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基于石墨烯纳米片掺杂可生物降解聚合物复合材料的 3D 打印载药支架

3D-Printed Multidrug-Eluting Stent from Graphene-Nanoplatelet-Doped Biodegradable Polymer Composite.

机构信息

Department of Bioengineering, Beckman Institute of Advanced Science and Technology, Department of Materials Science and Engineering, Institute for Sustainability in Energy and Environment, University of Illinois at Urbana-Champaign, Carle Foundation Hospital, 611 West Park Street, Urbana, IL, 61801, USA.

NMR/EPR Laboratory, School of Chemical Sciences, University of Illinois at Urbana-Champaign, IL, USA.

出版信息

Adv Healthc Mater. 2017 Jun;6(11). doi: 10.1002/adhm.201700008. Epub 2017 Mar 21.

Abstract

Patients with percutaneous coronary intervention generally receive either bare metal stents or drug-eluting stents to restore the normal blood flow. However, due to the lack of stent production with an individual patient in mind, the same level of effectiveness may not be possible in treating two different clinical scenarios. This study introduces for the first time the feasibility of a patient-specific stenting process constructed from direct 3D segmentation of medical images using direct 3D printing of biodegradable polymer-graphene composite with dual drug incorporation. A biodegradable polymer-carbon composite is prepared doped with graphene nanoplatelets to achieve controlled release of combinatorics as anticoagulation and antirestenosis agents. This study develops a technology prototyped for personalized stenting. An in silico analysis is performed to optimize the stent design for printing and its prediction of sustainability under force exerted by coronary artery or blood flow. A holistic approach covering in silico to in situ-in vivo establishes the structural integrity of the polymer composite, its mechanical properties, drug loading and release control, prototyping, functional activity, safety, and feasibility of placement in coronary artery of swine.

摘要

接受经皮冠状动脉介入治疗的患者通常会接受金属裸支架或药物洗脱支架,以恢复正常血流。然而,由于缺乏针对个体患者的支架生产,在治疗两种不同的临床情况下,可能无法达到相同的效果。本研究首次介绍了一种使用直接 3D 打印技术,将生物可降解聚合物-石墨烯复合材料与双重药物结合,从直接 3D 分割的医学图像构建个体化支架的可行性。制备了掺杂有石墨烯纳米片的生物可降解聚合物-碳复合材料,以实现组合作为抗凝和抗再狭窄剂的控制释放。本研究开发了一种用于个体化支架的技术原型。进行了计算机模拟分析,以优化用于打印的支架设计及其在冠状动脉或血流施加的力下的可持续性预测。涵盖从计算机模拟到体内原位的整体方法建立了聚合物复合材料的结构完整性、机械性能、药物负载和释放控制、原型制作、功能活性、安全性以及在猪冠状动脉中的放置可行性。

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