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WGCNA Identifies Translational and Proteasome-Ubiquitin Dysfunction in Rett Syndrome
Florencia Haase1,2,3, Brian S Gloss4, Patrick P L Tam1,5
1Faculty of Medicine and Health, School of Medical Science, The University of Sydney, Camperdown, NSW 2050, Australia.
Insights
Rett Syndrome, a neurodevelopmental disorder, shows early molecular changes in gene pathways related to translation and ubiquitination, even before symptoms appear. These disruptions in methyl-CpG-binding protein 2 (MECP2) mutant cells suggest early cellular dysfunction.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Rett Syndrome (RTT) is a severe X-linked neurodevelopmental disorder caused by mutations in the methyl-CpG-binding protein 2 (MECP2) gene.
- Symptoms typically manifest between 6-18 months, but molecular changes preceding clinical onset remain poorly understood.
- Early cellular and molecular alterations in neural cells may occur before symptomatic manifestation.
Purpose of the Study:
- To investigate transcriptomic modifications in Rett Syndrome patients using induced pluripotent stem cells (iPSCs).
- To identify early molecular and cellular changes associated with MECP2 mutations prior to symptom onset.
Main Methods:
- Weighted Gene Correlation Network Analysis (WGCNA) applied to RNA-sequencing datasets of patient iPSCs and healthy controls.
- Differential gene expression analysis of parental fibroblasts and iPSC-derived neurons.
Main Results:
- Preservation analysis revealed perturbed gene pathways in translation, ribosomal function, and ubiquitination in MECP2 mutant iPSC lines.
- Alterations in ubiquitination pathways were observed in fibroblasts, while neurotransmission gene changes were noted in differentiated neurons.
- These findings suggest early global translational dysregulation and proteasome ubiquitin function changes.
Conclusions:
- Global translational dysregulation and proteasome ubiquitin function alterations in Rett Syndrome may originate in progenitor cells.
- These molecular changes occur prior to lineage commitment and differentiation into neural cells.
- Understanding these early events is crucial for developing timely therapeutic interventions for Rett Syndrome.
Abstract:
Rett Syndrome (RTT) is an X linked neurodevelopmental disorder caused by mutations in the methyl-CpG-binding protein 2 (MECP2) gene, resulting in severe cognitive and physical disabilities. Despite an apparent normal prenatal and postnatal development period, symptoms usually present around 6 to 18 months of age. Little is known about the consequences of MeCP2 deficiency at a molecular and cellular level before the onset of symptoms in neural cells, and subtle changes at this highly sensitive developmental stage may begin earlier than symptomatic manifestation. Recent transcriptomic studies of patient induced pluripotent stem cells (iPSC)-differentiated neurons and brain organoids harbouring pathogenic mutations in MECP2, have unravelled new insights into the cellular and molecular changes caused by these mutations. Here we interrogated transcriptomic modifications in RTT patients using publicly available RNA-sequencing datasets of patient iPSCs harbouring pathogenic mutations and healthy control iPSCs by Weighted Gene Correlation Network Analysis (WGCNA). Preservation analysis identified core gene pathways involved in translation, ribosomal function, and ubiquitination perturbed in some MECP2 mutant iPSC lines. Furthermore, differential gene expression of the parental fibroblasts and iPSC-derived neurons revealed alterations in genes in the ubiquitination pathway and neurotransmission in fibroblasts and differentiated neurons respectively. These findings might suggest that global translational dysregulation and proteasome ubiquitin function in Rett syndrome begins in progenitor cells prior to lineage commitment and differentiation into neural cells.
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