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3D imaging of optically cleared tissue using a simplified CLARITY method and on-chip microscopy

机译:使用简化的CLARITY方法和片上显微镜对光学透明组织进行3D成像

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摘要

High-throughput sectioning and optical imaging of tissue samples using traditional immunohistochemical techniques can be costly and inaccessible in resource-limited areas. We demonstrate three-dimensional (3D) imaging and phenotyping in optically transparent tissue using lens-free holographic on-chip microscopy as a low-cost, simple, and high-throughput alternative to conventional approaches. The tissue sample is passively cleared using a simplified CLARITY method and stained using 3,3′-diaminobenzidine to target cells of interest, enabling bright-field optical imaging and 3D sectioning of thick samples. The lens-free computational microscope uses pixel super-resolution and multi-height phase recovery algorithms to digitally refocus throughout the cleared tissue and obtain a 3D stack of complex-valued images of the sample, containing both phase and amplitude information. We optimized the tissue-clearing and imaging system by finding the optimal illumination wavelength, tissue thickness, sample preparation parameters, and the number of heights of the lens-free image acquisition and implemented a sparsity-based denoising algorithm to maximize the imaging volume and minimize the amount of the acquired data while also preserving the contrast-to-noise ratio of the reconstructed images. As a proof of concept, we achieved 3D imaging of neurons in a 200-μm-thick cleared mouse brain tissue over a wide field of view of 20.5 mm2. The lens-free microscope also achieved more than an order-of-magnitude reduction in raw data compared to a conventional scanning optical microscope imaging the same sample volume. Being low cost, simple, high-throughput, and data-efficient, we believe that this CLARITY-enabled computational tissue imaging technique could find numerous applications in biomedical diagnosis and research in low-resource settings.
机译:使用传统的免疫组织化学技术对组织样品进行高通量切片和光学成像,在资源有限的地区可能是昂贵且难以获得的。我们演示了使用无透镜全息片上显微技术在光学透明组织中进行的三维(3D)成像和表型分析,这是传统方法的低成本,简单且高通量的替代方案。使用简化的CLARITY方法被动清除组织样本,并使用3,3'-二氨基联苯胺染色以关注目标细胞,从而能够对厚样本进行明场光学成像和3D切片。无透镜计算显微镜使用像素超分辨率和多高度相恢复算法,对整个清除的组织进行数字重新聚焦,并获得包含相位和幅度信息的样品复数值图像的3D堆栈。我们通过找到最佳照明波长,组织厚度,样品制备参数以及无透镜图像采集的高度数量,优化了组织清除和成像系统,并实施了基于稀疏性的去噪算法,以最大化成像量并最小化采集的数据量,同时还保留了重建图像的对比度和噪声比。作为概念的证明,我们在20.5 mm 2 的宽视场中实现了200μm厚的已清除小鼠大脑组织中神经元的3D成像。与对相同样本量成像的常规扫描光学显微镜相比,无透镜显微镜的原始数据减少幅度也超过了数量级。作为低成本,简单,高通量和数据高效的技术,我们相信这种支持CLARITY的计算组织成像技术可以在资源匮乏的生物医学诊断和研究中找到许多应用。

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