Gold nanodots with stable red fluorescence for rapid dual-mode imaging of spinal cord and injury monitoring

Yangliu Lin,Yueqi Zhao, Zhe Yang,Zhubin Shen,Junran Ke, Fei Yin, Linan Fang,Andrei V. Zvyagin, Bai Yang,Quan Lin

Talanta(2022)

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摘要
Spinal cord injury is one of the most devastating complications of spinal surgery, often resulting in numbness, pain or paralysis. Minor injuries in the spinal cord are hard to be identified and existing imaging modalities are unable to provide intraoperative monitoring. Monitoring pathological change at the site of injury is a key factor in staging and treatment decision making as well as prognosis of spinal cord injury. Herein, we offer the fluorescence imaging with intraoperative visualization and detection accuracy for bioimaging to resolve the problem. A novel red fluophore AuNDs caped with glutathione is prepared, which exhibits some advantages such as ultra-small size, negligible biotoxicity, superior water solubility and great biocompatibility. AuNDs fluorophore especially exhibit both of a remarkable photoluminescence stability and high attenuation coefficient to X-rays. In addition, AuNDs can be used as CT contrast agent for spinal cord, which avoid the high toxicity and weak CT signal of traditional iodine contrast. After intradural injection into the spinal cord, AuNDs are transported through the flow of cerebrospinal fluid and bound to the spinal cord parenchyma. not only the bioimage of the entire spinal cord can be achieved as quick as 15 min, but they are also particularly beneficial to long-term imaging of complex physiological environments in vivo, with negligible quenching. Comparing from the bright red fluorescence in adjacent normal spinal cord sites, there is almost no fluorescence in spinal cord at the areas of the injury. We suggest that AuNDs are unable to enter the injury sites of necrosis and ischemia, which promote a different contrast imaging from the normal one. The bright red fluorescence of the AuNDs significantly overcome the restriction of the blue autofluorescence of the biological tissues, providing a clear boundary for observation of the thin spinal cord injury. As a result, we developed the AuNDs with fluorescent and CT dual-mode bioimaging capability to clearly and effectively diagnose spinal cord injury, which are expected to provide a novel visualization imaging regent for clinical use.
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关键词
Acute spinal cord injury,Differentiation detection,Dual-mode imaging,Sub-3 nm Au nanodots,Intraoperative visualization
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