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首页> 外文期刊>Tissue engineering, Part B. Reviews >Increasing the pore size of electrospun scaffolds.
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Increasing the pore size of electrospun scaffolds.

机译:增加电纺支架的孔径。

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Electrospinning has gained much attention in the past decade as an effective means of generating nano- to micro-scale polymer fibers that resemble native extracellular matrix. High porosity, pore interconnectivity, and large surface area to volume ratio of electrospun scaffolds make them highly conducive to cellular adhesion and growth. However, inherently small pores of electrospun scaffolds do not promote adequate cellular infiltration and tissue ingrowth. Cellular infiltration into the scaffold is essential for a range of tissue engineering applications and is particularly important in skin and musculoskeletal engineering. Pore size, porosity, and pore interconnectivity dictate the extent of cellular infiltration and tissue ingrowth into the scaffold; influence a range of cellular processes; and are crucial for diffusion of nutrients, metabolites, and waste products. A number of electrospinning techniques and postelectrospinning modifications have, therefore, been developed in order to increase the pore size of electrospun scaffolds. Diverse techniques ranging from simple variations in the electrospinning parameters to complex methodologies requiring highly specialized equipment have been explored and are described in this article.
机译:在过去的十年中,静电纺丝作为产生类似于天然细胞外基质的纳米级至微米级聚合物纤维的有效手段而受到了广泛关注。电纺支架的高孔隙率,孔互连性和较大的表面积与体积之比使其非常有助于细胞粘附和生长。然而,电纺支架固有的小孔不能促进足够的细胞浸润和组织向内生长。细胞向支架的浸润对于一系列组织工程应用至关重要,在皮肤和肌肉骨骼工程中尤为重要。孔的大小,孔隙率和孔的互连性决定了细胞向支架中的浸润和组织向内生长的程度。影响一系列细胞过程;对于营养物质,代谢产物和废物的扩散至关重要。因此,为了增加电纺支架的孔径,已经开发了许多电纺技术和电纺后修饰。本文探索并描述了从静电纺丝参数的简单变化到需要高度专业化设备的复杂方法的各种技术。

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