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Coaxial-printed small-diameter polyelectrolyte-based tubes with an electrostatic self-assembly of heparin and YIGSR peptide for antithrombogenicity and endothelialization

机译:基于同轴印刷的小直径聚电解质管其具有肝素的静电自我组装和用于抗诱导性和内皮化的母肽

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摘要

Low patency ratio of small-diameter vascular grafts remains a major challenge due to the occurrence of thrombosis formation and intimal hyperplasia after transplantation. Although developing the functional coating with release of bioactive molecules on the surface of small-diameter vascular grafts are reported as an effective strategy to improve their patency ratios, it is still difficult for current functional coatings cooperating with spatiotemporal control of bioactive molecules release to mimic the sequential requirements for antithrombogenicity and endothelialization. Herein, on basis of 3D-printed polyelectrolyte-based vascular grafts, a biologically inspired release system with sequential release in spatiotemporal coordination of dual molecules through an electrostatic self-assembly was first described. A series of tubes with tunable diameters were initially fabricated by a coaxial extrusion printing method with customized nozzles, in which a polyelectrolyte ink containing of ε-polylysine and sodium alginate was used. Further, dual bioactive molecules, heparin with negative charges and Tyr-Ile-Gly-Ser-Arg (YIGSR) peptide with positive charges were layer-by-layer assembled onto the surface of these 3D-printed tubes. Due to the electrostatic interaction, the sequential release of heparin and YIGSR was demonstrated and could construct a dynamic microenvironment that was thus conducive to the antithrombogenicity and endothelialization. This study opens a new avenue to fabricate a small-diameter vascular graft with a biologically inspired release system based on electrostatic interaction, revealing a huge potential for development of small-diameter artificial vascular grafts with good patency.
机译:小直径血管移植物的低通畅比仍然是由于移植后发生血栓形成和内膜增生而产生的重大挑战。尽管在小直径血管移植物表面上发出具有生物活性分子的功能性涂层作为改善其通用比例的有效策略,但目前的功能涂层仍然难以与生物活性分子的时空控制释放的时尚控制以模仿抗诱导性和内皮化的顺序要求。这里,首先描述了基于3D印刷的聚电解质基血管移植物,通过静电自组装,一种生物激发的释放系统,具有通过静电自组装通过静电自组装的时空协调的顺序释放。最初通过具有定制喷嘴的同轴挤出印刷方法制造具有可调谐直径的一系列管,其中使用含有ε-聚赖氨酸和藻酸钠的聚电解质油墨。此外,双重生物活性分子,具有负电荷的肝素和具有正电荷的Tyr-ILe-Gly-arg(YigSR)肽是逐层组装到这些3D印刷管的表面上。由于静电相互作用,证明了肝素和YigSR的顺序释放,可以构建一种有利于抗诱导性和内皮化的动态微环境。本研究开辟了一种新的途径,以制造基于静电相互作用的生物启发释放系统的小直径血管移植系统,揭示了具有良好通畅的小径人工血管移植物的发展巨大潜力。

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