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Automated contour extraction for light-sheet microscopy images of zebrafish embryos based on object edge detection

Akiko Kondow1, Kiyoshi Ohnuma2,3, Atsushi Taniguchi4

  • 1Advanced Comprehensive Research Organization, Teikyo University, Tokyo, Japan.

Development, Growth & Differentiation
|June 23, 2023
PubMed
Summary

This study introduces a novel workflow for extracting zebrafish embryo contours using edge detection and change point analysis, outperforming existing methods in accuracy and noise robustness for developmental studies.

Keywords:
computer-assisted image analysisdigital image processingembryonic developmentfluorescence microscopyzebrafish

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Area of Science:

  • Developmental Biology
  • Biotechnology
  • Microscopy Imaging

Background:

  • Embryo contour extraction is crucial for quantitative morphology analysis and understanding development.
  • Light-sheet microscopy enables in toto time-lapse imaging of embryos like zebrafish.
  • Extracting embryo contours from light-sheet microscopy data is challenging due to large data volumes and object variability.

Purpose of the Study:

  • To develop a workflow for extracting zebrafish embryo contours without manual labeling.
  • To utilize an edge detection method based on change point detection for contour extraction.
  • To evaluate the performance and robustness of the proposed method against established techniques.

Main Methods:

  • A novel workflow employing edge detection with a change point detection approach for embryo contour extraction.
  • Comparison of the proposed method with Sobel, Laplacian of Gaussian, adaptive threshold, Multi Otsu, and k-means clustering.
  • Assessment of edge detection accuracy and noise robustness.

Main Results:

  • The proposed method demonstrated superior edge detection accuracy compared to Sobel, LoG, adaptive threshold, Multi Otsu, and k-means methods.
  • The workflow exhibited enhanced noise robustness over Multi Otsu and k-means clustering-based methods.
  • The method proved effective for automated, small-scale contour extraction of zebrafish embryos.

Conclusions:

  • The developed workflow provides an effective, label-free method for zebrafish embryo contour extraction.
  • This approach offers a viable alternative when deep learning or other non-deep learning methods are not applicable.
  • The method facilitates quantitative analysis of embryo morphology, aiding developmental process understanding.