Зеленом синтезе



бет6/6
Дата21.10.2022
өлшемі0,98 Mb.
#44680
1   2   3   4   5   6
References

  1. Sokolov L. D. Plant resources of the USSR: Flowering plants, their chemical composition, use; Families Paeoniaciae–Thymelaeaceae. – L.: Nauka, 1986. – 102 p.

  2. Sultanova N. A., Abilov Zh. A, Umbetova A. K., Choudhary M. I. Biologically Active Terpenoids from Tamarix Species. // Eur. Chem.–Technol. J. – 2013. – V. 15. – P. 219–226.

  3. Sultanova N. A. Hydrolyzable tannins and related compounds of plants of the genus Tamarix. // Izv. NAS RK. Ser. chem. – 2009. – No. 2. – C. 59–63.

  4. Sharma S.K., Parmar V.S. Novel constituents of Tamarix species // J. of Scien. and Indus Res. – 1998. – Vol. 57. – P. 873–890.

  5. Sultanova N.A., Abilov Zh.A., Shults E.E., Omurkamzinova V.B. Biologically active compounds from Tamarix hispida II. – Chem. Nat. Compd. – 2004. – V. 40. – P. 192–193.

  6. Marslin G. Secondary metabolites in the green synthesis of metallic nanoparticles // Materials (Basel). – 2018. – Vol. 11, № 6. – P. 1–25.

  7. Makarov V. V. "Green" nanotechnologies of synthesis of metal nanoparticles using plants / / Molecular Biology. – 2014. – Vol. 6, No. 1. – C. 31–36.

  8. K. Chaloupka, Y. Malam, A.M. Seifalian, Nanosilver as a New Generation of Nanoproduct in Biomedical Applications / / Trends in Biotechnology. – 2010. – № 28. – P. 580–588.

  9. Wang C. Cloning and expression analysis of 14 lipid transfer protein genes from Tamarix hispida responding to different abiotic stresses // Tree Physiol. – 2009. – Vol. 29, № 12. – P. 1607–1619.

  10. Umbetova, A.K., Choudhary, I.M., Burasheva, G.S., Sultanova, N.A., Abilov, Z.A. Triterpenoids of genus Tamarix. // Chemistry of Natural compounds. – 2006. –№42: 173–176.

  11. Sultanova, N.A., Makhmoor, T., Yasin A., Abilov, Z.A., Omurkanzinova, V.B., Atta–ur–Rahman, Choudhary, M.I. Isotamarixen – a new antioxidant and prolylendopeptidase – inhibiting triterpenoid from Tamarix hispida. // Planta Med. – 2004. – V. 70 – P. 65–67.

  12. Dzhuraevich, Karomatov Inomjon Tamariks–Perspektivnoe Lekarstvennoe Rastenie / / Electronic scientific Journal "Biology and Integrative Medicine". – 2017. – No. 3 (March) – pp. 65–68

  13. Abilov Zh. A., Sultanova N. A. Chemical composition and biological activity of plants of the genus Tamarix. – Almaty: Kazakh University, 2018. – 254 p.

  14. Lengke M.F., Southam G. Bioaccumulation of gold by sulphate–reducing bacteria cultured in the presence of gold (I) – thiosulfate complex // Geochem Cosmochim Acta. – 2006. – Vol. 70. – P. 3646–3661.

  15. Khan M., Adil S.F., Tahir M.N., Tremel W., Alkhathlan H.Z. Green synthesis of silver nanoparticles mediated by Pulicaria glutinosa extract // Int. J. Nanomedicine. – 2013. – Vol.8. – P. 1507–1516.

  16. Rai M., Yadav A. Plants as Potential Synthesiser of Precious Metal Nanoparticles: Progress and Prospects // IET Nanobiotechnol. – 2013. – Vol. 7, № 3. – P. 117–124.

  17. Halder, A.; Das, S.; Bera, T.; Mukherjee, A. Rapid synthesis for monodispersed gold nanoparticles in kaempferol and anti–leishmanial efficacy against wild and drug resistant strains. // RSC Adv. 2017 – №7. – 14159–14167.

  18. Jain, S., Mehata, M.S. Medicinal plant leaf extract and pure flavonoid mediated green synthesis of silver nanoparticles and their enhanced antibacterial property. // Sci. Rep. – 2017. – №7. – P. 15867–15885.

  19. Das, J.; Velusamy, P. Catalytic reduction of methylene blue using biogenic gold nanoparticles from Sesbania grandiflora L. J. Taiwan Inst. // Chem. Eng. – 2014. – №45. – P.2280–2285.

  20. Dowling, S.; Regan, F.; Hughes, H. The characterisation of structural and antioxidant properties of isoflavone metal chelates.// J. Inorg. Biochem. – 2010. – №104. – P. 1091–1098.

  21. Tarakhovsky Yu. S., Kim Yu. A., Abdrasilov B. S., Muzafarov E. N. Flavonoids: biochemistry, biophysics, medicine–Pushchino: Synchrobook, 2013–310 p.

  22. Marina Bandeira, Marcelo Giovanela, Mariana Roesch–Ely, Declan M. Devine Green synthesis of zinc oxide nanoparticles: A review of the synthesis methodology and mechanism of formation // Sustainable Chemistry and Pharmacy – 2020 – № 15 – P. 7

  23. Roy A., Bulut O., Some S., Mandal A. K., Yilmaz M. D. Green synthesis of silver nanoparticles: biomolecule–nanoparticle organizations targeting antimicrobial activity // RSC Adv. – 2019 – № 9 – P. 2673 – 2702.

  24. Marina Bandeira, Marcelo Giovanela, Mariana Roesch–Ely, Declan M. Devine Green synthesis of zinc oxide nanoparticles: A review of the synthesis methodology and mechanism of formation // Sustainable Chemistry and Pharmacy – 2020 – № 15 – P. 7

  25. Kumar, Brajesh Smita, Kumari Cumbal, Luis Debut, Alexis.Green synthesis of silver nanoparticles using Andean blackberry fruit extract // Saudi Journal of Biological Sciences – 2017 – № 24. – P.45–50

  26. Konishi Y, Tsukiyama T, Tachimi T. Microbial deposition of gold nanoparticles by the metal‑reducing bacterium Shewanella algae. // Electrochim Acta. 2007. – № 53. – P. 186–192.

  27. Du L, Jiang H, Liu X, Wang E. Biosynthesis of gold nanoparticles assisted by Escherichia coli DH5α and its application on direct electrochemistry of hemoglobin. // Electrochem Commun. – 2007. № 9. – P. 1165–1170.

  28. He S, Guo Z, Zhang Y, et al. Biosynthesis of gold nanoparticles using the bacteria Rhodopseudomonas capsulata.// Mater Lett. – 2007. – №61. P. 3984–3987.

  29. Shaik, M.; Albalawi, G.; Khan, S.; Khan, M.; Adil, S.; Kuniyil, M.; Al–Warthan, A.; Siddiqui, M.; Alkhathlan, H.; Khan, M. “Miswak” based green synthesis of silver nanoparticles: Evaluation and comparison of their microbicidal activities with the chemical synthesis. // Molecules 2016. – No. 21 – P. 1478.

  30. O. A. Bogoslovskaya, Astrotia A. B., Baimukanov T. A. the Influence of nanoparticles of copper and iron on the growth of microbial cells // Scientific and practical conference "New technology platform for biomedical research (biology, health care, pharmacy)" – Rostov–on–don, 2006. – P. 72–73.

  31. Glushchenko N. N., Theological O. A., I. P. Olkhovskaya Biological activity of ultrafine iron powder // 10th international conference on magnetic fluids – ples, 2002. – C. 308–312.

  32. . Glushchenko N. N. Comparative toxicity of salts and nanoparticles of metals and feature of their biological activity // Nanotechnology – technology XXI century – 2006. – No. 9. – P. 93–95.

  33. Arsentieva I. P., Zotova E. C., Folmanis G. E. Attestation and application of metal nanoparticles as biologically active preparations. // Issue of "Nanotechnology in medicine". – 2007. – № 2 (10). – C. 72–77.

  34. I. V. Babushkina, V. B. Borodulin, G. V. Korshunov, D. M. Puchinyan. Study of the antibacterial effect of copper and iron nanoparticles on clinical strains of Staphylococcus aureus / / Saratov Scientific and Medical Journal. – 2010. – V.6, No. 1. – C. 11–14.

  35. Shah R., Oza G.. Pandey S., Sharon M. Biogenic fabrication of gold nanoparticles using Halomonas salina // J. Microbiol. Biotechnol. Res. – 2012. – Vol. 2. – P. 485–492.

  36. Sathishkumar M., Sneha, K., Won, S.W., Cho, C.W., Kim, S.; Yun, Y.S. Cinnamon zeylanicum bark extracted and powder mediated green synthesis of nano–crystalline silver particles and its bacterial activity // Colloids Surf. B Biointerfaces. – 2009. – Vol. 73. – P. 332–338.

  37. Kunjiappan, S.; Chowdhury, R.; Bhattacharjee, C. A green chemistry approach for the synthesis and characterization of bioactive gold nanoparticles using Azolla microphylla methanol extract. Front. // Mater. Sci. – 2014. – №8. – P. 123–135.


Достарыңызбен бөлісу:
1   2   3   4   5   6




©emirsaba.org 2024
әкімшілігінің қараңыз

    Басты бет