A novel small-diameter vascular graft: in vivo behavior of biodegradable three-layered tubular scaffolds
- PMID: 17705246
- DOI: 10.1002/bit.21629
A novel small-diameter vascular graft: in vivo behavior of biodegradable three-layered tubular scaffolds
Abstract
Small-diameter vascular grafts are potential substitutes for damaged vessels in patients, but most biodegradable grafts available now are not strong enough. The present study examined the burst strength, radial compliance, suture retention strength for a novel biodegradable tubular scaffold and investigated its behavior in vivo. The tubular scaffold (6-mm i.d., 4 cm long) has three layers including porous polylacticglycolic- acid in both inner and outer layers, a compact polyurethanes layer in midst. Bone marrow stromal cells (bMSCs) were seeded on the scaffolds and cultured for 7 days in vitro to construct tissue engineered vascular grafts which were then implanted in canine abdominal aorta. After 1, 3, 6, 12 and 24 weeks, the grafts were retrieved and evaluated histologically, angiographically and immunohistochemically. The biodegradable tubular scaffolds showed wall thickness of 0.295 mm to 0.432 mm; radial compliance of 3.80%/100 mmHg approximately 0.57%/100 mmHg, burst strength of 160 kPa approximately 183 kPa, and suture retention strength of 1959 N/cm(2) approximately 3228N/cm(2). The implanted grafts were fully patent without any signs of dilation or obstruction after 3 months' implantation. Scanning electron microscopy revealed a confluence endothelial cell layer spreading on the inner surface of the grafts. Immunohistochemistry of the retrieved grafts showed that vWF-stainin, alphaSMA-staining were positive in the inner and medium layer respectively. Masson's trichrome staining showed that amount of collagen fibers existed in the grafts wall. Overall, these novel three-layered scaffolds exhibited favourable mechanical strength, long term patency and good remodeling in vivo.
Copyright 2007 Wiley Periodicals, Inc.
Similar articles
-
Novel synthetic selectively degradable vascular prostheses: a preliminary implantation study.J Surg Res. 2001 Feb;95(2):152-60. doi: 10.1006/jsre.2000.6042. J Surg Res. 2001. PMID: 11162039
-
Construction of an autologous tissue-engineered venous conduit from bone marrow-derived vascular cells: optimization of cell harvest and seeding techniques.J Pediatr Surg. 2007 Jan;42(1):198-202. doi: 10.1016/j.jpedsurg.2006.09.054. J Pediatr Surg. 2007. PMID: 17208565
-
Tissue-engineered vascular grafts composed of marine collagen and PLGA fibers using pulsatile perfusion bioreactors.Biomaterials. 2007 Feb;28(6):1115-22. doi: 10.1016/j.biomaterials.2006.10.025. Epub 2006 Nov 16. Biomaterials. 2007. PMID: 17112581
-
Tissue-engineered blood vessels: alternative to autologous grafts?Arterioscler Thromb Vasc Biol. 2005 Jun;25(6):1128-34. doi: 10.1161/01.ATV.0000158996.03867.72. Epub 2005 Feb 10. Arterioscler Thromb Vasc Biol. 2005. PMID: 15705929 Review.
-
Prosthetic vascular grafts: wrong models, wrong questions and no healing.Biomaterials. 2007 Dec;28(34):5009-27. doi: 10.1016/j.biomaterials.2007.07.017. Epub 2007 Aug 3. Biomaterials. 2007. PMID: 17688939 Review.
Cited by
-
Future Perspectives on the Role of Stem Cells and Extracellular Vesicles in Vascular Tissue Regeneration.Front Cardiovasc Med. 2018 Jul 3;5:86. doi: 10.3389/fcvm.2018.00086. eCollection 2018. Front Cardiovasc Med. 2018. PMID: 30018970 Free PMC article. Review.
-
Regeneration of three layers vascular wall by using BMP2-treated MSC involving HIF-1α and Id1 expressions through JAK/STAT pathways.Stem Cell Rev Rep. 2011 Nov;7(4):847-59. doi: 10.1007/s12015-011-9254-6. Stem Cell Rev Rep. 2011. PMID: 21472453
-
MicroRNA-199b Modulates Vascular Cell Fate During iPS Cell Differentiation by Targeting the Notch Ligand Jagged1 and Enhancing VEGF Signaling.Stem Cells. 2015 May;33(5):1405-18. doi: 10.1002/stem.1930. Stem Cells. 2015. PMID: 25535084 Free PMC article.
-
Material properties and osteogenic differentiation of marrow stromal cells on fiber-reinforced laminated hydrogel nanocomposites.Acta Biomater. 2010 Jun;6(6):1992-2002. doi: 10.1016/j.actbio.2009.12.003. Epub 2009 Dec 6. Acta Biomater. 2010. PMID: 19995620 Free PMC article.
-
Biomechanical Comparison of Glutaraldehyde-Crosslinked Gelatin Fibrinogen Electrospun Scaffolds to Porcine Coronary Arteries.J Biomech Eng. 2016 Jan;138(1):0110011-01100112. doi: 10.1115/1.4031847. J Biomech Eng. 2016. PMID: 26501189 Free PMC article.
Publication types
MeSH terms
LinkOut - more resources
Full Text Sources
Other Literature Sources
Miscellaneous