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Novel Approach to Creation of Biomimetic Scaffolds for Tissue Engineering

Published online by Cambridge University Press:  07 October 2011

Bronislava Belenkaya
Affiliation:
3S Corporation, Campbell, CA 95008, U.S.A.
Aleksey Shepelev
Affiliation:
The Karpov Institute of Physical Chemistry, Moscow, Russia
Valentina Sakharova
Affiliation:
3S Corporation, Campbell, CA 95008, U.S.A.
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Abstract

In tissue engineering, a successful tissue scaffold is not simply a 3D-micro/nanofibered, highly porous environment that mimics a native extra cellular matrix (ECM). To maintain an ideal medium for cells to grow and proliferate, the biodegradable scaffold should be generally hydrophilic and should serve as a reservoir of cell nutrients, growth factors and other components present in the blood flow. Synthetic biodegradable polymers have found wide applications in micro/nanofibered scaffolding materials because of their proven biocompatibility, availability of established processing techniques, good mechanical properties and controlled, regulated biodegradation time. But, high hydrophobicity of these polymers does not allow to realize a moist environment in the scaffold typical for native ECM and favorable for the cells.

We have recently found that electrospun polymeric blends of polyvinylpyrrolidone (PVP) and poly-d,l-lactide (PDLL) provide mechanically strong micro/nanofibered materials of high hydrophilicity. These materials have a regulated absorption ability of blood or other biological liquids of up to ~8-10 g/g without swelling or changing the shape of the fibers. As demonstrated by spectroscopy and differential scanning calorimetry, strong polymer chains assembly of PDLL-PVP occurs when the corresponding blends are processed into micro/nanofibers by electrospinning or casted into films. The polymer chain assembly is not affected by absorbed liquids. The matrices preserve their liquid absorption ability after drying. Preliminary testing of matrices in humans demonstrated a high efficacy of the scaffolds for wound healing acceleration.

Type
Research Article
Copyright
Copyright © Materials Research Society 2011

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References

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