首页> 外文会议>Society of Photo-Optical Instrumentation Engineers Conference on Functional Monitoring and Drug-Tissue Interaction >Optical Imaging of Green Fluorescent Protein Markers for Tracking Vascular Gene Expression: A Feasibility Study in Human Tissue-like Phantoms
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Optical Imaging of Green Fluorescent Protein Markers for Tracking Vascular Gene Expression: A Feasibility Study in Human Tissue-like Phantoms

机译:用于跟踪血管基因表达的绿色荧光蛋白标志物的光学成像:人体组织状幽灵的可行性研究

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摘要

Vascular gene therapy is an exciting approach to the treatment of cardiovascular diseases. However, to date, there are no imaging modalities available for non-invasive detection of vascular gene expression. We have developed an optical imaging method to track vascular gene expression by detecting fluorescent signals emitted from arterial walls following gene transfer. To investigate the feasibility of this new technique, we performed experiments on a set of human tissue-like phantoms using a common biological marker in gene therapy, the green fluorescent protein (GFP). The phantoms were constructed to mimic the arterial geometry beneath a tissue layer. Human smooth muscle cells transfected with GFP were embedded in a capillary tube in the phantom. Monte Carlo modeling of the phantom experiment was performed to optimize the performance of the optical imaging system. We compared the fluence rates among three types of light beams, including ring beam, Gaussian beam, and flat beam. The results showed that our optical imaging system was able to detect fluorescent signals up to 5-mm depth in the phantom, and that flat beam geometry would produce the optimum fluorescence remittance. This study provides valuable insights for improvements to the optical imaging system and refinement of the new technique to non-invasively detect/track vascular gene expression.
机译:血管基因疗法是一种令人兴奋的方法来治疗心血管疾病。然而,迄今为止,没有可用于血管基因表达的非侵入性检测的成像模态。我们开发了一种光学成像方法,通过检测基因转移后从动脉壁发射的荧光信号来跟踪血管基因表达。为了探讨这种新技术的可行性,我们使用基因治疗中的常见生物学标记,绿色荧光蛋白(GFP)进行了一组人体组织样幽灵的实验。构造体验模拟以模拟组织层下方的动脉几何形状。用GFP转染的人平滑肌细胞嵌入毛细管中的毛细管。 Monte Carlo模型的幻影实验进行了优化光学成像系统的性能。我们比较了三种类型的光束中的流量速率,包括环梁,高斯梁和平梁。结果表明,我们的光学成像系统能够检测荧光信号在幻像中高达5毫米的深度,并且平坦的梁几何形状会产生最佳荧光汇率。本研究提供了有价值的见解,用于改善光学成像系统和新技术的改进,以非侵入性地检测/轨道血管基因表达。

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