Modeling antisense oligonucleotide therapy in MECP2 duplication syndrome human iPSC-derived neurons reveals gene
Sameer S Bajikar1,2,3,4, Yehezkel Sztainberg1,2, Alexander J Trostle2,5
1Department of Molecular and Human Genetics, Baylor College of Medicine, One Baylor Plaza, Houston, TX 77030, United States.
Abstract:
Genomic copy-number variations (CNVs) that can cause neurodevelopmental disorders often encompass many genes, which complicates our understanding of how individual genes within a CNV contribute to pathology. MECP2 duplication syndrome (MDS or MRXSL in OMIM; OMIM#300260) is one such CNV disorder caused by duplications spanning methyl CpG-binding protein 2 (MECP2) and other genes on Xq28. Using an antisense oligonucleotide (ASO) to normalize MECP2 dosage is sufficient to rescue abnormal neurological phenotypes in mouse models overexpressing MECP2 alone, implicating the importance of increased MECP2 dosage within CNVs of Xq28. However, because MDS CNVs span MECP2 and additional genes, we generated human neurons from multiple MDS patient-derived induced pluripotent cells (iPSCs) to evaluate the benefit of using an ASO against MECP2 in a MDS human neuronal context. Importantly, we identified a signature of genes that is partially and qualitatively modulated upon ASO treatment, pinpointed genes sensitive to MeCP2 function, and altered in a model of Rett syndrome, a neurological disorder caused by loss of MeCP2 function. Furthermore, the signature contained genes that are aberrantly altered in unaffected control human neurons upon MeCP2 depletion, revealing gene expression programs qualitatively sensitive to MeCP2 levels in human neurons. Lastly, ASO treatment led to a partial rescue of abnormal neuronal morphology in MDS neurons. All together, these data demonstrate that ASOs targeting MECP2 benefit human MDS neurons. Moreover, our study establishes a paradigm by which to evaluate the contribution of individual genes within a CNV to pathogenesis and to assess their potential as a therapeutic target.
Insights
Antisense oligonucleotides targeting MECP2 show promise for treating MECP2 duplication syndrome (MDS). This approach partially rescues abnormal neuronal morphology and identifies key gene expression changes in human neurons, offering a new therapeutic strategy.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Genomic copy-number variations (CNVs) complicate understanding neurodevelopmental disorders.
- MECP2 duplication syndrome (MDS) involves duplications on Xq28, including MECP2 and other genes.
- Previous studies in mouse models suggest normalizing MECP2 dosage can rescue phenotypes.
Purpose of the Study:
- To evaluate the therapeutic potential of antisense oligonucleotides (ASOs) targeting MECP2 in human neurons derived from MDS patients.
- To identify gene expression signatures modulated by ASO treatment in MDS neurons.
- To establish a paradigm for assessing gene contributions within CNVs and therapeutic targets.
Main Methods:
- Generated human neurons from patient-derived induced pluripotent stem cells (iPSCs) with MDS.
- Treated MDS human neurons with an ASO targeting MECP2.
- Analyzed gene expression signatures and neuronal morphology.
- Compared findings with models of Rett syndrome and MeCP2-depleted neurons.
Main Results:
- ASO treatment partially rescued abnormal neuronal morphology in MDS neurons.
- Identified a gene expression signature sensitive to MeCP2 levels and modulated by ASO treatment.
- Revealed gene expression programs qualitatively sensitive to MeCP2 levels in human neurons.
- Demonstrated that ASOs targeting MECP2 benefit human MDS neurons.
Conclusions:
- ASOs targeting MECP2 offer a potential therapeutic benefit for human MDS neurons.
- The study provides a framework for evaluating individual gene contributions within CNVs and their therapeutic potential.
- This research highlights the importance of MECP2 dosage in neurodevelopmental disorders.
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