Phase-Contrast X-ray Micro-Computed Tomography for Enhanced 3D Microstructural Analysis of Bone and Joint Tissues
Phase-Contrast X-ray Micro-Computed Tomography for Enhanced 3D Microstructural Analysis of Bone and Joint Tissues
批准号:
RTI-2022-00174
负责人:
McLachlin, Stewart
金额:
$10.93万
依托单位:
依托单位国家:
加拿大
项目类别:
Research Tools and Instruments
财政年份:
2021
资助国家:
加拿大
项目状态:
已结题
起止时间:
2021-01-01 至 2022-12-31
中文摘要
数百万加拿大人的日常生活活动都因衰老、受伤和疾病导致的骨骼和关节组织力学改变或破坏而受到痛苦的影响。这些变化通常发生在硬组织(如骨)和软组织(如软骨)的复杂微观结构中。我们在滑铁卢大学的研究团队正在领导创新的生物医学工程研究项目,以更好地了解骨骼和关节组织力学,新发现导致改进的工具和设备,用于损伤预防,康复和修复。然而,我们的研究受到现有的用于骨和关节组织非破坏性显微结构分析的微计算机断层扫描(µCT)成像设备的限制。使用传统的微CT设备对生物组织进行微结构成像通常受到重要组织边界图像质量差(例如,对比度、失真、噪声)以及长扫描时间(1-5小时以上)的阻碍,这限制了我们对组织结构、完整性和对机械载荷的响应进行重要区分的能力。我们的研究小组已经申请资助一种新型的微CT成像系统,该系统使用独特的相衬x射线技术,可以更快、更准确地分辨生物组织的微观结构和成分。相衬x射线技术可以实现近乎实时的微结构成像,比传统的微CT成像系统具有更高的效率(100倍)。目前,加拿大没有现有的研究设施可以获得用于生物组织表征的相衬x射线微CT成像,这使得拟议的设备成为全国首创。通过相衬x射线微CT成像,我们将实现对生物组织力学的重要新理解,包括微观结构几何,组成和硬组织和软组织的耐受性。该设备显著提高了软生物组织和新型生物材料等低密度材料的图像对比度,这是迄今为止传统微CT成像的主要限制。此外,相衬x射线微CT提供的近实时成像将首次使不同负载条件下生物组织微观结构渐进变化的更准确和有效的表征实验成为可能。有了这台设备,加拿大将继续在生物医学工程研究方面保持国际领先地位,展示一种新的生物组织表征变革性技术,解决现有设备的缺点,以及骨和关节组织力学方面的知识空白。预计将有近20名学员在第一年使用该设备,为他们提供医疗成像、图像处理、计算建模和机器学习方面的市场前沿技能,这些技能受到附近多伦多-滑铁卢创新走廊越来越多的生物医学公司的高度追捧。
英文摘要
Activities of daily living for millions of Canadians are painfully affected by altered or disrupted bone and joint tissue mechanics from aging, injury, and disease. These changes often occur in the complex microstructure of hard (e.g., bone) and soft (e.g., cartilage) tissues. Our team of researchers at the University of Waterloo are leading innovative biomedical engineering research programs to better understand bone and joint tissue mechanics, with new discoveries leading to improved tools and devices for injury prevention, rehabilitation, and repair. However, our research is constrained by available micro-computed tomography (µCT) imaging equipment for non-destructive microstructural analysis of bone and joint tissues. Microstructural imaging of biological tissues with traditional µCT equipment is commonly hindered by poor image quality (e.g., contrast, distortion, noise) at important tissue boundaries as well as long scanning times (1-5+ hours), which limits our ability to make important distinctions about the tissue architecture, integrity, and response to mechanical loading. Our group of researchers have requested funding for a new type of µCT imaging system that uses unique phase-contrast X-ray technology to better resolve biological tissue microstructure and composition more quickly and more accurately. The phase-contrast X-ray technology enables near real-time microstructural imaging, at much greater efficiency (100x) than traditional µCT imaging systems. Currently, there are no existing research facilities in Canada with access to phase-contrast X-ray µCT imaging for biological tissue characterization, making the proposed equipment a national first. With phase-contrast X-ray µCT imaging we will achieve crucial new understanding of biological tissue mechanics, including microstructural geometry, composition, and tolerance of hard and soft tissues. The proposed equipment significantly improves image contrast of low-density materials like soft biological tissues and novel biomaterials, which to date has been a major limitation with traditional µCT imaging. Further, the near real-time imaging provided by phase-contrast X-ray µCT will enable, for the first time, more accurate and efficient characterization experiments of progressive changes in biological tissue microstructure under different loading conditions. With this equipment Canada will continue international leadership in biomedical engineering research, demonstrating a new transformative technology for biological tissue characterization that addresses shortcomings with current equipment as well as knowledge gaps in bone and joint tissue mechanics. Nearly 20 trainees are expected to use this equipment in the first year, providing them marketable, cutting-edge skills in medical imaging, image processing, computational modeling and machine learning, highly sought after by the growing number of biomedical companies in the nearby Toronto-Waterloo innovation corridor.
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会议论文
Multiaxial fatigue characterization of anisotropic bone-implant interfaces
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批准号:RGPIN-2019-04668
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项目类别:Discovery Grants Program - Individual
-
资助金额:$1.97万
-
财政年份:2022
-
负责人:McLachlin, Stewart
-
依托单位:
Multiaxial fatigue characterization of anisotropic bone-implant interfaces
-
批准号:RGPIN-2019-04668
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$1.97万
-
财政年份:2021
-
负责人:McLachlin, Stewart
-
依托单位:
Multiaxial fatigue characterization of anisotropic bone-implant interfaces
-
批准号:RGPIN-2019-04668
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$1.97万
-
财政年份:2020
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负责人:McLachlin, Stewart
-
依托单位:
Experimental and computational evaluations of fixation systems in the lumbar spine
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批准号:378545-2009
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项目类别:Alexander Graham Bell Canada Graduate Scholarships - Doctoral
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资助金额:$2.55万
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财政年份:2011
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负责人:McLachlin, Stewart
-
依托单位:
Experimental and computational evaluations of fixation systems in the lumbar spine
-
批准号:378545-2009
-
项目类别:Alexander Graham Bell Canada Graduate Scholarships - Doctoral
-
资助金额:$2.55万
-
财政年份:2010
-
负责人:McLachlin, Stewart
-
依托单位:
Experimental and computational evaluations of fixation systems in the lumbar spine
-
批准号:378545-2009
-
项目类别:Alexander Graham Bell Canada Graduate Scholarships - Doctoral
-
资助金额:$2.55万
-
财政年份:2009
-
负责人:McLachlin, Stewart
-
依托单位:
海外基金