- PII
- S30345413S0453881125020054-1
- DOI
- 10.7868/S3034541325020054
- Publication type
- Article
- Status
- Published
- Authors
- Volume/ Edition
- Volume 66 / Issue number 2
- Pages
- 116-125
- Abstract
- This article presents studies on the catalytic, peroxidase-like properties of silver nanoparticles (Ag NPs) immobilized in polymethacrylate matrix (PMM). It was demonstrated that silver nanoparticles exhibit pronounced peroxidase-like activity in the oxidation reaction of the chromogenic substrate – indigocarmine in the presence of HO. The Michaelis–Menten model was used to assess the kinetic parameters of the reaction. The values of Michaelis constant () observed for indigocarmine and HO (0.1 mM and 1.0 mM, respectively) show strong affinity of the substrates to silver nanoparticles in PMM.
- Keywords
- наночастицы серебра полиметакрилат пероксидазоподобная активность нанозим определение глюкозы
- Date of publication
- 17.04.2025
- Year of publication
- 2025
- Number of purchasers
- 0
- Views
- 24
References
- 1. Zhang R., Yan X., Fan K. // Acc. Mater. Res. 2021. V. 2. P. 534.
- 2. Tang G., He J., Liu J., Yan X., Fan K. // Exploration. 2021. V. 1. № 1. P. 75.
- 3. Li X., Zhu H., Liu P., Wang M., Pan J., Qiu F., Ni L., Niu X. // TrAC Trend. Anal. Chem. 2021. V. 143. 116379.
- 4. Alula M.T., Feke K. // J. Clust. Sci. 2023. V. 34. № 1. P. 614.
- 5. Yan W.U., Zhou J.M., Jiang Y.S., Wen L.I., MengJie H.E., Xiao Y., Chen J.Y. // Chin. J. Anal. Chem. 2022. V. 50. № 12. 100187.
- 6. Cui Y., Lai X., Liang B., Liang Y., Sun H., Wang L. // ACS Omega. 2020. V. 5. № 12. P. 6804.
- 7. Wang H., Wan K., Shi X. // Adv. Mater. 2019. V. 31. № 45. 1805368.
- 8. Jiang C., Wei X., Bao S., Tu H., Wang W. // RSC Adv. 2019. V. 9. № 71. 41568.
- 9. Li D., Tian R., Kang S., Chu X.Q., Ge D., Chen X. // Food Chem. 2022. V. 393. 133386.
- 10. Karim M.N., Anderson S.R., Singh S., Ramanathan R., Bansal V. // Biosens. Bioelectron. 2018. V. 110. P. 8.
- 11. Saranchina N.V., Bazhenova O.A., Bragina S.K., Semin V.O., Gavrilenko N.A., Volgina T.N., Gavrilenko M.A. // Talanta. 2024. V. 275. 126159.
- 12. Bragina S.K., Bazhenova O.A., Gavrilenko M.M., Chubik M.V., Saranchina N.V., Volgina T.N., Gavrilenko N.A. // Mendeleev Commun. 2023. V. 33. № 2. P. 263.
- 13. Gavrilenko N.A., Saranchina N.V. // J. Anal. Chem. 2010. V. 65. № 2. P. 153.
- 14. Tolstov A.L., Lebedev E.V. // Theor. Exp. Chem. 2012. V. 48. № 4. P. 211.
- 15. Lian J., Yin D., Zhao S., Zhu X., Liu Q., Zhang X., Zhang X. // Colloid Surface A. 2020. V. 603. 125283.
- 16. Lian Q., Chen L., Peng G., Zheng X., Liu Z., Wu S. // Chem. Phys. 2023. V. 570. 111895.
- 17. Darabdhara G., Sharma B., Das M.R., Boukherrouh R., Szunerits S. // Sensor. Actuat. B: Chem. 2017. V. 238. P. 851.
- 18. Jiang C., Bai Z., Yuan F., Ruan Z., Wang W. // Spectrochim. Acta A. 2022. Vol. 265. 120348.
- 19. Wei F., Cui X., Wang Z., Dong C., Li J., Han X. // Chem. Eng. J. 2021. V. 408. 127240.
- 20. Alula M.T., Hendricks-Leukes N.R. // Spectrochim. Acta A. 2024. V. 322. 124830.
- 21. Mazhani M., Alula M.T., Murape D. // Anal. Chim. Acta. 2020. V. 1107. P. 193.
- 22. Khagar P., Bagde A.D., Sarode B., Maldhure A.V., Wankhade A.V. // Inorg. Chem. Commun. 2022. V. 141. 109622.