首页> 外文会议>Imaging, manipulation, and analysis of biomolecules, cells, and tissues XIII >Light Shift from Ultraviolet to Near Infrared Light: Cerenkov Luminescence with Gold Nanocluster - Near Infrared (AuNc-NIR) Conjugates
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Light Shift from Ultraviolet to Near Infrared Light: Cerenkov Luminescence with Gold Nanocluster - Near Infrared (AuNc-NIR) Conjugates

机译:光线从紫外光转变为近红外光:带有金纳米团簇的切伦科夫发光-近红外(AuNc-NIR)共轭

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摘要

Cerenkov luminescence (CL) is generated when a charged particle moves faster than the speed of light in dielectric media. Recently CL imaging becomes an emerging technique with the use of radioisotopes. However, due to relatively weak blue light production and massive tissue attenuation, CL has not been applied widely. Therefore, we attempted to shift the CL emission to more near infrared (NIR) spectrum for better tissue penetration by using Cerenkov Radiation Energy Transfer (CRET). Gold nanoclusters were conjugated with NIR dye molecules (AuNc-IR820 and AuNc-ICG) to be activated with ultraviolet light. We found optimal conjugate concentrations of AuNc-NIR conjugates by spectroscopy system to generate maximal photon emission. When exposed by ultraviolet light, the emission of NIR light from the conjugates were verified. In quantitative analysis, AuNc-NIR conjugates emit brighter light signal than pure AuNc. This result implies that NIR fluorescent dyes (both IR820 and ICG) can be excited by the emission from AuNc. Following the above baseline experiment, we mixed F-18 fluorodeoxyglucose (F-18 FDG) radioisotope to the AuNc-NIR conjugates, to confirm NIR emission induced from Cerenkov radiation. Long pass filter was used to block Cerenkov luminescence and to collect the emission from AuNc-NIR conjugates. Instead of one long exposure imaging with CCD, we used multiple frame scheme to eliminate gamma radiation strike in each frame prior to combination. In summary, we obtained NIR emission light from AuNc-NIR conjugated dyes that is induced from CL. We plan to perform in vivo small animal imaging with these conjugates to assess better tissue penetration.
机译:当带电粒子运动的速度快于介电介质中光的速度时,就会产生切伦科夫发光(CL)。最近,CL成像已成为使用放射性同位素的新兴技术。然而,由于蓝光的产生相对较弱并且组织衰减很大,因此CL尚未得到广泛应用。因此,我们尝试通过使用切伦科夫辐射能量转移(CRET)将CL发射移至更近的红外(NIR)光谱以更好地穿透组织。金纳米簇与NIR染料分子(AuNc-IR820和AuNc-ICG)缀合,以被紫外线激活。我们通过光谱系统找到了最大的光子发射,发现了最佳的AuNc-NIR共轭物共轭物浓度。当暴露于紫外光下时,证实了从缀合物发射的NIR光。在定量分析中,AuNc-NIR共轭物比纯AuNc发出更亮的光信号。该结果表明,近红外荧光染料(IR820和ICG)均可被AuNc的发射激发。根据上述基准实验,我们将F-18氟脱氧葡萄糖(F-18 FDG)放射性同位素与AuNc-NIR共轭物混合,以确认Cerenkov辐射诱导的NIR发射。长通滤光片用于阻止切伦科夫发光,并收集AuNc-NIR共轭物的发射。代替使用CCD进行长时间曝光成像,我们使用了多帧方案来消除组合前每一帧中的伽玛辐射。总之,我们从由CL诱导的AuNc-NIR共轭染料获得了NIR发射光。我们计划使用这些结合物进行体内小动物成像,以评估更好的组织穿透力。

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  • 会议地点 San Francisco CA(US)
  • 作者单位

    Department of Medical System Engineering, Gwangju Institute of Science and Technology, Gwangju, 500-712, Republic of Korea;

    School of Physics and Chemistry, Gwangju Institute of Science and Technology, Gwangju, 500-712, Republic of Korea;

    School of Mechatronics, Gwangju Institute of Science and Technology, Gwangju, 500-712, Republic of Korea;

    Department of Medical System Engineering, Gwangju Institute of Science and Technology, Gwangju, 500-712, Republic of Korea;

    School of Physics and Chemistry, Gwangju Institute of Science and Technology, Gwangju, 500-712, Republic of Korea;

    Department of Medical System Engineering, Gwangju Institute of Science and Technology, Gwangju, 500-712, Republic of Korea ,School of Mechatronics, Gwangju Institute of Science and Technology, Gwangju, 500-712, Republic of Korea;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cerenkov luminescence; gold nanocluster; near infrared; light shift;

    机译:切伦科夫发光;金纳米簇近红外;轻移;

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