具有模拟动脉细胞外基质纤维结构的近场静电纺生物可吸收血管移植物的制备和力学特性。

IF 2.2 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Alexandra E Snyder, Jada K Sandridge, Adeline E Nordmoe, Evan N Main, Gary L Bowlin
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引用次数: 0

摘要

心血管疾病,即动脉硬化,其特点是血管(动脉)壁增厚,限制血液流动,是一个全球性的健康问题。一种治疗选择是外科手术,利用自体或合成血管移植物来搭桥或替换病变动脉段。本研究的目的是制造和机械表征具有纤维结构的近场静电纺生物可吸收血管移植物,模拟动脉细胞外基质。采用定制的近场静电纺丝(NFES)系统制备了纤维周向排列角度分别为15°/75°和30°/60°(0°为纤维周向排列)的聚二氧杂环酮血管结构。通过纵向和周向单轴力学测试、缝合保留和破裂压力评估,将血管结构力学性能与隐静脉(SV)和乳腺内动脉(IMA)进行比较。结果表明,与30°/60°模板相比,15°/75°模板最接近模拟原生船舶目标特性;然而,两种血管模板设计都没有达到或超过所有目标值。两种结构的极限抗拉强度均满足环向SV值(2.61 MPa)和纵轴IMA值(4.3 MPa)。在缝合保留方面,15°/75°模板是唯一在IMA和SV目标范围138-200 gf内的构造。最后,破裂压力测试结果表明,两种血管结构都没有达到SV或IMA (1600-3196 mmHg)的水平,然而,15°结构在SV的较低误差范围内。总之,通过进一步的设计修改,NFES结构通过模仿天然动脉的结构和力学特性,证明了作为小直径血管移植物的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fabrication and mechanical characterization of near field electrospun bioresorbable vascular grafts with fibrous architecture mimicking the arterial extracellular matrix.

Cardiovascular disease, arteriosclerosis, is characterized by the thickening of blood vessel (arteries) walls restricting blood flow and is a global health problem. One treatment option is a surgical procedure utilizing an autologous or synthetic vascular graft to bypass or replace the diseased arterial segment. The goal of this study was to fabricate and mechanically characterize near field electrospun bioresorbable vascular grafts with a fibrous architecture that mimics the arterial extracellular matrix. Polydioxanone vascular constructs with circumferential fiber alignment angles of 15°/75° and 30°/60° (0° representing circumferential fiber alignment) were fabricated using a custom built near-field electrospinning (NFES) system. The vascular construct mechanical properties were compared to the saphenous vein (SV) and internal mammary artery (IMA) through longitudinal and circumferential uniaxial mechanical testing, suture retention, and burst pressure evaluations. The results demonstrated that the 15°/75° templates were closest to mimicking the native vessel target properties as compared to the 30°/60°; however, neither of the vascular template designs achieved or exceeded all the target values. For the ultimate tensile strength, both the constructs met the SV value on the circumferential axis (2.61 MPa) and the IMA value on the longitudinal axis (4.3 MPa). In terms of suture retention, the 15°/75° template was the only construct that was in the IMA and SV targeted range of 138-200 gf. Finally, the burst pressure testing results indicated that neither of the vascular constructs achieved the level of the SV or IMA (1600-3196 mmHg), however, the 15° constructs were within the lower error of the SV. In conclusion, with further design modifications, NFES constructs have demonstrated promise as small-diameter vascular grafts by mimicking native arterial architecture and mechanical properties.

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来源期刊
Journal of Bioactive and Compatible Polymers
Journal of Bioactive and Compatible Polymers 工程技术-材料科学:生物材料
CiteScore
3.50
自引率
0.00%
发文量
27
审稿时长
2 months
期刊介绍: The use and importance of biomedical polymers, especially in pharmacology, is growing rapidly. The Journal of Bioactive and Compatible Polymers is a fully peer-reviewed scholarly journal that provides biomedical polymer scientists and researchers with new information on important advances in this field. Examples of specific areas of interest to the journal include: polymeric drugs and drug design; polymeric functionalization and structures related to biological activity or compatibility; natural polymer modification to achieve specific biological activity or compatibility; enzyme modelling by polymers; membranes for biological use; liposome stabilization and cell modeling. This journal is a member of the Committee on Publication Ethics (COPE).
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