Suppr超能文献

具有接近组织样声机械和生物学特性的仿生鼓膜替代品的多模态增材制造。

Multimodal additive manufacturing of biomimetic tympanic membrane replacements with near tissue-like acousto-mechanical and biological properties.

作者信息

von Witzleben Max, Stoppe Thomas, Zeinalova Alina, Chen Zhaoyu, Ahlfeld Tilman, Bornitz Matthias, Bernhardt Anne, Neudert Marcus, Gelinsky Michael

机构信息

Technische Universität Dresden, Faculty of Medicine Carl Gustav Dresden, Centre for Translational Bone, Joint and Soft Tissue Research, Fetscherstr. 74, 01307 Dresden, Germany.

Technische Universität Dresden, Faculty of Medicine Carl Gustav Carus, Department of Otorhinolaryngology, Head and Neck Surgery, Ear Research Center Dresden (ERCD), Fetscherstr. 74, 01307 Dresden, Germany.

出版信息

Acta Biomater. 2023 Oct 15;170:124-141. doi: 10.1016/j.actbio.2023.09.005. Epub 2023 Sep 9.

Abstract

The three additive manufacturing techniques fused deposition modeling, gel plotting and melt electrowriting were combined to develop a mimicry of the tympanic membrane (TM) to tackle large TM perforations caused by chronic otitis media. The mimicry of the collagen fiber orientation of the TM was accompanied by a study of multiple funnel-shaped mimics of the TM morphology, resulting in mechanical and acoustic properties similar to those of the eardrum. For the different 3D printing techniques used, the process parameters were optimized to allow reasonable microfiber arrangements within the melt electrowriting setup. Interestingly, the fiber pattern was less important for the acousto-mechanical properties than the overall morphology. Furthermore, the behavior of keratinocytes and fibroblasts is crucial for the repair of the TM, and an in vitro study showed a high biocompatibility of both primary cell types while mimicking the respective cell layers of the TM. A simulation of the in vivo ingrowth of both cell types resulted in a cell growth orientation similar to the original collagen fiber orientation of the TM. Overall, the combined approach showed all the necessary parameters to support the growth of a neo-epithelial layer with a similar structure and morphology to the original membrane. It therefore offers a suitable alternative to autologous materials for the treatment of chronic otitis media. STATEMENT OF SIGNIFICANCE: Millions of people worldwide suffer from chronic middle ear infections. Although the tympanic membrane (TM) can be reconstructed with autologous materials, the grafts used for this purpose require extensive manual preparation during surgery. This affects not only the hearing ability but also the stability of the reconstructed TM, especially in the case of full TM reconstruction. The synthetic alternative presented here mimicked not only the fibrous structure of the TM but also its morphology, resulting in similar acousto-mechanical properties. Furthermore, its high biocompatibility supported the migration of keratinocytes and fibroblasts to form a neo-epithelial layer. Overall, this completely new TM replacement was achieved by combining three different additive manufacturing processes.

摘要

将熔融沉积建模、凝胶绘图和熔体静电纺丝这三种增材制造技术相结合,开发出一种鼓膜(TM)的仿制品,以解决慢性中耳炎导致的大鼓膜穿孔问题。对TM胶原纤维取向的模仿伴随着对TM形态的多个漏斗形仿制品的研究,从而产生了与鼓膜相似的机械和声学特性。对于所使用的不同3D打印技术,优化了工艺参数,以便在熔体静电纺丝装置中实现合理的微纤维排列。有趣的是,对于声机械性能而言,纤维图案不如整体形态重要。此外,角质形成细胞和成纤维细胞的行为对TM的修复至关重要,一项体外研究表明,这两种原代细胞类型在模仿TM各自细胞层时具有很高的生物相容性。对这两种细胞类型体内向内生长的模拟产生了与TM原始胶原纤维取向相似的细胞生长取向。总体而言,这种组合方法展示了支持具有与原始膜相似结构和形态的新上皮层生长的所有必要参数。因此,它为治疗慢性中耳炎提供了一种替代自体材料的合适选择。重要性声明:全球数百万人患有慢性中耳感染。虽然鼓膜(TM)可以用自体材料重建,但用于此目的的移植物在手术期间需要大量的手工制备。这不仅影响听力,还影响重建TM的稳定性,特别是在全TM重建的情况下。这里提出的合成替代品不仅模仿了TM的纤维结构,还模仿了其形态,从而产生了相似的声机械性能。此外,其高生物相容性支持角质形成细胞和成纤维细胞迁移以形成新上皮层。总体而言,这种全新的TM替代物是通过结合三种不同的增材制造工艺实现的。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验