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Nanoscale Resolution Imaging of Whole Mouse Embryos Using Expansion Microscopy

  • Jueun Sim
  • , Chan E. Park
  • , In Cho
  • , Kyeongbae Min
  • , Minho Eom
  • , Seungjae Han
  • , Hyungju Jeon
  • , Eun Seo Cho
  • , Yunjeong Lee
  • , Young Hyun Yun
  • , Sungho Lee
  • , Deok Hyeon Cheon
  • , Jihyun Kim
  • , Museong Kim
  • , Hyun Ju Cho
  • , Ji Won Park
  • , Ajeet Kumar
  • , Yosep Chong
  • , Jeong Seuk Kang
  • , Kiryl D. Piatkevich
  • Erica E. Jung, Du Seock Kang, Seok Kyu Kwon, Jinhyun Kim, Ki Jun Yoon, Jeong Soo Lee, Cheol Hee Kim, Myunghwan Choi, Jin Woo Kim, Mi Ryoung Song, Hyung Jin Choi, Edward S. Boyden, Young Gyu Yoon, Jae Byum Chang
  • Korea Advanced Institute of Science and Technology
  • Sungkyunkwan University
  • Korea Institute of Science and Technology
  • Gwangju Institute of Science and Technology
  • Seoul National University
  • Korea University
  • Korea Research Institute of Bioscience and Biotechnology
  • Chungnam National University
  • Harvard University
  • Westlake University
  • University of Illinois at Chicago
  • University of Science and Technology UST
  • Howard Hughes Medical Institute
  • Massachusetts Institute of Technology
  • Bioimaging Data Curation Center

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

Nanoscale imaging of whole vertebrates is essential for the systematic understanding of human diseases, yet this goal has not yet been achieved. Expansion microscopy (ExM) is an attractive option for accomplishing this aim; however, the expansion of even mouse embryos at mid- and late-developmental stages, which have fewer calcified body parts than adult mice, is yet to be demonstrated due to the challenges of expanding calcified tissues. Here, we introduce a state-of-the-art ExM technique, termed whole-body ExM, that utilizes cyclic digestion. This technique allows for the super-resolution, volumetric imaging of anatomical structures, proteins, and endogenous fluorescent proteins (FPs) within embryonic and neonatal mice by expanding them 4-fold. The key feature of whole-body ExM is the alternating application of two enzyme compositions repeated multiple times. Through the simple repetition of this digestion process with an increasing number of cycles, mouse embryos of various stages up to E18.5, and even neonatal mice, which display a dramatic difference in the content of calcified tissues compared to embryos, are expanded without further laborious optimization. Furthermore, the whole-body ExM’s ability to retain FP signals allows the visualization of various neuronal structures in transgenic mice. Whole-body ExM could facilitate studies of molecular changes in various vertebrates.

Original languageEnglish
Pages (from-to)7910-7927
Number of pages18
JournalACS Nano
Volume19
Issue number8
DOIs
StatePublished - 4 Mar 2025

Bibliographical note

Publisher Copyright:
© 2025 American Chemical Society.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • embryo imaging
  • expansion microscopy
  • peripheral nerve system
  • super-resolution imaging
  • whole-body imaging

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