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Bioactive electrospun scaffolds delivering growth factors and genes for tissue engineering applications

机译:具有生物活性的电纺支架,可为组织工程应用提供生长因子和基因

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摘要

A biomaterial scaffold is one of the key factors for successful tissue engineering. In recent years, an increasing tendency has been observed toward the combination of scaffolds and biomolecules, e.g. growth factors and therapeutic genes, to achieve bioactive scaffolds, which not only provide physical support but also express biological signals to modulate tissue regeneration. Huge efforts have been made on the exploration of strategies to prepare bioactive scaffolds. Within the past five years, electrospun scaffolds have gained an exponentially increasing popularity in this area because of their ultrathin fiber diameter and large surface-volume ratio, which is favored for biomolecule delivery. This paper reviews current techniques that can be used to prepare bioactive electrospun scaffolds, including physical adsorption, blend electrospinning, coaxial electrospinning, and covalent immobilization. In addition, this paper also analyzes the existing challenges (i.e., protein instability, low gene transfection efficiency, and difficulties in accurate kinetics prediction) to achieve biomolecule release from electrospun scaffolds, which necessitate further research to fully exploit the biomedical applications of these bioactive scaffolds.
机译:生物材料支架是成功进行组织工程的关键因素之一。近年来,已经观察到支架和生物分子例如分子生物学的组合的增加趋势。生长因子和治疗基因,以实现具有生物活性的支架,该支架不仅提供物理支持,还表达生物信号来调节组织再生。在探索制备生物活性支架的策略方面已经做出了巨大的努力。在过去的五年中,电纺支架由于其超细的纤维直径和大的表面积/体积比而在该领域获得了成倍的增长,这对于生物分子的输送是有利的。本文概述了可用于制备生物活性电纺支架的当前技术,包括物理吸附,共混电纺,同轴电纺和共价固定化。此外,本文还分析了实现电纺丝支架释放生物分子所面临的挑战(即蛋白质不稳定,基因转染效率低和精确动力学预测方面的困难),这需要进一步的研究以充分利用这些生物活性支架的生物医学应用。

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