熔融电写增强水凝胶支架工程厚皮替代品的微结构效应。

IF 4.7 Q2 MATERIALS SCIENCE, BIOMATERIALS
ACS Applied Bio Materials Pub Date : 2025-04-21 Epub Date: 2025-03-25 DOI:10.1021/acsabm.4c01541
Ferdows Afghah, Mine Altunbek, Mahdiyeh Zahrabi, Bahattin Koc
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引用次数: 0

摘要

工程厚皮组织替代品类似于天然组织的物理化学和力学性能是一个重大的挑战。熔体电解(MEW)是一种强大的技术,能够制造具有细纤维直径的高度有序结构,与天然细胞外基质(ECM)非常相似。在这项研究中,我们通过在0-90°和60-120°的网格结构和蜂窝状方向上沉积纤维,构建了三种不同几何形状的熔融电写多孔聚内酯(PCL)支架,以评估微观结构对支架机械强度和细胞行为的影响。这些支架随后被明胶水凝胶填充,包裹人皮肤真皮成纤维细胞(hsf)和人脐静脉内皮细胞(HUVECs)。机械拉伸试验表明,混合PCL/明胶支架的蜂窝状微观结构在失效时表现出更大的伸长率,以及适合皮肤组织应用的可接受的弹性模量。所有支架都提供了细胞相容的微环境,维持了90%以上的细胞活力并保留了典型的细胞形态。hsf通过PCL纤维被引导到根尖表面,而huvec分布在杂化结构内的明胶水凝胶中。此外,hsf的排列受支架几何形状的调节。值得注意的是,在14天的潜伏期内,HUVECs中CD31的表达显著增加。CD31是毛细管形成的关键跨膜蛋白。其中,0-90°网状结构和蜂窝状结构对CD31上调的影响最大。这些发现表明,hsf的微观结构引导及其与HUVECs在混合结构中的相互作用在促进血管化中起着至关重要的作用。综上所述,蜂窝状mew -明胶混合支架在有效复制全层皮肤组织替代品所必需的机械和物理化学性质方面显示出巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Microstructural Effects of Melt Electrowritten-Reinforced Hydrogel Scaffolds for Engineering Thick Skin Substitutes.

Microstructural Effects of Melt Electrowritten-Reinforced Hydrogel Scaffolds for Engineering Thick Skin Substitutes.

Microstructural Effects of Melt Electrowritten-Reinforced Hydrogel Scaffolds for Engineering Thick Skin Substitutes.

Microstructural Effects of Melt Electrowritten-Reinforced Hydrogel Scaffolds for Engineering Thick Skin Substitutes.

Engineering thick skin tissue substitutes resembling the physiochemical and mechanical properties of native tissue is a significant challenge. Melt electrowriting (MEW) is a powerful technique with the capability of fabricating highly ordered structures with fine fiber diameters, closely replicating the native extracellular matrix (ECM). In this study, we constructed melt electrowritten porous polycaprolactone (PCL) scaffolds with three different geometries by depositing fibers at 0-90 and 60-120° in a mesh structure and in a honeycomb-like orientation to assess the effects of the microstructure on the mechanical strength of the scaffold and cellular behavior. These scaffolds were subsequently infilled with gelatin hydrogel, encapsulating human skin dermal fibroblasts (HSFs) and human umbilical vein endothelial cells (HUVECs). Mechanical tensile tests revealed that the honeycomb microstructure of the hybrid PCL/gelatin scaffold exhibited greater elongation at failure, along with an acceptable elastic modulus suitable for skin tissue applications. All scaffolds provided a cytocompatible microenvironment that maintained over 90% cell viability and preserved typical cell morphology. HSFs were guided through the PCL fibers to the apical surface, while HUVECs were distributed within the gelatin hydrogel within the hybrid structure. Additionally, HSFs' alignment was regulated by the scaffold geometry. Notably, the expression of CD31 in HUVECs─a key transmembrane protein for capillary formation─increased significantly over a 14 day incubation period. Among those, 0-90° mesh and honeycomb geometries showed the greatest effects on the upregulation of CD31. These findings demonstrate that the microstructural guidance of HSFs and their interaction with HUVECs in hybrid structures play a crucial role in promoting vascularization. In conclusion, the honeycomb MEW-gelatin hybrid scaffold demonstrates significant potential for effectively replicating both the mechanical and physicochemical properties essential for full-thickness skin tissue substitutes.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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