Structurally Reinforced Biodegradable Antithrombotic Small-Caliber Vascular Grafts Immobilized with VEGF to Accelerate Endothelialization: When 3D Printing Meets Electrospun Fiber

Gladys A Emechebe, Francis O. Obiweluozor, In-Seok Jeong, Park June Kyu, C. Park, Cheol-Sang Kim
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Abstract

The major challenge of commercially available vascular substitutes come from their limitations in terms of good mechanical strength and host remodeling. To date, tissue-engineered and synthetic grafts have not translated well to clinical trials when looking at small diameters. We conceptualized a cell-free structurally reinforced biodegradable vascular graft recapitulating the anisotropic feature of native blood vessel by using nanofibrous scaffold that will gradually degrade systematically to yield a neo-vessel, facilitated by an immobilized bioactive molecule-vascular endothelial growth factor (VEGF). The nanotopographic cue of the device is capable to directs host cell infiltration. We evaluated the burst pressure, Histology, hemocompatibility, compression test and mechanical analysis of the new graft. Hence, we proposed that future long-term studies of this technology on porcine models due to their similar vasculature regeneration to humans is needed prior to clinical translation. This acellular off-the-shelf approach will mark a paradigm shift from the current dominant focus on cell incorporation in vascular tissue engineering thus strongly influencing regenerative medicine as we move forward in this new decade.
用VEGF固定的结构增强的可生物降解抗血栓小口径血管移植物加速内皮化:当3D打印与静电纺丝纤维结合时
商业上可用的血管替代品的主要挑战在于它们在良好的机械强度和宿主重塑方面的局限性。到目前为止,当观察小直径时,组织工程和合成移植物还没有很好地转化为临床试验。我们构思了一种无细胞结构增强的可生物降解血管移植物,通过使用纳米纤维支架,再现了天然血管的各向异性特征,该支架将在固定化生物活性分子血管内皮生长因子(VEGF)的促进下逐渐系统降解产生新血管。该装置的纳米形貌线索能够指导宿主细胞的浸润。我们评估了新移植物的破裂压力、组织学、血液相容性、压缩试验和力学分析。因此,我们建议在临床转化之前,需要在猪模型上进行这项技术的长期研究,因为它们的血管再生与人类相似。这种非细胞现成的方法将标志着当前主要关注血管组织工程中细胞整合的范式转变,从而强烈影响我们在新的十年中向前发展的再生医学。
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