Study of human-induced pluripotent stem cell derived ventral telencephalic interneuron progenitors in two-dimensional culture finds that transcript level variation is significantly greater between 16p11.2 heterozygous progenitors than their isogenic wild type counterparts, suggesting that the 16p11.2 locus itself has a genome-wide property in stabilizing transcription between cells.
Abstract
The 574-kilobase pair 16p11.2 microdeletion raises a person’s odds for neurodevelopmental and energy balance conditions, particularly autism and obesity, with considerable clinical heterogeneity, and how much this reflects genetic versus environmental or stochastic factors is unclear. GABAergic forebrain interneurons originate from progenitors residing in the ventricular zones of the fetal ventral telencephalon, and their perturbation is implicated in 16p11.2 phenotypes, prompting investigation of how the 16p11.2 microdeletion impacts their development. Here we studied human-induced pluripotent stem cell (IPSC) derived ventral telencephalic interneuron progenitors in two-dimensional culture, comparing IPSCs isogenic except for a heterozygous 16p11.2 microdeletion to minimize confounding effects of genetic background. Single-cell RNA sequencing generated single-cell transcriptome populations for comparative bioinformatics, revealing hundreds of differentially expressed transcripts, many associated with cell signaling, chromatin biology, and neurodevelopmental conditions. Pertinently, we find that transcript level variation is significantly greater between 16p11.2 heterozygous progenitors than their isogenic wild type counterparts both for sets of genes comprising regulons, gene-sets functionally connected by transcription factor regulation, and for randomly selected gene sets. This indicates that the 16p11.2 locus itself has a genome-wide property in stabilizing transcription between cells. Regulons with the greatest increased variability in 16p11.2 heterozygous progenitors exhibit strong enrichment for cell cycle-related genes, and many are regulated by transcription factors themselves associated with autism and/or obesity, suggesting the hypothesis that enhanced transcriptional variation contributes to 16p11.2 microdeletion phenotypes.
RARS2 deficiency disrupts mitochondrial integrity and reprograms neural lineage development through coordinated suppression of neurogenic transcriptional networks and activation of glial/ECM programmes.
Xing Wei, Jing Wang, Yanyun Wang et al.· Journal of Medical Genetics· 0 citations
Findings indicate that NRXN1α deletion disrupts neural lineage commitment through a multi-layered disruption involving spliceosome dysregulation of chromatin regulatory genes, H3K27me3 redistribution at developmental promoters, and chromatin-level priming into non-neural fates.
A. Ghahramani, Dania Winn, S. Shafiq et al.· bioRxiv· 0 citations
NRXN1 haploinsufficiency is associated with coordinated downregulation of RNA-processing genes in cortical organoids, and the convergence on mRNA nuclear export and RNA-processing genes should be interpreted cautiously and verified by direct experimental perturbation.
Xi Lai, Jing Wen· Progress in Neuro-psychophar...· 0 citations
These findings demonstrate that the Nav1.2-L1342P mutation drives a multifaceted disease phenotype, including network hyperexcitability and disruption of pathways related to neuronal and synaptic functions, which advances understanding of SCN2A-related developmental and epileptic encephalopathy (DEE).
M. I. Olivero-Acosta, Morgan Robinson, Zhefu Que et al.· Epilepsia· 0 citations
Sbno1 (Strawberry notch homolog 1) encodes a nuclear protein expressed in neuronal populations and has been implicated in neurodevelopmental processes. However, bulk transcriptomic datasets from embryonic neural stem cells lacking Sbno1 are limited due to early embryonic lethality in conventional knockout models. To enable stage-specific transcriptomic characterization of Sbno1-deficient neural progenitors, we generated a dorsal telencephalon-specific Sbno1 and Trp53 double conditional knockout (dcKO) mouse model using the Emx1-Cre driver. Bulk RNA sequencing was performed on dorsal telencephalon at embryonic day 12.5 (E12.5) and cerebral cortex at E18.5 from dcKO and littermate control mice. The dataset includes seven biological replicates across two developmental stages and was generated using paired-end 150 bp sequencing on the Illumina NovaSeq X Plus platform. We provide raw sequencing reads, gene-level count matrices, normalized expression values, and associated metadata. Quality control metrics, alignment statistics, sample-level principal component analysis, and replicate concordance analyses are reported to document data quality and reproducibility. This dataset provides a resource for investigating transcriptional dynamics downstream of Sbno1 and Trp53 in embryonic cortical development, and for applying diverse computational and integrative analytical approaches.
Dai Ihara, Kohki Nukada, Takeru Maekawa et al.· Scientific Data· 0 citations