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Advances in Noninvasive Functional Imaging of Bone

机译:骨无创功能成像的研究进展

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The demand for functional imaging in clinical medicine is comprehensive. Although the gold standard for the functional imaging of human bones in clinical settings is still radionuclide-based imaging modalities, nonionizing noninvasive imaging technology in small animals has greatly advanced in recent decades, especially the diffuse optical imaging to which Britton Chance made tremendous contributions. The evolution of imaging probes, instruments, and computation has facilitated exploration in the complicated biomedical research field by allowing longitudinal observation of molecular events in live cells and animals. These research-imaging tools are being used for clinical applications in various specialties, such as oncology, neuroscience, and dermatology. The Bone, a deeply located mineralized tissue, presents a challenge for noninvasive functional imaging in humans. Using nanoparticles (NP) with multiple favorable properties as bioimaging probes has provided orthopedics an opportunity to benefit from these noninvasive bone-imaging techniques. This review highlights the historical evolution of radionuclide-based imaging, computed tomography, positron emission tomography, and magnetic resonance imaging, diffuse optics-enabled in vivo technologies, vibrational spectroscopic imaging, and a greater potential for using NPs for biomedical imaging.
机译:临床医学对功能成像的需求是全面的。尽管在临床环境中用于人体骨骼功能成像的金标准仍然是基于放射性核素的成像方式,但近几十年来小动物的非电离非侵入性成像技术取得了巨大进步,特别是Britton Chance做出了巨大贡献的漫射光学成像。成像探针,仪器和计算的发展通过允许纵向观察活细胞和动物中的分子事件,促进了在复杂的生物医学研究领域中的探索。这些研究成像工具已被用于各种专业的临床应用,例如肿瘤学,神经科学和皮肤病学。骨骼是位于矿物质深处的组织,它对人类的无创功能成像提出了挑战。将具有多种有利特性的纳米颗粒(NP)用作生物成像探针,为整形外科医师提供了受益于这些非侵入性骨成像技术的机会。这篇综述重点介绍了基于放射性核素的成像,计算机断层扫描,正电子发射断层扫描和磁共振成像,启用弥散光学的体内技术,振动光谱成像以及使用NP进行生物医学成像的更大潜力的历史演变。

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