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Visualization of USPIO-labeled melt-electrowritten scaffolds by non-invasive magnetic resonance imaging

机译:通过非侵入性磁共振成像可视化USPIO标记的熔融电扫视支架

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摘要

Melt electrowriting (MEW) is a high-resolution fiber-forming technology for the digital fabrication of complex micro-structured scaffolds for tissue engineering, which has convincingly shown its potential in in vitro and in vivo animal studies. The clinical translation of such constructs to the patient requires the capability to visualize them upon implantation with clinically accepted methods such as magnetic resonance imaging (MRI). To this end, this work presents the modification of polycaprolactone (PCL) scaffolds with ultrasmall superparamagnetic iron oxide (USPIO) nanoparticles to render them visualizable by MRI. Composite scaffolds containing up to 0.3 weight % USPIOs were 3D printed by MEW and could be sensitively detected in vitro using T2- and T2*-weighted MRI. At the same time, USPIO incorporation did not affect the usability of PCL for tissue engineering applications as demonstrated by the mechanical and cytocompatibility evaluation. Concentrations up to 0.2% caused small to no decrease in the ultimate tensile strength and Young's modulus. Cytocompatibility tests resulted in excellent cell viability, with proliferating cells adhering to all the scaffolds. This work contributes to the materials library for MEW and opens the possibility of using MRI for longitudinal monitoring of MEW grafts.
机译:熔融电陶陶(MEW)是一种高分辨率的纤维成形技术,用于组织工程的复杂微结构支架的数字制造,这令人信服地显示其在体外和体内动物研究中的潜力。这种构建体对患者的临床翻译需要能够在植入中与临床上接受的方法(例如磁共振成像(MRI))可视化它们。为此,该工作介绍了用超级超顺磁性氧化铁(USPIO)纳米颗粒的多己内酯(PCL)支架的改性,以使它们通过MRI可视化。含有高达0.3重量%的USPIOS的复合支架是由MEW印刷的3D,可以使用T2和T2-Wliight MRI在体外敏感地检测。与此同时,USPIO掺入不影响PCL对组织工程应用的可用性,如机械和细胞相容性评价所示。浓度高达0.2%引起的小于最终拉伸强度和杨氏模量的不降低。细胞织立性试验导致优异的细胞活力,具有粘附在所有支架上的增殖细胞。这项工作有助于MEW的材料库,并打开使用MRI进行MEW移植物的纵向监测的可能性。

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  • 来源
    《Biomaterials Science》 |2021年第13期|共6页
  • 作者单位

    Tech Univ Munich Dept Mech Engn Chair Med Mat &

    Implants Boltzmannstr 15 D-85748 Garching Germany;

    Tech Univ Munich Klinikum Rechts Isar Sch Med Dept Nucl Med Ismaninger Str 22 D-81675 Munich Germany;

    Tech Univ Munich Dept Mech Engn Bioseparat Engn Grp Boltzmannstr 15 D-85748 Garching Germany;

    Tech Univ Munich Dept Mech Engn Chair Med Mat &

    Implants Boltzmannstr 15 D-85748 Garching Germany;

    Tech Univ Munich Dept Mech Engn Chair Med Mat &

    Implants Boltzmannstr 15 D-85748 Garching Germany;

    QEII Med Ctr Harry Perkins Inst Med Res Translat Printing Lab Adv Tissue Engn 3D Nedlands WA Australia;

    Tech Univ Munich Dept Mech Engn Bioseparat Engn Grp Boltzmannstr 15 D-85748 Garching Germany;

    Tech Univ Munich Klinikum Rechts Isar Sch Med Dept Nucl Med Ismaninger Str 22 D-81675 Munich Germany;

    Tech Univ Munich Dept Mech Engn Chair Med Mat &

    Implants Boltzmannstr 15 D-85748 Garching Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
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