Georgia Institute of Technology, G. W. Woodruff School of Mechanical Engineering, Atlanta, GA 30332
Georgia Institute of Technology, G. W. Woodruff School of Mechanical Engineering, Atlanta, GA 30332.
eNeuro. 2020 Apr 21;7(2). doi: 10.1523/ENEURO.0328-19.2019. Print 2020 Mar/Apr.
Serial section electron microscopy (ssEM), a technique where volumes of tissue can be anatomically reconstructed by imaging consecutive tissue slices, has proven to be a powerful tool for the investigation of brain anatomy. Between the process of cutting the slices, or "sections," and imaging them, however, handling 10°-10 delicate sections remains a bottleneck in ssEM, especially for batches in the "mesoscale" regime, i.e., 10-10 sections. We present a tissue section handling device that transports and positions sections, accurately and repeatability, for automated, robotic section pick-up and placement onto an imaging substrate. The device interfaces with a conventional ultramicrotomy diamond knife, accomplishing in-line, exact-constraint trapping of sections with 100-μm repeatability. An associated mathematical model includes capillary-based and Stokes-based forces, accurately describing observed behavior and fundamentally extends the modeling of water-air interface forces. Using the device, we demonstrate and describe the limits of reliable handling of hundreds of slices onto a variety of electron and light microscopy substrates without significant defects ( = 8 datasets composed of 126 serial sections in an automated fashion with an average loss rate and throughput of 0.50% and 63 s/section, respectively. In total, this work represents an automated mesoscale serial sectioning system for scalable 3D-EM connectomics.
连续切片电子显微镜(ssEM)是一种通过对连续组织切片成像来对组织体积进行解剖重建的技术,已被证明是研究大脑解剖结构的有力工具。然而,在切片或“切片”的切割和成像过程中,处理 10°-10 个精细的切片仍然是 ssEM 的一个瓶颈,特别是对于“中尺度”(mesoscale)批次,即 10-10 个切片。我们提出了一种组织切片处理设备,用于自动、机器人式的切片采集和放置到成像基板上,可精确且可重复地传输和定位切片。该设备与传统的超微切片金刚石刀接口,以 100-μm 的重复性完成在线、精确约束的切片捕获。相关的数学模型包括基于毛细管和基于 Stokes 的力,准确地描述了观察到的行为,并从根本上扩展了水-空气界面力的建模。使用该设备,我们演示并描述了可靠处理数百个切片到各种电子和光学显微镜基板上的限制,而不会出现明显缺陷(=8 个数据集,以自动化方式包含 126 个连续切片,平均损耗率和吞吐量分别为 0.50%和 63 秒/切片。总的来说,这项工作代表了一种用于可扩展 3D-EM 连接组学的自动化中尺度连续切片系统。