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Development of optical projection tomography for mesoscopic 3-D biomedical imaging

机译:用于介观三维生物医学成像的光学投影层析成像技术的发展

摘要

Optical projection tomography (OPT) is an exciting technique for imaging “mesoscopic” (1 – 10 mm) samples at a high resolution, providing three-dimensional (3-D) absorption and/or fluorescence distributions of chromophores in optically transparent specimens. This thesis describes the study, development and application of OPT technology for potential applications in biomedical research including developmental biology, tissue analysis (e.g. for histopathology), the study of disease mechanisms and therapies, dosimetry and drug discovery. udThe thesis begins with an introduction to fluorescence, fluorescence lifetime imaging (FLIM) and OPT and then describes the experimental configurations and characterisation of in-house developed intensity-based OPT instruments. Using the measured characteristics of specific OPT set-ups, different tomographic reconstruction approaches for OPT are investigated through modelling and experiments and the achievable image quality and speed are compared to the performance obtained with the standard reconstruction algorithm. udThe development of OPT using a novel angular multiplexing technique is then discussed. This employs multiple imaging systems in parallel that can acquire OPT data sets simultaneously. Their performances using different focusing arrangements to image either shifted focal planes or a common focal plane in the sample is investigated and shown to provide faster imaging with improved spatial resolution. The latter configuration is demonstrated to offer the capability to track feature motions such as cell trajectories with a time lapse resolution limited by the frame rate of the cameras and to provide 3-D feature tracking with significantly reduced light dose compared to standard OPT. udThe application of OPT and its extension to incorporate wide-field time-gated FLIM, referred as FLIM-OPT, to a range of biological specimens is then discussed, including fixed and chemically cleared tissues and live animal models. These experiments demonstrate the efficacy of OPT as a 3-D imaging tool for biomedical research. The potential efficacy of FLIM-OPT to read out Förster resonance energy transfer (FRET) is then demonstrated, including in live zebrafish embryos. Thus OPT is shown to provide a 3-D tomographic imaging technique able to yield structural and functional information in intact organisms.
机译:光学投影层析成像(OPT)是一种令人兴奋的技术,可以对“中观”(1 – 10 mm)样品进行高分辨率成像,从而在光学透明样品中提供发色团的三维(3-D)吸收和/或荧光分布。本文介绍了OPT技术的研究,开发和应用,这些技术在生物医学研究中的潜在应用包括发展生物学,组织分析(例如组织病理学),疾病机理和疗法,剂量测定法和药物发现的研究。 ud本文首先介绍了荧光,荧光寿命成像(FLIM)和OPT,然后介绍了内部开发的基于强度的OPT仪器的实验配置和特性。利用特定OPT设置的测量特性,通过建模和实验研究了针对OPT的不同层析重建方法,并将可达到的图像质量和速度与标准重建算法获得的性能进行了比较。 ud然后讨论了使用新型角度复用技术开发OPT的方法。这采用并行的多个成像系统,可以同时获取OPT数据集​​。研究了它们使用不同聚焦方式对样品中移位的焦平面或公共焦平面成像的性能,并显示了可提供更快的成像和更高的空间分辨率。事实证明,后一种配置具有跟踪特征运动(如细胞轨迹)的能力,且时延分辨率受摄像机帧频的限制,并且与标准OPT相比,可提供3D特征跟踪,且光剂量大大降低。 然后讨论了OPT的应用及其扩展,以将广域时间门控FLIM(称为FLIM-OPT)结合到一系列生物样本中,包括固定和化学清除的组织以及活体动物模型。这些实验证明了OPT作为生物医学研究的3-D成像工具的功效。然后证明了FLIM-OPT可以读出Förster共振能量转移(FRET)的潜在功效,包括在活的斑马鱼胚胎中。因此,显示OPT提供了一种3D层析成像技术,该技术能够在完整的生物体中产生结构和功能信息。

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    Chen Lingling;

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  • 年度 2014
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