Preview

Topical biotechnology

Advanced search

БИОДЕГРАДИРУЕМЫЕ МНОГОКОМПОНЕНТНЫЕ ПОЛИМЕРНЫЕ МАТЕРИАЛЫ

https://doi.org/10.20914/2304-4691-2020-3-393-396

About the Authors

З. Хайбуллин
Институт синтетических полимерных материалов им. Н.С. Ениколопова
Russian Federation


А. Курьянова
Первый МГМУ имени И.М. Сеченова Минздрава России
Russian Federation


Т. Демина
Институт синтетических полимерных материалов им. Н.С. Ениколопова
Russian Federation


П. Тимашев
Первый МГМУ имени И.М. Сеченова Минздрава России
Russian Federation


Т. Акопова
Институт синтетических полимерных материалов им. Н.С. Ениколопова
Russian Federation


References

1. O'Brien F.J. Biomaterials scaffolds for tissue engineering // Mater. Today. Elsevier Ltd, 2011. Vol. 14, № 3. P. 88-95.

2. Hunsberger J.G., Shupe T., Atala A. An Industry-Driven Roadmap for Manufacturing in Regenerative Medicine // Stem Cells Transl. Med. 2018. Vol. 7, № 8. P. 564-568.

3. Gritsch L., et al. Polylactide-based materials science strategies to improve tissue-material interface without the use of growth factors or other biological molecules // Mater. Sci. Eng. C. Elsevier, 2019. Vol. 94, № August 2018. P. 1083-1101.

4. Poh P.S.P., et al. Polylactides in additive biomanufacturing // Adv. Drug Deliv. Rev. Elsevier B.V., 2016. Vol. 107. P. 228-246.

5. Anitha A., et al. Chitin and chitosan in selected biomedical applications // Prog. Polym. Sci. Elsevier Ltd, 2014. Vol. 39, № 9. P. 1644-1667.

6. Ahsan S.M., Thomas M., Reddy K.K., Sooraparaju S.G., et al. Chitosan as biomaterial in drug delivery and tissue engineering // Int. J. Biol. Macromol. Elsevier B.V., 2018. Vol. 110. P. 97-109.

7. Asghari F., Samiei M., Adibkia K., Akbarzadeh A., et al. Biodegradable and biocompatible polymers for tissue engineering application: a review // Artif. Cells, Nanomedicine Biotechnol. 2017. Vol. 45, № 2. P. 185-192.

8. Liu Y., Tian F., Hu K.A. Synthesis and characterization of a brush-like copolymer of polylactide grafted onto chitosan // Carbohydr. Res. 2004. Vol. 339, № 4. P. 845-851.

9. Li G., Zhuang Y., Mu Q., Wang M., et al. Preparation, characterization and aggregation behavior of amphiphilic chitosan derivative having poly (l-lactic acid) side chains // Carbohydr. Polym. 2008. Vol. 72, № 1. P. 60-66.

10. Akopova T.A., Zelenetskii A.N., Ozerin A.N. Solid state synthesis and modification of chitosan // Focus on Chitosan Research. 2011. 223-253 p.

11. James S.L., Adams C.J., Bolm C., Braga D., et al. Mechanochemistry: opportunities for new and cleaner synthesis // Chem. Soc. Rev. 2012. Vol. 41, № 1. P. 413-447.

12. Demina T.S., Kuryanova A.S., Bikmulina P.Y., Aksenova N.A., et al. Multicomponent Non-Woven Fibrous Mats with Balanced Processing and Functional Properties // Polymers (Basel). 2020. Vol. 12, № 9. P. 1911.

13. Demina T.S., et al. Biodegradable cell microcarriers based on chitosan/polyester graft-copolymers// Molecules. 2020. Vol. 25, № 8.

14. Demina T.S., et al. Chitosan-g-Polyester Microspheres: Effect of Length and Composition of Grafted Chains // Macromol. Mater. Eng. 2019. Vol. 304, № 10. P. 1900203.

15. Li B., et al. Past, present, and future of microcarrier-based tissue engineering // J. Orthop. Transl. Elsevier Taiwan LLC and the, 2015. Vol. 3, № 2. P. 51-57.

16. Chen X.Y., et al. Recent advances in the use of microcarriers for cell cultures and their ex vivo and in vivo applications // Biotechnol. Lett. Springer Netherlands, 2019. Vol. 42, № 1. P. 1-10.

17. Jiang T., Abdel-Fattah W.I., Laurencin C.T. In vitro evaluation of chitosan/poly (lactic acid-glycolic acid) sintered microsphere scaffolds for bone tissue engineering // Biomaterials. 2006. Vol. 27, № 28. P. 4894-4903.

18. Zhou W.Y., et al. Selective laser sintering of porous tissue engineering scaffolds from poly(l-lactide)/carbonated hydroxyapatite nanocomposite microspheres // J. Mater. Sci. Mater. Med. 2008. Vol. 19, № 7. P. 2535-2540.


Review

For citations:


 ,  ,  ,  ,   . Topical biotechnology. 2020;(3):393-396. (In Russ.) https://doi.org/10.20914/2304-4691-2020-3-393-396

Views: 34


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2304-4691 (Print)