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Related Experiment Video

Updated: Jan 11, 2026

3D Imaging of Soft-Tissue Samples using an X-ray Specific Staining Method and Nanoscopic Computed Tomography
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Depth-variant deconvolution applied to widefield microscopy for rapid large-volume tissue imaging.

Daniel D Lee1, Kevin A Telfer2, Mark A J Koenis3

  • 1Department of Pathology & Immunology, Washington University School of Medicine, Saint Louis, MO, USA. ldaniel@wustl.edu.

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|November 18, 2025
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Summary

This study introduces an accessible 3D tissue imaging method combining widefield microscopy and deconvolution. It achieves subnuclear resolution in thick tissues, enabling detailed visualization for research and clinical applications.

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Area of Science:

  • Biomedical Imaging
  • Microscopy Techniques
  • Tissue Engineering

Background:

  • 3D tissue imaging is vital but hindered by long protocols and limited equipment access.
  • Widefield microscopy offers speed and accessibility but lacks optical sectioning for 3D analysis.
  • Existing methods often exclude widefield microscopy from advanced 3D imaging workflows.

Purpose of the Study:

  • To develop an accessible 3D imaging method using widefield microscopy and deconvolution for thick tissues.
  • To achieve subnuclear axial resolution in cleared tissues up to 500 µm deep.
  • To demonstrate the method's utility in disease models and clinical evaluations.

Main Methods:

  • Combined tissue clearing with an optimized commercial depth-variant deconvolution approach.
  • Implemented prefiltering with z-brick splitting for enhanced axial resolution.
  • Applied the method to large-volume, multi-tile widefield imaging of cleared tissues.

Main Results:

  • Achieved subnuclear axial resolution in tissues up to 500 µm deep.
  • Successfully visualized amyloid deposits in brain vasculature and atrophic tubules in kidney biopsies.
  • Demonstrated resolution comparable to confocal microscopy in thick tissue sections.

Conclusions:

  • Coupling widefield microscopy of cleared tissue with deconvolution provides an accessible method for 3D insight.
  • This approach enhances research capabilities and facilitates clinical evaluations of thick tissue samples.
  • The optimized method overcomes limitations of traditional 3D imaging, offering a viable alternative.