 | 93% after 5 h | Scaffolds, wound repair, patient recovery. | [49] | |
8 | Vancomycin | C66H75Cl2N9O24, 1449.3 | Vacuum cycling + sonication, washing | 15 | 50% at pH 7 after 1 day 74% at pH 7 after 5 weeks | local antibiotic delivery systems | [52] |
9 | Tetracycline base | C22H24N2O8, 444.4 | vacuum cycling, two step loading | 39 | Hall coated with chitosan 80% after 16 days | Periodontitis treatment | [53] |
Tetracycline hydrochloride | C22H25ClN2O8, 480.9 | vacuum cycling, two step loading | 42,6 | TCH/HNTs/89.4% after 24 h; TCH/HNTs/PLGA composite nanofibers 16–18% after 24 h; 68–76% after 42 days | drug-loaded electrospun nanofibers | [57] | |
10 | Amoxicillin | C16H19N3O5S, 365,4 | Vacuum cycling, washing | halloysite nanotubes/AMX 43% after 24 h; poly(lactic-co-glycolic acid)/halloysite g/mol,nanotubes/AMX/chitosan nanofibers 36% after 24 h | Wound healing | [56] | |
11 | Salicylic acid | C7H6O3, 138,12 | Vacuum cycling, washing | 10.5 | 60% after 10 h; 100% after 50 h | Active packaging for food industry | [60] |
12 | Polymyxin B sulfate | C56H100N16O17S, 1301.57 | Vacuum cycling, washing | 13 | gelatin-based nanocomposites 50% after 70 h | ||
13 | Carvacrol | C10H14O, 150,22 | Sonication | 33 | LDPE/(HNTs/carvacrol hybrid diffusion coefficient of 4.22 * 10−11 m2 s−1 | Active packaging for food industry | [62,63,64] |
14 | Thyme oil (TO) | Variable mol. mass, Mixture of compounds | sonication | 5–7 | TO/HTNs on air 69% after 9 day; TO/capped HNTs 33% after 9 days; TO/polymer coated HNTs 28% after 9 days | Paining for food packaging | [65] |
15 | Rosemary essential oil | Variable mol. mass, Mixture of compounds | Vacuum cycling | ~50 | Nano-hybrid/pectin 25% after 4 h; 90% after 28 days | biodegradable materials for packaging | [66] |
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Stavitskaya, A.; Batasheva, S.; Vinokurov, V.; Fakhrullina, G.; Sangarov, V.; Lvov, Y.; Fakhrullin, R. Antimicrobial Applications of Clay Nanotube-Based Composites. Nanomaterials 2019, 9, 708. https://doi.org/10.3390/nano9050708
Stavitskaya A, Batasheva S, Vinokurov V, Fakhrullina G, Sangarov V, Lvov Y, Fakhrullin R. Antimicrobial Applications of Clay Nanotube-Based Composites. Nanomaterials. 2019; 9(5):708. https://doi.org/10.3390/nano9050708
Chicago/Turabian StyleStavitskaya, Anna, Svetlana Batasheva, Vladimir Vinokurov, Gölnur Fakhrullina, Vadim Sangarov, Yuri Lvov, and Rawil Fakhrullin. 2019. "Antimicrobial Applications of Clay Nanotube-Based Composites" Nanomaterials 9, no. 5: 708. https://doi.org/10.3390/nano9050708
APA StyleStavitskaya, A., Batasheva, S., Vinokurov, V., Fakhrullina, G., Sangarov, V., Lvov, Y., & Fakhrullin, R. (2019). Antimicrobial Applications of Clay Nanotube-Based Composites. Nanomaterials, 9(5), 708. https://doi.org/10.3390/nano9050708