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Topography Driven Surface Renewal.地形驱动的表面更新
Nat Phys. 2018 Jul 2;14(9):948-953.
2
Soft matter with hard skin: From skin wrinkles to templating and material characterization.具有硬表皮的软物质:从皮肤皱纹到模板化及材料表征
Soft Matter. 2006 Mar 16;2(4):310-323. doi: 10.1039/b516741h.
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Heparin coatings for improving blood compatibility of medical devices.肝素涂层改善医疗器械的血液相容性。
Adv Drug Deliv Rev. 2017 Mar;112:12-23. doi: 10.1016/j.addr.2016.12.002. Epub 2016 Dec 29.
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On-Demand Removal of Bacterial Biofilms via Shape Memory Activation.按需通过形状记忆激活去除细菌生物膜。
ACS Appl Mater Interfaces. 2016 Aug 24;8(33):21140-4. doi: 10.1021/acsami.6b06900. Epub 2016 Aug 15.
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Anti-thrombotic technologies for medical devices.医疗器械抗血栓技术。
Adv Drug Deliv Rev. 2017 Mar;112:2-11. doi: 10.1016/j.addr.2016.07.008. Epub 2016 Aug 3.
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Biomimetic cardiovascular stents for in vivo re-endothelialization.用于体内再内皮化的仿生心血管支架。
Biomaterials. 2016 Oct;103:170-182. doi: 10.1016/j.biomaterials.2016.06.042. Epub 2016 Jun 24.
7
Protein adsorption, platelet adhesion, and bacterial adhesion to polyethylene-glycol-textured polyurethane biomaterial surfaces.蛋白质吸附、血小板黏附以及细菌在聚乙二醇纹理化聚氨酯生物材料表面的黏附。
J Biomed Mater Res B Appl Biomater. 2017 Apr;105(3):668-678. doi: 10.1002/jbm.b.33592. Epub 2015 Dec 16.
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Morphological Characterisation of Unstained and Intact Tissue Micro-architecture by X-ray Computed Micro- and Nano-Tomography.通过X射线计算机微纳断层扫描对未染色完整组织微结构进行形态学表征
Sci Rep. 2015 May 15;5:10074. doi: 10.1038/srep10074.
9
Dynamic surface deformation of silicone elastomers for management of marine biofouling: laboratory and field studies using pneumatic actuation.用于海洋生物附着管理的硅酮弹性体的动态表面变形:使用气动致动的实验室和现场研究。
Biofouling. 2015;31(3):265-74. doi: 10.1080/08927014.2015.1035651.
10
Hollow fiber membrane modification with functional zwitterionic macromolecules for improved thromboresistance in artificial lungs.用功能化两性离子聚合物对中空纤维膜进行修饰以提高人工肺的抗血栓性能。
Langmuir. 2015 Mar 3;31(8):2463-71. doi: 10.1021/la504907m. Epub 2015 Feb 23.

主动皱纹驱动自清洁:一种用于血管移植物的抗血栓表面的策略。

Active wrinkles to drive self-cleaning: A strategy for anti-thrombotic surfaces for vascular grafts.

机构信息

Department of Surgery, The University of Chicago, Chicago, IL, 60637, USA.

Department of Surgery, University of Pittsburgh Medical Center, Pittsburgh, PA, 15213, USA; McGowan Institute for Regenerative Medicine, University of Pittsburgh, Pittsburgh, PA 15219, USA.

出版信息

Biomaterials. 2019 Feb;192:226-234. doi: 10.1016/j.biomaterials.2018.11.005. Epub 2018 Nov 5.

DOI:10.1016/j.biomaterials.2018.11.005
PMID:30458358
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7248685/
Abstract

The inner surfaces of arteries and veins are naturally anti-thrombogenic, whereas synthetic materials placed in blood contact commonly experience thrombotic deposition that can lead to device failure or clinical complications. Presented here is a bioinspired strategy for self-cleaning anti-thrombotic surfaces using actuating surface topography. As a first test, wrinkled polydimethylsiloxane planar surfaces are constructed that can repeatedly transition between smooth and wrinkled states. When placed in contact with blood, these surfaces display markedly less platelet deposition than control samples. Second, for the specific application of prosthetic vascular grafts, the potential of using pulse pressure, i.e. the continual variation of blood pressure between systole and diastole, to drive topographic actuation was investigated. Soft cylindrical tubes with a luminal surface that transitioned between smooth and wrinkled states were constructed. Upon exposure to blood under continual pressure pulsation, these cylindrical tubes also showed reduced platelet deposition versus control samples under the same fluctuating pressure conditions. In both planar and cylindrical cases, significant reductions in thrombotic deposition were observed, even when the wrinkles had wavelengths of several tens of μm, far larger than individual platelets. We speculate that the observed thrombo-resistance behavior is attributable to a biofilm delamination process in which the bending energy within the biofilm overcomes interfacial adhesion. This novel strategy to reduce thrombotic deposition may be applicable to several types of medical devices placed into the circulatory system, particularly vascular grafts.

摘要

动脉和静脉的内表面天生具有抗血栓特性,而与血液接触的合成材料通常会经历血栓沉积,从而导致器械失效或临床并发症。本文提出了一种使用致动表面形貌的仿生自清洁抗血栓表面的策略。作为第一个测试,构建了具有褶皱的聚二甲基硅氧烷平面表面,其可以在光滑和褶皱状态之间反复转换。当与血液接触时,这些表面的血小板沉积明显少于对照样品。其次,对于人工血管移植物的特定应用,研究了利用脉搏压力(即收缩期和舒张期之间血压的连续变化)驱动形貌致动的潜力。构建了内腔表面在光滑和褶皱状态之间转换的软圆柱管。在持续压力脉动下暴露于血液时,与相同波动压力条件下的对照样品相比,这些圆柱管的血小板沉积也减少了。在平面和圆柱两种情况下,即使褶皱的波长为几十微米,远大于单个血小板,也观察到血栓沉积的显著减少。我们推测,观察到的抗血栓性能归因于生物膜分层过程,其中生物膜内的弯曲能克服界面粘附力。这种减少血栓沉积的新策略可能适用于几种置于循环系统中的医疗设备,特别是血管移植物。