An effective method for quantification, visualization, and analysis of 3D cell shape during early embryogenesis

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Author(s)

  • Zhaoke Huang
  • Guoye Guan
  • Zhongying Zhao

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Detail(s)

Original languageEnglish
Article numbere83
Number of pages14
Journal / PublicationQuantitative Biology
Volume13
Issue number1
Online published20 Dec 2024
Publication statusPublished - Mar 2025

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Abstract

Embryogenesis is the most basic process in developmental biology. Effectively and simply quantifying cell shape is challenging for the complex and dynamic 3D embryonic cells. Traditional descriptors such as volume, surface area, and mean curvature often fall short, providing only a global view and lacking in local detail and reconstruction capability. Addressing this, we introduce an effective integrated method, 3D Cell Shape Quantification (3DCSQ), for transforming digitized 3D cell shapes into analytical feature vectors, named eigengrid (proposed grid descriptor like eigen value), eigenharmonic, and eigenspectrum. We uniquely combine spherical grids, spherical harmonics, and principal component analysis for cell shape quantification. We demonstrate 3DCSQ’s effectiveness in recognizing cellular morphological phenotypes and clustering cells. Applied to Caenorhabditis elegans embryos of 29 living embryos from 4- to 350-cell stages, 3DCSQ identifies and quantifies biologically reproducible cellular patterns including distinct skin cell deformations. We also provide automatically cell shape lineaging analysis program. This method not only systematizes cell shape description and evaluation but also monitors cell differentiation through shape changes, presenting an advancement in biological imaging and analysis. © 2024 The Author(s).

Research Area(s)

  • spherical harmonics (SPHARM), cell shape quantification, morphological reproducibility, lineage analysis, Caenorhabditis elegans (C. elegans), eigen features (eigengrid,eigenharmonic & eigenspectrum

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