Engineering the hard-soft tissue interface with random-to-aligned nanofiber scaffolds.

Q1 Engineering
Nanobiomedicine Pub Date : 2018-10-03 eCollection Date: 2018-01-01 DOI:10.1177/1849543518803538
John Nowlin, Mehzubh A Bismi, Baptiste Delpech, Patrick Dumas, Yingge Zhou, George Z Tan
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引用次数: 37

Abstract

Tendon injuries can be difficult to heal and have high rates of relapse due to stress concentrations caused by scar formation and the sutures used in surgical repair. Regeneration of the tendon/ligament-to-bone interface is critical to provide functional graft integration after injury. The objective of this study is to recreate the tendon-to-bone interface using a gradient scaffold which is fabricated by a one-station electrospinning process. Two cell phenotypes were grown on a poly-ε-caprolactone nanofiber scaffold which possesses a gradual transition from random to aligned nanofiber patterns. We assessed the effects of the polymer concentration, tip-to-collector distance, and electrospinning time on the microfiber diameter and density. Osteosarcoma and fibroblast cells were seeded on the random and aligned sections of scaffolds, respectively. A random-to-aligned cocultured tissue interface which mimicked the native transition in composition of enthesis was created after 96 h culturing. The results showed that the microstructure gradient influenced the cell morphology, tissue topology, and promoted enthesis formation. This study demonstrates a heterogeneous nanofiber scaffold strategy for interfacial tissue regeneration. It provides a potential solution for mimicking transitional interface between distinct tissues, and can be further developed as a heterogeneous cellular composition platform to facilitate the formation of multi-tissue complex systems.

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用随机排列的纳米纤维支架设计硬软组织界面。
肌腱损伤很难愈合,并且由于疤痕形成和手术修复中使用的缝合线引起的应力集中,复发率很高。肌腱/韧带-骨界面的再生对于在损伤后提供功能性移植物整合至关重要。本研究的目的是利用一站静电纺丝工艺制造的梯度支架重建肌腱与骨的界面。在聚ε-己内酯纳米纤维支架上生长了两种细胞表型,该支架具有从随机模式到排列模式的逐渐转变。我们评估了聚合物浓度、针尖到收集器的距离和静电纺丝时间对超细纤维直径和密度的影响。骨肉瘤和成纤维细胞分别在支架的随机切片和排列切片上播种。在培养96 h后,建立了一个随机排列的共培养组织界面,模拟了内生体组成的自然转变。结果表明,微观结构梯度影响细胞形态、组织拓扑结构,促进内插形成。本研究展示了一种用于界面组织再生的非均质纳米纤维支架策略。它为模拟不同组织之间的过渡界面提供了一种潜在的解决方案,并且可以进一步发展为促进多组织复杂系统形成的异质细胞组成平台。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nanobiomedicine
Nanobiomedicine Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.80
自引率
0.00%
发文量
1
审稿时长
14 weeks
期刊介绍: Nanobiomedicine is an international, peer-reviewed, open access scientific journal that publishes research in nanotechnology as it interfaces with fundamental studies in biology, as well as its application to the fields of medicine. Nanobiomedicine covers all key aspects of this research field, including, but not limited to, bioengineering, biophysics, physical and biological chemistry, and physiology, as well as nanotechnological applications in diagnostics, therapeutic application, preventive medicine, drug delivery, and monitoring of human disease. Additionally, theoretical and modeling studies covering the nanobiomedicine fields will be considered. All submitted articles considered suitable for Nanobiomedicine are subjected to rigorous peer review to ensure the highest levels of quality. The review process is carried out as quickly as possible to minimize any delays in the online publication of articles. Submissions are encouraged on all topics related to nanobiomedicine, and its clinical applications including but not limited to: Nanoscale-structured biomaterials, Nanoscale bio-devices, Nanoscale imaging, Nanoscale drug delivery, Nanobiotechnology, Nanorobotics, Nanotoxicology, Nanoparticles, Nanocarriers, Nanofluidics, Nanosensors (nanowires, nanophotonics), Nanosurgery (dermatology, gastroenterology, ophthalmology, etc), Nanocarriers commercialization of nanobiomedical technologies, Market trends in the nanobiomedicine space, Ethics and regulatory aspects of nanobiomedicine approval, New perspectives of nanobiomedicine in clinical diagnostics, BioMEMS, Nano-coatings, Plasmonics, Nanoscale visualization.
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