Spatial characterization of RPE structure and lipids in the PEX1-p.Gly844Asp mouse model for Zellweger spectrum

Samy Omri1, Catherine Argyriou2, Rachel S Pryce3

  • 1Child Health and Human Development Axis, Research Institute of the McGill University Health Centre, Montréal, Québec, Canada.

PubMed

Insights

Zellweger Spectrum Disorder (ZSD) causes retinal degeneration due to peroxisome dysfunction. This study reveals early lipid changes and inflammation in the retinal pigment epithelium (RPE) of a ZSD mouse model, identifying potential biomarkers for disease progression.

Area of Science:

  • Cell Biology
  • Genetics
  • Ophthalmology

Background:

  • Zellweger Spectrum Disorder (ZSD) arises from PEX gene defects, impairing peroxisome assembly and function.
  • Peroxisome deficiency leads to multisystem disorders, frequently including progressive retinal degeneration (RD).
  • The precise mechanisms linking peroxisome dysfunction to RD remain largely unelucidated.

Purpose of the Study:

  • To investigate the retinal pigment epithelium (RPE) phenotype in a PEX1-G844D mouse model of Zellweger Spectrum Disorder.
  • To characterize morphological, inflammatory, and lipidomic alterations in the RPE during disease progression.
  • To identify potential lipid biomarkers associated with retinopathy in ZSD.

Main Methods:

  • Utilized the PEX1-p.Gly844Asp (G844D) mouse model, a relevant model for human PEX1-p.Gly843Asp (G843D) variant.
  • Examined RPE morphology, inflammation, and lipid profiles at 1, 3, and 6 months of age.
  • Employed imaging mass spectrometry and LC/MS/MS for in situ lipid analysis within the RPE.

Main Results:

  • RPE degeneration was observed by 3 months, worsening over time and originating in the dorsal pole.
  • Subretinal inflammatory cell infiltration accompanied RPE degeneration.
  • Identified 47 lipid alterations preceding structural changes, with 29 persisting and 13 new alterations appearing concurrently with histological changes.

Conclusions:

  • This study provides the first characterization of RPE in a ZSD model and the initial in situ lipid analysis of peroxisome-deficient tissue.
  • Discovered significant lipid alterations in the RPE, suggesting potential lipid drivers of RD in ZSD.
  • Identified candidate biomarkers for tracking retinopathy progression and evaluating therapeutic responses in ZSD.

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