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电场收集器定位和运动方案对电纺分叉血管移植膜的影响。

Influence of Electrical Field Collector Positioning and Motion Scheme on Electrospun Bifurcated Vascular Graft Membranes.

作者信息

Tejeda-Alejandre Raquel, Lammel-Lindemann Jan A, Lara-Padilla Hernan, Dean David, Rodriguez Ciro A

机构信息

Tecnologico de Monterrey, Escuela de Ingeniería y Ciencias, Monterrey, N.L. 64849, Mexico.

Laboratorio Nacional de Manufactura Aditiva y Digital (MADIT), Apodaca, N.L. 66629, Mexico.

出版信息

Materials (Basel). 2019 Jul 2;12(13):2123. doi: 10.3390/ma12132123.

Abstract

Currently, electrospinning membranes for vascular graft applications has been limited, due to random fiber alignment, to use in mandrel-spun, straight tubular shapes. However, straight, circular tubes with constant diameters are rare in the body. This study presents a method to fabricate curved, non-circular, and bifurcated vascular grafts based on electrospinning. In order to create a system capable of electrospinning membranes to meet specific patient needs, this study focused on characterizing the influence of fiber source, electrical field collector position (inside vs. outside the mandrel), and the motion scheme of the mandrel (rotation vs. rotation and tilting) on the vascular graft membrane morphology and mechanical properties. Given the extensive use of poly(ε-caprolactone) (PCL) in tubular vascular graft membranes, the same material was used here to facilitate a comparison. Our results showed that the best morphology was obtained using orthogonal sources and collector positioning, and a well-timed rotation and tilting motion scheme. In terms of mechanical properties, our bifurcated vascular graft membranes showed burst pressure comparable to that of tubular vascular graft membranes previously reported, with values up to 5126 mmHg. However, the suture retention strength shown by the bifurcated vascular graft membranes was less than desired, not clinically viable values. Process improvements are being contemplated to introduce these devices into the clinical range.

摘要

目前,用于血管移植物的电纺丝膜由于纤维排列随机,仅限于用于心轴纺制的直管状。然而,体内直径恒定的直圆形管很少见。本研究提出了一种基于电纺丝制造弯曲、非圆形和分叉血管移植物的方法。为了创建一个能够电纺丝膜以满足特定患者需求的系统,本研究重点表征了纤维来源、电场收集器位置(心轴内部与外部)以及心轴的运动方案(旋转与旋转和倾斜)对血管移植物膜形态和力学性能的影响。鉴于聚(ε-己内酯)(PCL)在管状血管移植物膜中的广泛应用,这里使用相同的材料以利于比较。我们的结果表明,使用正交源和收集器定位以及适时的旋转和倾斜运动方案可获得最佳形态。在力学性能方面,我们的分叉血管移植物膜的爆破压力与先前报道的管状血管移植物膜相当,高达5126 mmHg。然而,分叉血管移植物膜的缝线保留强度低于预期,不是临床上可行的值。正在考虑改进工艺以便将这些装置引入临床应用范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/133c/6651616/d976654500fd/materials-12-02123-g001.jpg

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