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Updated: May 19, 2026

Peroxisome Staining in Mammalian Cells Using Peroxisome-Specific Probes
Published on: December 19, 2025
Genetics and molecular basis of human peroxisome biogenesis disorders
Hans R Waterham1, Merel S Ebberink
1University of Amsterdam, the Netherlands. h.r.waterham@amc.nl
Insights
Human peroxisome biogenesis disorders (PBDs) are genetic conditions affecting peroxisome assembly. Genetic testing aids in diagnosing PBDs, understanding genotype-phenotype correlations, and offering family planning options.
Area of Science:
- Genetics
- Molecular Biology
- Biochemistry
Background:
- Peroxisome biogenesis disorders (PBDs) are inherited conditions impacting peroxisome function.
- PBDs present as Zellweger syndrome spectrum (ZSS) disorders or rhizomelic chondrodysplasia punctata (RCDP) type 1.
- Defects in at least 14 PEX genes cause PBDs, crucial for peroxisome assembly.
Purpose of the Study:
- To review the current status of genetic analysis for PBDs.
- To elucidate the molecular basis of PBDs.
- To highlight the benefits of genetic testing in PBD management.
Main Methods:
- PEX cDNA transfection complementation assays.
- Sequencing of identified PEX genes.
- PEX gene screening of frequently mutated exons.
Main Results:
- Genetic heterogeneity in PBDs necessitates diverse diagnostic strategies.
- Identification of causative PEX gene defects is achievable through various molecular techniques.
- DNA testing provides valuable information for PBD patients and families.
Conclusions:
- Genetic analysis is crucial for diagnosing and managing PBDs.
- Understanding PEX gene mutations improves genotype-phenotype correlations.
- Genetic testing supports carrier testing, prenatal diagnosis, and family planning for PBDs.
Abstract:
Human peroxisome biogenesis disorders (PBDs) are a heterogeneous group of autosomal recessive disorders comprised of two clinically distinct subtypes: the Zellweger syndrome spectrum (ZSS) disorders and rhizomelic chondrodysplasia punctata (RCDP) type 1. PBDs are caused by defects in any of at least 14 different PEX genes, which encode proteins involved in peroxisome assembly and proliferation. Thirteen of these genes are associated with ZSS disorders. The genetic heterogeneity among PBDs and the inability to predict from the biochemical and clinical phenotype of a patient with ZSS which of the currently known 13 PEX genes is defective, has fostered the development of different strategies to identify the causative gene defects. These include PEX cDNA transfection complementation assays followed by sequencing of the thus identified PEX genes, and a PEX gene screen in which the most frequently mutated exons of the different PEX genes are analyzed. The benefits of DNA testing for PBDs include carrier testing of relatives, early prenatal testing or preimplantation genetic diagnosis in families with a recurrence risk for ZSS disorders, and insight in genotype-phenotype correlations, which may eventually assist to improve patient management. In this review we describe the current status of genetic analysis and the molecular basis of PBDs.
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