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3D 纤维增强水凝胶支架的熔融静电纺丝和凝胶浇铸混合设计用于伤口愈合。

3D Fiber Reinforced Hydrogel Scaffolds by Melt Electrowriting and Gel Casting as a Hybrid Design for Wound Healing.

机构信息

Sabanci University Faculty of Engineering and Natural Sciences, Istanbul, 34956, Turkey.

Sabanci University Nanotechnology Research and Application Center, Istanbul, 34956, Turkey.

出版信息

Adv Healthc Mater. 2022 Jun;11(11):e2102068. doi: 10.1002/adhm.202102068. Epub 2022 Feb 18.

DOI:10.1002/adhm.202102068
PMID:35120280
Abstract

Emerging biomanufacturing technologies have revolutionized the field of tissue engineering by offering unprecedented possibilities. Over the past few years, new opportunities arose by combining traditional and novel fabrication techniques, shaping the hybrid designs in biofabrication. One of the potential application fields is skin tissue engineering, in which a combination of traditional principles of wound dressing with advanced biofabrication methods could yield more efficient therapies. In this study, a hybrid design of fiber-reinforced scaffolds combined with gel casting is developed and the efficiency for in vivo wound healing applications is assessed. For this purpose, 3D fiber meshes produced by melt electrowriting are selectively filled with photocrosslinkable gelatin hydrogel matrices loaded with different growth factor carrier microspheres. Additionally, the influence of the inclusion of inorganic bioactive glass particles within the composite fibrous mesh is evaluated. Qualitative evaluation of secondary wound healing criteria and histological analysis shows that hybrid scaffolds containing growth factors and bioactive glass enhances the healing process significantly, compared to the designs merely providing a fiber-reinforced bioactive hydrogel matrix as the wound dressing. This study aims to explore a new application area for melt electrowriting as a powerful tool in fabricating hybrid therapeutic designs for skin tissue engineering.

摘要

新兴的生物制造技术通过提供前所未有的可能性彻底改变了组织工程领域。在过去的几年中,通过结合传统和新型制造技术出现了新的机会,从而在生物制造中形成了混合设计。潜在的应用领域之一是皮肤组织工程,其中传统的伤口敷料原理与先进的生物制造方法相结合,可以产生更有效的治疗方法。在这项研究中,开发了一种纤维增强支架的混合设计,结合凝胶铸造,并评估其在体内伤口愈合应用中的效率。为此,通过熔融静电纺丝生产的 3D 纤维网选择性地填充有不同生长因子载体微球的光交联明胶水凝胶基质。此外,还评估了在复合纤维网中包含无机生物活性玻璃颗粒的影响。对二次伤口愈合标准的定性评估和组织学分析表明,与仅提供纤维增强的生物活性水凝胶基质作为伤口敷料的设计相比,包含生长因子和生物活性玻璃的混合支架显著促进了愈合过程。本研究旨在探索熔融静电纺丝作为制造皮肤组织工程混合治疗设计的有力工具的新应用领域。

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