Impact of intragenic NRXN1 deletions on early cortical development
Dutan-Polit, L.; Gatford, N. J.; Carneiro, T.; Nagy, R.; Higgs, V.; APEX Consortia, ; Massrali, A.; Paul, A.; Fasolino, M.; Zhou, Z.; Flinter, F. A.; Adhya, D.; Bucan, M.; Baron-Cohen, S.; Srivastava, D. P.
Show abstract
BackgroundDeletions in NRXN1 are strongly associated with neurodevelopmental and psychiatric conditions. While exonic deletions are well-studied, intragenic deletions, particularly in intron 5, are less understood and generally consider benign. Recent studies show exonic deletions impact isoform diversity during neurodevelopment, affecting neurogenesis and neuronal function. However, whether intragenic deletions impact isoform expression and neurodevelopment remains underexplored. MethodsWe used hiPSCs from typically developing individuals (control) and those with NRXN1 intron 5 deletions to study neurodevelopment. HiPSCs were differentiated towards a cortical fate, with NRXN1 isoform expression, molecular differences, and neuronal morphology examined. ResultsWe observed distinct NRXN1 isoform expression dynamics during early neurodevelopment, with two expression peaks post-neuronal induction and NRXN1{beta} being most highly expressed. Both NRXN1 deletion and control lines showed similar acquisition of regional and cell fate identity, but significant differences in NRXN1 isoform expression were observed between deletion and control lines, and between deletion lines. RNA sequencing revealed genotype-dependent alterations, particularly in pathways related to synaptic function and neuronal morphology. Consistent with these findings, NRXN1 deletion lines exhibited altered dendrite outgrowth, with variations between deletion lines. ConclusionsOur results indicate a potential role for intron 5 in controlling NRXN1 isoform expression during neurodevelopment. Alterations in gene expression profiles, correlated with morphological changes, suggest a role for NRXN1 isoforms in shaping dendritic morphology. Molecular and cellular differences observed between lines with identical intronic deletions suggest that additional factors, such as genetic background or biological sex, may also play an important role in these phenotypes. Collectively, these findings indicate that NRXN1 intronic deletions are not benign, influencing isoform expression, cellular phenotypes, and neurodevelopment.
Matching journals
The top 7 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Neuronal Modeling of Alternating Hemiplegia of Childhood Reveals Transcriptional Compensation and Replicates a Trigger-Induced Phenotype 96%
- Chchd10 Or Chchd2 Are Not Required For Human Motor Neuron Differentiation In Vitro But Modify Synaptic Transcriptomes 95%
- Altered action potential waveform and shorter axonal initial segment in hiPSC-derived motor neurons with mutations in VRK1 95%
Similar papers in this journal
- Sonlicromanol improves neuronal network dysfunction and transcriptome changes linked to m.3243A > G heteroplasmy in iPSC-derived neurons 96%
- Altered patterning of interneuron progenitors in Down syndrome 96%
- A human in vitro neuronal model for studying homeostatic plasticity at the network level 95%
Similar papers in this journal
- Molecular Changes in Prader-Willi Syndrome Neurons Reveals Clues About Increased Autism Susceptibility. 94%
- Buprenorphine exposure alters the development and migration of interneurons in the cortex 94%
- Pharmacological rescue of the brain cortex phenotype in Tbx1 mouse mutants: significance for 22q11.2 deletion syndrome 93%
Similar papers in this journal
- Human TSC2 Mutant Cells Exhibit Aberrations in Early Neurodevelopment Accompanied by Changes in the DNA Methylome 95%
- Familial ALS/FTD-associated RNA-Binding deficient TDP-43 mutants cause neuronal and synaptic transcript dysregulation in vitro 94%
- The Dynamic Nature of Genetic Risk for Schizophrenia Within Genes Regulated by FOXP1 During Neurodevelopment 94%
Similar papers in this journal
- Early maturation and hyperexcitability is a shared phenotype of cortical neurons derived from different ASD-associated mutations 95%
- Pharmacological modulation of developmental and synaptic phenotypes in human SHANK3 deficient stem cell-derived neuronal models 94%
- Presynaptic dysfunction in CASK-related neurodevelopmental disorders 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.