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Christina Gross

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Open access Jul 2026

FMR1 gene therapy restores translationally relevant phenotypes in a mouse model for fragile X syndrome.

Fragile X Syndrome (FXS) is the most common inherited form of intellectual disability. It is caused by a trinucleotide expansion in the 5' UTR of the Fragile X messenger ribonucleoprotein 1 (FMR1) gene leading to loss of expression of Fragile X messenger ribonucleoprotein (FMRP). There is currently no cure for FXS. We developed an FMR1 gene therapy based on an adeno-associated viral vector designed with strong translational potential for future clinical testing. The viral vector was tested in Fmr1 knockout mice using two translationally relevant delivery routes and ages corresponding to in utero, toddler, and adolescent ages in humans. Functional studies showed that the FMR1 gene therapy improved select translational FXS phenotypes spanning three critical domains: sensory hyperexcitability, adaptation to change, and altered brain activity. Expression after intracerebroventricular injection was most prominent in the forebrain, whereas intravenous delivery predominantly led to expression across midbrain and brainstem, suggesting that a dual route may be needed to achieve full brain coverage. Biodistribution analyses further suggested that FMRP expression must be titrated carefully for optimal rescue. In summary, we show that FMR1 gene therapy using delivery routes and vehicles approved for clinical use improves core phenotypes in a mouse model for FXS.

Richard K Lacher, Kari Henson, Lindsay N Wathen et al. · 0 citations
Open access Jul 2026

The m6A-mediated epi-transcriptomic dysregulation drives synaptic dysfunction in fragile X syndrome.

Fragile X syndrome (FXS), the leading genetic cause of intellectual disability, arises from FMR1 gene silencing and the subsequent loss of the RNA-binding protein FMRP. N6-methyladenosine (m6A) is a prevalent mRNA modification essential for post-transcriptional regulation. FMRP binds and regulates the stability of m6A-containing transcripts. However, how FMRP deficiency impacts transcriptome-wide m6A modifications in FXS remains unknown. To address this, we generated cortical neurons from induced pluripotent stem cells (iPSCs) derived from healthy individuals and FXS patients. Electrophysiology recordings revealed synaptic and neuronal network defects in FXS iPSC-derived neurons. Transcriptome-wide analysis revealed striking m6A hypermethylation predominantly affecting synapse-associated transcripts. Mechanistically, we demonstrated that FMRP deficiency drives the aberrant translational upregulation of core m6A writers, a causal relationship definitively validated using CGG-corrected isogenic control lines. Targeted genetic knockdown of the m6A writer METTL3 successfully rescued synaptic phenotypes in FXS neurons, whereas its overexpression in control neurons phenocopied these synaptic defects, confirming the causal role of m6A dysregulation in FXS pathology. Notably, pharmacological intervention with the METTL3 inhibitor STM-2457 normalized methylation on synapse-associated transcripts and restored synaptic transmission in FXS neurons. Together, our findings uncover an FMRP-dependent epitranscriptomic mechanism contributing to FXS pathogenesis and suggest a promising avenue for m6A-targeted therapies.

Lu Lu, Avijite Kumer Sarkar, Lan Dao et al. · 0 citations