Volumetric trans-scale imaging of massive quantity of heterogeneous cell populations in centimeter-wide tissue and embryo.

IF 6.4 1区 生物学 Q1 BIOLOGY eLife Pub Date : 2025-02-03 DOI:10.7554/eLife.93633
Taro Ichimura, Taishi Kakizuka, Yoshitsugu Taniguchi, Satoshi Ejima, Yuki Sato, Keiko Itano, Kaoru Seiriki, Hitoshi Hashimoto, Ko Sugawara, Hiroya Itoga, Shuichi Onami, Takeharu Nagai
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Abstract

We established a volumetric trans-scale imaging system with an ultra-large field-of-view (FOV) that enables simultaneous observation of millions of cellular dynamics in centimeter-wide three-dimensional (3D) tissues and embryos. Using a custom-made giant lens system with a magnification of ×2 and a numerical aperture (NA) of 0.25, and a CMOS camera with more than 100 megapixels, we built a trans-scale scope AMATERAS-2, and realized fluorescence imaging with a transverse spatial resolution of approximately 1.1 µm across an FOV of approximately 1.5×1.0 cm2. The 3D resolving capability was realized through a combination of optical and computational sectioning techniques tailored for our low-power imaging system. We applied the imaging technique to 1.2 cm-wide section of mouse brain, and successfully observed various regions of the brain with sub-cellular resolution in a single FOV. We also performed time-lapse imaging of a 1-cm-wide vascular network during quail embryo development for over 24 hr, visualizing the movement of over 4.0×105 vascular endothelial cells and quantitatively analyzing their dynamics. Our results demonstrate the potential of this technique in accelerating production of comprehensive reference maps of all cells in organisms and tissues, which contributes to understanding developmental processes, brain functions, and pathogenesis of disease, as well as high-throughput quality check of tissues used for transplantation medicine.

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厘米宽组织和胚胎中大量异质细胞群的体积跨尺度成像。
我们建立了一个具有超大视场(FOV)的体积跨尺度成像系统,可以同时观察厘米宽的三维(3D)组织和胚胎中的数百万细胞动力学。利用定制的放大倍为×2、数值孔径(NA)为0.25的巨型透镜系统和1亿像素以上的CMOS相机,构建了AMATERAS-2跨尺度瞄准镜,在约1.5×1.0 cm2的视场范围内实现了横向空间分辨率约为1.1µm的荧光成像。3D分辨能力是通过结合为我们的低功耗成像系统量身定制的光学和计算切片技术实现的。我们将该成像技术应用于1.2 cm宽的小鼠大脑切片,成功地在单个视场内以亚细胞分辨率观察了大脑的各个区域。我们还对鹌鹑胚胎发育过程中1厘米宽的血管网络进行了超过24小时的延时成像,可视化了4.0×105血管内皮细胞的运动并定量分析了它们的动力学。我们的研究结果证明了该技术在加速生成生物体和组织中所有细胞的综合参考图谱方面的潜力,这有助于理解发育过程、脑功能和疾病发病机制,以及用于移植医学的组织的高通量质量检查。
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来源期刊
eLife
eLife BIOLOGY-
CiteScore
12.90
自引率
3.90%
发文量
3122
审稿时长
17 weeks
期刊介绍: eLife is a distinguished, not-for-profit, peer-reviewed open access scientific journal that specializes in the fields of biomedical and life sciences. eLife is known for its selective publication process, which includes a variety of article types such as: Research Articles: Detailed reports of original research findings. Short Reports: Concise presentations of significant findings that do not warrant a full-length research article. Tools and Resources: Descriptions of new tools, technologies, or resources that facilitate scientific research. Research Advances: Brief reports on significant scientific advancements that have immediate implications for the field. Scientific Correspondence: Short communications that comment on or provide additional information related to published articles. Review Articles: Comprehensive overviews of a specific topic or field within the life sciences.
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