Computed tomography technologies to measure key structural features of polymeric biomedical implants from bench to bedside

IF 3.9 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Kendell M. Pawelec, Todd A. Schoborg, Erik M. Shapiro
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Abstract

Implanted polymeric devices, designed to encourage tissue regeneration, require porosity. However, characterizing porosity, which affects many functional device properties, is non-trivial. Computed tomography (CT) is a quick, versatile, and non-destructive way to gain 3D structural information, yet various CT technologies, such as benchtop, preclinical and clinical systems, all have different capabilities. As system capabilities determine the structural information that can be obtained, seamless monitoring of key device features through all stages of clinical translation must be engineered intentionally. Therefore, in this study we tested feasibility of obtaining structural information in pre-clinical systems and high-resolution micro-CT (μCT) under physiological conditions. To overcome the low CT contrast of polymers in hydrated environments, radiopaque nanoparticle contrast agent was incorporated into porous devices. The size of resolved features in porous structures is highly dependent on the resolution (voxel size) of the scan. As the voxel size of the CT scan increased (lower resolution) from 5 to 50 μm, the measured pore size was overestimated, and percentage porosity was underestimated by nearly 50%. With the homogeneous introduction of nanoparticles, changes to device structure could be quantified in the hydrated state, including at high-resolution. Biopolymers had significant structural changes post-hydration, including a mean increase of 130% in pore wall thickness that could potentially impact biological response. By incorporating imaging capabilities into polymeric devices, CT can be a facile way to monitor devices from initial design stages through to clinical translation.

Abstract Image

利用计算机断层扫描技术测量从工作台到床边的聚合物生物医学植入物的关键结构特征。
旨在促进组织再生的植入式聚合物设备需要多孔性。然而,表征多孔性并不容易,因为多孔性会影响设备的许多功能特性。计算机断层扫描(CT)是获取三维结构信息的一种快速、多功能和非破坏性的方法,但各种 CT 技术,如台式、临床前和临床系统,都有不同的能力。由于系统能力决定了所能获得的结构信息,因此必须有意识地在临床转化的各个阶段对关键设备特征进行无缝监控。因此,在本研究中,我们测试了在生理条件下通过临床前系统和高分辨率显微 CT(μCT)获取结构信息的可行性。为了克服聚合物在水合环境中 CT 对比度低的问题,我们在多孔装置中加入了不透射线的纳米粒子造影剂。多孔结构中分辨特征的大小在很大程度上取决于扫描的分辨率(体素大小)。随着 CT 扫描体素尺寸从 5 微米增加到 50 微米(分辨率降低),测得的孔隙尺寸被高估,孔隙度百分比被低估近 50%。通过均匀引入纳米粒子,可以量化水合状态下的器件结构变化,包括高分辨率的变化。生物聚合物在水合后发生了显著的结构变化,包括孔壁厚度平均增加了 130%,这可能会影响生物反应。通过在聚合物设备中加入成像功能,CT 可以成为监测设备从初始设计阶段到临床应用的便捷方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of biomedical materials research. Part A
Journal of biomedical materials research. Part A 工程技术-材料科学:生物材料
CiteScore
10.40
自引率
2.00%
发文量
135
审稿时长
3.6 months
期刊介绍: The Journal of Biomedical Materials Research Part A is an international, interdisciplinary, English-language publication of original contributions concerning studies of the preparation, performance, and evaluation of biomaterials; the chemical, physical, toxicological, and mechanical behavior of materials in physiological environments; and the response of blood and tissues to biomaterials. The Journal publishes peer-reviewed articles on all relevant biomaterial topics including the science and technology of alloys,polymers, ceramics, and reprocessed animal and human tissues in surgery,dentistry, artificial organs, and other medical devices. The Journal also publishes articles in interdisciplinary areas such as tissue engineering and controlled release technology where biomaterials play a significant role in the performance of the medical device. The Journal of Biomedical Materials Research is the official journal of the Society for Biomaterials (USA), the Japanese Society for Biomaterials, the Australasian Society for Biomaterials, and the Korean Society for Biomaterials. Articles are welcomed from all scientists. Membership in the Society for Biomaterials is not a prerequisite for submission.
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