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Iron Oxide-labeled Collagen Scaffolds for Non-invasive MR Imaging in Tissue Engineering

机译:氧化铁标记的胶原蛋白支架用于组织工程中的无创MR成像

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摘要

Non-invasive imaging holds significant potential for implementation in tissue engineering. It can e.g. be used to monitor the localization and function of tissue-engineered implants, as well as their resorption and remodelling. Thus far, however, the vast majority of efforts in this area of research have focused on the use of ultrasmall super-paramagnetic iron oxide (USPIO) nanoparticle-labeled cells, colonizing the scaffolds, to indirectly image the implant material. Reasoning that directly labeling scaffold materials might be more beneficial (enabling imaging also in case of non-cellularized implants), more informative (enabling the non-invasive visualization and quantification of scaffold degradation) and more easy to translate into the clinic (since cell-free materials are less complex from a regulatory point-of-view), we here prepared three different types of USPIO nanoparticles, and incorporated them both passively and actively (via chemical conjugation; during collagen crosslinking) into collagen-based scaffold materials. We furthermore optimized the amount of USPIO incorporated into the scaffolds, correlated the amount of entrapped USPIO with MR signal intensity, showed that the labeled scaffolds are highly biocompatible, demonstrated that scaffold degradation can be visualized using MRI and provided initial proof-of-principle for the in vivo visualization of the scaffolds. Consequently, USPIO-labeled scaffold materials seem to be highly suitable for image-guided tissue engineering applications.
机译:非侵入性成像在组织工程中具有巨大的实施潜力。它可以例如用于监测组织工程植入物的定位和功能,以及其吸收和重塑。然而,到目前为止,在该研究领域中的绝大多数努力都集中在使用超小型超顺磁性氧化铁(USPIO)纳米颗粒标记的细胞上,该细胞定殖在支架上,从而使植入物材料间接成像。直接标记支架材料的理由可能更有益(在非细胞植入物的情况下也可以进行成像),信息量更大(可以对支架降解进行非侵入式可视化和定量),并且更易于转化为临床(由于细胞从监管的角度来看,游离的材料不太复杂),我们在此制备了三种不同类型的USPIO纳米颗粒,并将它们被动和主动地(通过化学偶联;在胶原蛋白交联过程中)掺入了基于胶原蛋白的支架材料中。我们进一步优化了掺入支架的USPIO的量,将捕获的USPIO的量与MR信号强度相关联,表明标记的支架具有高度的生物相容性,证明了支架降解可以使用MRI进行可视化,并提供了初步的原理证明支架的体内可视化。因此,USPIO标记的支架材料似乎非常适合图像引导的组织工程应用。

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