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一种制备双组分多孔管作为神经导管的简便方法。

An Easy-to-Handle Route for Bicomponent Porous Tubes Fabrication as Nerve Guide Conduits.

作者信息

Russo Teresa, Scialla Stefania, D'Albore Marietta, Cruz-Maya Iriczalli, De Santis Roberto, Guarino Vincenzo

机构信息

Institute for Polymers, Composites and Biomaterials (IPCB), National Research Council of Italy (CNR), Mostra d'Oltremare, Pad. 20, V. le J.F. Kennedy 54, 80125 Napoli, Italy.

出版信息

Polymers (Basel). 2024 Oct 14;16(20):2893. doi: 10.3390/polym16202893.

Abstract

Over the past two decades, the development of nerve guide conduits (NGCs) has gained much attention due to the impellent need to find innovative strategies to take care of damaged or degenerated peripheral nerves in clinical surgery. In this view, significant effort has been spent on the development of high-performance NGCs by different materials and manufacturing approaches. Herein, a highly versatile and easy-to-handle route to process 3D porous tubes made of chitosan and gelatin to be used as a nerve guide conduit were investigated. This allowed us to fabricate highly porous substrates with a porosity that ranged from 94.07 ± 1.04% to 97.23 ± 1.15% and average pore sizes-estimated via X-ray computed tomography (XCT) reconstruction and image analysis-of hundreds of microns and an irregular shape with an aspect ratio that ranged from 0.70 ± 0.19 to 0.80 ± 0.15 as a function of the chitosan/gelatin ratio. More interestingly, the addition of gelatin allowed us to modulate the mechanical properties, which gradually reduced the stiffness-max strength from 0.634 ± 0.015 MPa to 0.367 ± 0.021 MPa-and scaffold toughness-from 46.2 kJ/m to 14.0 kJ/m-as the gelatin content increased. All these data fall into the typical ranges of the morphological and mechanical parameters of currently commercialized NGC products. Preliminary in vitro studies proved the ability of 3D porous tubes to support neuroblastoma cell (SH-SY5Y) adhesion and proliferation. In perspective, the proposed approach could also be easily implemented with the integration of other processing techniques (e.g., electrospinning) for the design of innovative bi-layered systems with an improved cell interface and molecular transport abilities.

摘要

在过去二十年中,由于临床手术中迫切需要找到创新策略来处理受损或退化的周围神经,神经导管(NGC)的发展备受关注。鉴于此,人们通过不同材料和制造方法在高性能NGC的开发上投入了大量精力。在此,研究了一种高度通用且易于操作的方法,用于加工由壳聚糖和明胶制成的三维多孔管,以用作神经导管。这使我们能够制造出孔隙率在94.07±1.04%至97.23±1.15%之间的高度多孔基材,通过X射线计算机断层扫描(XCT)重建和图像分析估计平均孔径为数百微米,形状不规则,纵横比在0.70±0.19至0.80±0.15之间,这是壳聚糖/明胶比例的函数。更有趣的是,明胶的添加使我们能够调节机械性能,随着明胶含量的增加,刚度 - 最大强度从0.634±0.015兆帕逐渐降低至0.367±0.021兆帕,支架韧性从46.2千焦/立方米降低至14.0千焦/立方米。所有这些数据都落在目前商业化NGC产品的形态和机械参数的典型范围内。初步体外研究证明了三维多孔管支持神经母细胞瘤细胞(SH - SY5Y)粘附和增殖的能力。从长远来看,所提出的方法还可以通过整合其他加工技术(如静电纺丝)轻松实现,以设计具有改进的细胞界面和分子运输能力的创新双层系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a405/11511187/7b2f0e1b16c6/polymers-16-02893-g001.jpg

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