Aug 2026· Molecular Psychiatry· 0 citations· 80 references
Medicine
TL;DR
The first comprehensive human mechanistic model of PPP1R9A haploinsufficiency using an isogenic CRISPR/Cas9-engineered iPSC system differentiated into cortical neurons is established, providing a human-specific mechanistic framework linking reduced Neurabin I dosage to neurodevelopmental and psychiatric disease risk.
Abstract
Heterozygous loss-of-function variants in Neurabin I (PPP1R9A), responsible for encoding a cytoskeletal scaffolding protein essential for synaptic plasticity, are recurrently associated with neurodevelopmental and neuropsychiatric disorders, yet their direct effects on human neuronal maturation remain unclear. Here, we establish the first comprehensive human mechanistic model of PPP1R9A haploinsufficiency using an isogenic CRISPR/Cas9-engineered iPSC system differentiated into cortical neurons to define dosage-dependent functional consequences. PPP1R9A+/- neurons exhibited pronounced hyperspinogenesis and increased neuritic complexity, indicative of aberrant structural maturation; however, whole-cell patch-clamp recordings revealed impaired intrinsic excitability, including reduced action potential firing, altered waveform properties, and defective axo-somatic coupling, uncovering a striking dissociation between neuronal morphology and function. Long-read single-cell transcriptomics and quantitative proteomics identified coordinated downregulation of ion channel and synaptic transmission pathways, including genes essential for sodium channel function and glutamatergic signaling, together with disruption of synaptic vesicle cycling, axon guidance, and neurodevelopmental programs. Pseudotime trajectory analysis further demonstrated delayed neuronal differentiation, with mutant neurons accumulating at intermediate developmental states rather than acquiring mature cortical identities. Importantly, molecular rescue experiments confirmed causality, as restoration of full-length PPP1R9A expression robustly normalized transcriptional and synaptic signaling programs, whereas allele-specific antisense oligonucleotide-mediated suppression of the mutant transcript achieved only partial rescue. Taken together, these findings establish PPP1R9A haploinsufficiency as a driver of impaired molecular, electrophysiological, and developmental maturation in human cortical neurons, providing a human-specific mechanistic framework linking reduced Neurabin I dosage to neurodevelopmental and psychiatric disease risk.
It is demonstrated that SYNGAP1 haploinsufficiency disrupts early human brain development and accelerates intrinsic neuronal maturation, with pathogenic mechanisms emerging before synaptogenesis and extending beyond SYNGAP1’s established synaptic role.
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Neurexins and neuroligins are evolutionarily conserved synaptic adhesion molecules that play essential roles in synapse formation and neural circuit function, with mutations linked to neurodevelopmental disorders such as autism. Here, we combined whole-transcriptome sequencing with phenotypic characterization to define the molecular consequences of neurexin and neuroligin deficiency in Caenorhabditis elegans. Young adult worms carrying allele-specific loss-of-function mutations in nrx-1 (ok1649 and tm1961) or nlg-1 (ok259 and tm474), orthologues for human NRXNs or NLGNs, respectively, were subjected to RNA sequencing and compared with wild-type animals. Mutant strains exhibited impaired growth, altered locomotor activity, increased social aggregation, and reduced ventral nerve cord neuronal integrity. Transcriptomic analysis revealed extensive gene-expression changes, particularly in the nrx-1 (tm1961) allele, with dysregulation of genes involved in cuticle development, neuronal signaling, protein homeostasis, innate immunity, mitochondrial organization, and transcriptional regulation. Gene Ontology and KEGG enrichment analyses identified significant perturbations in developmental, metabolic, stress-response, translational, and synaptic pathways. Together, these findings demonstrate that disruption of neurexin–neuroligin signaling drives transcriptional reprogramming that extends beyond synaptic dysfunction, linking molecular alterations to developmental, behavioral, and neuromorphological abnormalities.
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The findings elucidate Girdin signaling as a mediator of excessive neuronal process formation following NRXN2 knockdown, providing mechanistic insight into how the loss of function of NRXN2 leads to aberrant cell morphogenesis at least at the molecular and cellular levels.
Hideji Yako, Mikito Takahashi, Mami Akiyama et al.· International Journal of Mol...· 1 citation
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