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EXPERIMENTAL STUDY OF POLYCAPROLACTONE VASCULAR GRAFT FOR BLOOD VESSEL REGENERATION

https://doi.org/10.29001/2073-8552-2016-31-1-53-57

Abstract

The polycaprolactone (PCL) vascular graft for tissue regeneration was evaluated in the long­term in vivo study. The grafts were fabricated by electrospinning with the further morphological assessment and mechanical tests. Grafts were implanted into rat abdominal aortas for 2 weeks, 1 and 10 months to evaluate the formation of blood vessels and graft biocompatibility. PCL grafts had a highly porous structure. Mechanical properties of the grafts differed from those of native vessels; however, grafts were able to withstand the mechanical stress created by a blood flow. Implanted grafts were infiltrated by the host cells. Thus, PCL grafts are biocompatible and can be used as temporary vascular prostheses. 

About the Authors

V. V. Sevostyanova
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


A. V. Mironov
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


T. V. Glushkova
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


A. Yu. Burago
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


V. G. Matveeva
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


L. V. Antonova
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


Yu. A. Kudryavtseva
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


A. M. Seifalian
Centre for Nanotechnology & Regenerative Medicine, UCL Division of Surgery & Interventional Science, University College London (UCL), London, England, UK and NanoRegMed Ltd, London
United Kingdom


O. L. Barbarash
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


L. S. Barbarash
Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo
Russian Federation


References

1. Taggart D.P. Current status of arterial grafts for coronary artery bypass grafting // Ann. Cardiothorac. Surg. – 2013. – Vol. 2, No. 4. – P. 427–430.

2. Desai M., Seifalian A.M., Hamilton G. Role of prosthetic conduits in coronary artery bypass grafting // Eur. J. Cardiothorac. Surg. – 2011. – Vol. 40, No. 2. – P. 394–398.

3. Roll S., Muller¬Nordratnern J., Keil T. et al Dacron vs. PTFE as bypass materials in peripheral vascular surgery – systematic review and meta-analysis // BMC Surgery. – 2008. – Vol. 8. – P. 22.

4. Chlupaс J., Filova E., Bacakova L. Blood vessel replacement: 50 years of development and tissue engineering paradigms in vascular surgery // Physiol. Res. – 2009. – No. 58, Suppl. 2. – P. s119–s139.

5. Catto V., Fare S., Freddi G. et al. Vascular tissue engineering: recent advances in small diameter blood vessel regeneration // ISRN Vascular Medicine. – 2014. –Vol. 2014. – P. 1–27.

6. Hirai J., Matsuda T. Self-organized, tubular hybrid vascular tissue composed of vascular cells and collagen for low pressure loaded venous system // Cell Transplant. – 1995. – Vol. 4, No. 6. – P. 597–608.

7. Pektok E., Nottelet B., Tille J. et al. Degradation and healing characteristics of small¬diameter poly(ε-caprolactone) vascular grafts in the rat systemic arterial circulation // Circulation. – 2008. – Vol. 118, No. 24. – P. 2563–2570.

8. Iwasaki K., Kojima K., Kodama S. et al. Bioengineered three- layered robust and elastic artery using hemodynamicallyequivalent pulsatile bioreactor // Circulation. – 2008. – Vol. 118, No. 14, Suppl. – P. s52–s57.

9. Wu W., Allen R.A., Wang Y. et al. Fast-degrading elastomer enables rapid remodeling of a cell-free synthetic graft into a neoartery // Nat. Med. – 2012. – Vol. 18, No. 7. – P. 1148–1153.

10. Sevostyanova V.V., Elgudin Y.L., Glushkova T.V. et al. Use of polycaprolactone grafts for small-diameter blood vessels // Angiol Sosud Khir. – 2015. – No. 21. – P. 44–53.

11. Pham Q., Sharma U., Mikos A. Electrospinning of polymeric nanofibers for tissue engineering applications: A Review // Tissue engineering. – 2006. – Vol. 12, No. 5. – P. 1197–1211.

12. Sill T.J., von Recum H.A.. Electrospinning: Applications in drug delivery and tissue engineering // Biomaterials. – 2008. – Vol. 29, No. 13. – P. 1989–2006.

13. Heureux N.L., Paquet S., Labbe R. et al. A completely biological tissue¬engineered human blood vessel // FASEB J. – 1998. – Vol. 12, No. 1. – P. 47–56.

14. Tai N.R., Salacinski H.J., Edwards A. et al.Compliance properties of conduits used in vascular reconstruction // Br. J. Surg. – 2000. – Vol. 87, No. 11: – P. 1516–1524.


Review

For citations:


Sevostyanova V.V., Mironov A.V., Glushkova T.V., Burago A.Yu., Matveeva V.G., Antonova L.V., Kudryavtseva Yu.A., Seifalian A.M., Barbarash O.L., Barbarash L.S. EXPERIMENTAL STUDY OF POLYCAPROLACTONE VASCULAR GRAFT FOR BLOOD VESSEL REGENERATION. Siberian Journal of Clinical and Experimental Medicine. 2016;31(1):53-57. (In Russ.) https://doi.org/10.29001/2073-8552-2016-31-1-53-57

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ISSN 2713-2927 (Print)
ISSN 2713-265X (Online)