骨关节炎
小关节
滑膜关节
材料科学
椎间盘
软骨
细胞外基质
生物医学工程
变性(医学)
医学
II型胶原
病理
生物物理学
解剖
细胞生物学
体内
分子成像
腰椎
关节软骨
生物
替代医学
生物技术
作者
Lei Liu,Kui Huang,Wei Li,Rongmao Qiu,Yijie Fang,Yongjie Huang,Suwen Zhao,LV Hai,Kuibo Zhang,Hong Shan,Yang Li
出处
期刊:ACS Nano
[American Chemical Society]
日期:2021-11-05
卷期号:15 (12): 19138-19149
被引量:17
标识
DOI:10.1021/acsnano.1c07112
摘要
As the leading cause of disability worldwide, low back pain is commonly caused by biomechanical and catabolic disruptions to key structures of the spine, such as intervertebral discs and facet joints. To date, accurate, noninvasive detection of microdestruction within these tissues remains an elusive goal. Here, we report an in vivo imaging approach based on a collagen hybridizing peptide (CHP) that specifically targets disruption to the extracellular matrix architecture at the molecular scale─the denatured collagen molecules. Utilizing fluorescently labeled CHPs, live animal imaging, and light sheet fluorescence microscopy, we mapped collagen destruction in the lumbar spines in 3D, revealing that under normal conditions collagen destruction was localized to load-bearing anatomical structures including annulus fibrosus of the disc and the facet joints, where aging, tensile force (hindlimb suspension), and disc degeneration (needle puncture) escalated the CHP-binding in specific mouse models. We showed that targeting denatured collagen molecules allowed for an accurate, quantifiable interrogation of the structural integrity of these spinal matrixes with a greater sensitivity than anatomical imaging and histology. Finally, we demonstrated CHP's binding to degenerated human discs, suggesting exciting potentials for applying CHP for diagnosing, monitoring, and treating various spinal disorders, including intervertebral disc degeneration, facet joint osteoarthritis, and ankylosing spondylitis.
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