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Microporous Polyurethane Thin Layer as a Promising Scaffold for Tissue Engineering

机译:微孔聚氨酯薄层有望成为组织工程学的支架

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The literature describes that the most efficient cell penetration takes place at 200–500 μm depth of the scaffold. Many different scaffold fabrication techniques were described to reach these guidelines. One such technique is solvent casting particulate leaching (SC/PL). The main advantage of this technique is its simplicity and cost efficiency, while its main disadvantage is the scaffold thickness, which is usually not less than 3000 μm. Thus, the scaffold thickness is usually far from the requirements for functional tissue reconstruction. In this paper, we report a successful fabrication of the microporous polyurethane thin layer (MPTL) of 1 mm thick, which was produced using SC/PL technique combined with phase separation (PS). The obtained MPTL was highly porous (82%), had pore size in the range of 65–426 μm and scaffold average pore size was equal to 154 ± 3 μm. Thus, it can be considered a suitable scaffold for tissue engineering purpose, according to the morphology criterion. Polyurethane (PUR) processing into MPTL scaffold caused significant decrease of contact angle from 78 ± 4° to 56 ± 6° and obtained MPTL had suitable hydrophilic characteristic for mammalian cells growth and tissue regeneration. Mechanical properties of MPTL were comparable to the properties of native tissues. As evidenced by biotechnological examination the MPTL were highly biocompatible with no observed apparent toxicity on mouse embryonic NIH 3T3 fibroblast cells. Performed studies indicated that obtained MPTL may be suitable scaffold candidate for soft TE purposes such as blood vessels.
机译:文献描述了最有效的细胞渗透发生在支架深度为200–500μm的地方。描述了许多不同的脚手架制造技术以达到这些准则。一种这样的技术是溶剂浇铸颗粒浸出(SC / PL)。该技术的主要优点是其简单性和成本效益,而其主要缺点是支架厚度,通常不小于3000μm。因此,支架的厚度通常远非功能组织重建的要求。在本文中,我们报告了成功制造的1 mm厚的微孔聚氨酯薄层(MPTL),该薄层是使用SC / PL技术结合相分离(PS)制成的。获得的MPTL是高度多孔的(82%),孔径在65–426μm范围内,支架的平均孔径等于154±3μm。因此,根据形态学标准,可以认为它是用于组织工程目的的合适支架。聚氨酯(PUR)加工成MPTL支架后,接触角从78±4°显着降低到56±6°,获得的MPTL具有适合哺乳动物细胞生长和组织再生的亲水特性。 MPTL的机械性能与天然组织的性能相当。正如生物技术检查所证明的那样,MPTL具有高度的生物相容性,没有观察到对小鼠胚胎NIH 3T3成纤维细胞的明显毒性。进行的研究表明,获得的MPTL可能适合用于软TE目的(如血管)的支架。

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