Biological small-calibre tissue engineered blood vessels developed by electrospinning and in-body tissue architecture

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Abstract

There are no suitable methods to develop the small-calibre tissue-engineered blood vessels (TEBVs) that can be widely used in the clinic. In this study, we developed a new method that combines electrospinning and in-body tissue architecture(iBTA) to develop small-calibre TEBVs. Electrospinning imparted mechanical properties to the TEBVs, and the iBTA imparted biological properties to the TEBVs. The hybrid fibres of PLCL (poly(L-lactic-co-ε-caprolactone) and PU (Polyurethane) were obtained by electrospinning, and the fibre scaffolds were then implanted subcutaneously in the abdominal area of the rabbit (as an in vivo bioreactor). The biotubes were harvested after four weeks. The mechanical properties of the biotubes were most similar to those of the native rabbit aorta. Biotubes and the PLCL/PU vascular scaffolds were implanted into the rabbit carotid artery. The biotube exhibited a better patency rate and certain remodelling ability in the rabbit model, which indicated the potential use of this hybridization method to develop small-calibre TEBVs. [Figure not available: see fulltext.]

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Su, Z., Xing, Y., Wang, F., Xu, Z., & Gu, Y. (2022). Biological small-calibre tissue engineered blood vessels developed by electrospinning and in-body tissue architecture. Journal of Materials Science: Materials in Medicine, 33(10). https://doi.org/10.1007/s10856-022-06689-w

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