| 1 | Chen X., Schluesener H.J., Nanosilver: a nanoproduct in medical application. Toxicol. Lett. 2008, 176 pp. 1–12 |
| 2 | Shrivastava S., Bera T., Roy A., Singh G., Ramachandrarao P., Dash D., Characterization of enhanced antimicrobial effects of novel silver nanoparticles. Nanotechnology, 18 , 2007 225103 (9 pp) |
| 3 | Asharani P.V., Wu Y.L., Gong Z., Valiyaveettil S, Toxicity of silver nanoparticles in zebrafish models. Nanotechnology, 19 , 2008 255102 (8 pp) |
| 4 | ISO 20752, Cork stoppers — Determination of releasable 2, 4, 6-trichloroanisol (TCA) |
| 5 | ISO 8196‑1, Milk – Definition and evaluation of the overall accuracy of alternative methods of milk analysis — Part 1: Analytical attributes of alternative methods |
| 6 | ISO/TS 15216‑1, Microbiology of food and animal feed — Horizontal method for determination of hepatitis A virus and norovirus in food using real-time RT-PCR — Part 1: Method for quantification |
| 7 | ISO 3534‑1, Statistics – Vocabulary and symbols — Part 1: General statistical terms and terms used in probability |
| 8 | Vollmer W., Blanot D., de Pedro M.A., Peptidoglycan structure and architecture. FEMS Microbiol. Rev. 2008, 32 pp. 149–167 |
| 9 | ISO/TS 10797, Nanotechnologies — Characterization of single-wall carbon nanotubes using transmission electron microscopy |
| 10 | ISO/TS 80004‑6, Nanotechnologies — Vocabulary — Part 6: Nano-object characterization |
| 11 | Zhang X., Amelung, W. Gas chromatography determination of muramic acid, glucosamine, mannosamine and galactosamine in soils. Soil Biol. Biochem. 1996, 28 pp. 1201–1206 |
| 12 | Mirzajani F., Ghassempour A., Aliahmad A., Esmaeili M.A., Antibacterial effect of silver nanoparticles on Staphylococcus aureus. Res. Microbiol. 2011, 162 pp. 542–549 |
| 13 | Li W.R., Xie X.B., Shi Q.S., Zeng H.Y., OU-Yang, Y.S., Chen, Y.B. Antibacterial activity and mechanism of silver nanoparticles on Escherichia coli. Appl. Microbiol. Biotechnol. 2010, 85 pp. 1115–1122 |
| 14 | Li W.R., Xie X.B., Shi Q.S., Duan S.S., Ouyang Y.S., Chen Y.B., Antibacterial effect of silver nanoparticles on Staphylococcus aureus. Biomedical and Life Science, 24 (1), 2011, pp. 135-141 |
| 15 | Jung W.K., Koo H.C., Kim K.W., Shin S., Kim S.H., Park Y.H., Antibacterial activity and mechanism of action of the silver ion in Staphylococcus aureus and Escherichia coli. Appl. Environ. Microbiol. 2008, 74 (7) pp. 2171–2178 |
| 16 | Sondi I., Salopek-Sondi B., Silver nanoparticle as antimicrobial agent: a case study on E. coli as a model for Gram-negative bacteria. J. Colloid Interface Sci. 2004, 275 pp. 177–182 |
| 17 | Kozar, M.P., Krahmer, M.T., Fox , A., Lennart, L., Allton , J. Lunar dust: a negative control for biomarker analyses of extraterrestrial samples? Geochim. Cosmochim. Acta. 65 ( 19 ), 2001, pp. 3307-3317. |
| 18 | Reliability of muramic acid as a bacterial biomarker is influenced by methodological artifacts from streptomycin. Microb. Ecol. 2009, 57 (3) pp. 494–500. Available at: Liang, C and Read, H.W and Balser, T.C |
| 19 | ISO/TS 12805, Nanotechnologies — Materials specifications — Guidance on specifying nano-objects. |
| 20 | ISO/TR 13014, Nanotechnologies — Guidance on physico-chemical characterization of engineered nanoscale materials for toxicologic assessment |