Search bioRxiv⌕ Search

Biology subjects

Folorunso, O. O.

Publications and source records attributed to Folorunso, O. O..

3 recordsLinked to original sources

Acute Ethanol Exposure Induces Stage-Specific Bioenergetic, Mitochondrial and Neurodevelopmental Transcriptional Remodeling in Human Forebrain Progenitors

Prenatal alcohol exposure (PAE) is associated with long-term neurodevelopmental risk, yet how neuronal progenitor metabolism responds to alcohol across developmental stages remains unclear. Here, we integrated brain-isoform-focused analysis of public datasets with targeted transcriptional, translational, and functional mitochondrial assessments in human iPSC-derived cortical progenitor models representing distinct bioenergetic states. Re-analysis of prior PAE studies revealed broad metabolic gene downregulation in embryonic systems, whereas neurodevelopmental models showed limited and non-coherent transcriptional signatures. In vitro, acute ethanol exposure (AEE) induced stage-dependent transcriptional remodeling in iPSC-derived neuronal progenitor cells. Early progenitors exhibited selective upregulation of mitochondrial-associated transcripts alongside increased neuronal lineage markers. In contrast, late progenitors showed broader increases in glycolytic, lipid, and mitochondrial gene expression. Despite these transcriptional changes, mitochondrial ATP production and mitochondrial protein abundance remained unchanged in both models with altered dynamics being restricted to late progenitors. These findings indicate that ethanol exposure is associated with developmental stage-dependent neuronal remodeling of bioenergetic genes. Measurements of mitochondrial-neural frameworks after AEE showed no major alterations in either model. Overall, our results reveal a dissociation between transcriptional, translational, and functional bioenergetic outputs in models of early human neurodevelopment and highlight that transcriptional alterations of mitochondria and cellular bioenergetics under AEE should be interpreted in the context of developmental stage rather than in isolation as evidence of energetic dysfunction.

neuroscience↗

Developmental Bioenergetic Reprogramming and Glycolytic Shift in Schizophrenia Vulnerability

Schizophrenia (SZ) arises from complex gene-environment interactions, yet how early insults shape later circuit vulnerability remains unclear. Here, we investigated whether bioenergetic states represent a convergent disease signature across genetic and environmental risk factors. We analyzed transcriptional profiles across neocortical development in murine models of maternal immune activation (polyIC MIA), and serine racemase deletion (Srr-/-), extending these analyses to juvenile stages in Srr-/- and interneuron-specific NMDA receptor deletion (Nkx2.1:Grin1fl/fl), highlighting cell-type-specific metabolic vulnerability across developmental stages. In MIA, early gestation (E12.5) revealed a transient bioenergetic shift likely driven by microglial and radial glial populations, suggesting metabolic priming rather than canonical inflammatory signaling. By late gestation (E17.5), MIA induced coordinated dysregulation of neuronal glycolytic isoforms alongside mitochondrial and lipid-associated metabolic pathways, suggesting coordinated metabolic remodeling involving lipid-linked processes. In contrast, Srr-/- mice showed minimal glycolytic alterations at E17.5, indicating that isolated genetic perturbation is insufficient to recapitulate this fetal metabolic state. However, at juvenile stages, region-specific bioenergetic adaptations emerged. Srr-/- mice exhibited global cortical increases in glycolytic gene expression, with hippocampal changes potentially enriched in neuronal populations. Conversely, Nkx2.1:Grin1fl/flinterneurons showed increased glycolytic and TCA cycle transcription in the hippocampus but opposing patterns in the medial prefrontal cortex. Together, these findings identify increased glycolytic activity, potentially linked to lactate metabolism, as a partially convergent developmental mechanism bridging prenatal perturbations and later circuit dysfunction in SZ, and suggest that downstream glycolysis-linked pathways may contribute to phenotypic heterogeneity. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=174 SRC="FIGDIR/small/723970v1_ufig1.gif" ALT="Figure 1"> View larger version (37K): org.highwire.dtl.DTLVardef@1dd1461org.highwire.dtl.DTLVardef@1651b65org.highwire.dtl.DTLVardef@e98bc8org.highwire.dtl.DTLVardef@d813a2_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Cognitive dysfunction following brain trauma results from sex-specific reactivation of the developmental pruning processes

Cognitive losses resulting from severe brain trauma have long been associated with the focal region of tissue damage, leading to devastating functional impairment. For decades, researchers have focused on the sequelae of cellular alterations that exist within the perilesional tissues; however, few clinical trials have been successful. Here, we employed a mouse brain injury model that resulted in expansive synaptic damage to regions outside the focal injury. Our findings demonstrate that synaptic damage results from the prolonged increase in D-serine release from activated microglia and astrocytes, which leads to hyperactivation of perisynaptic NMDARs, tagging of damaged synapses by complement components, and the reactivation of developmental pruning processes. We show that this mechanistic pathway is reversible at several stages within a prolonged and progressive period of synaptic loss. Importantly, these key factors are present in acutely injured brain tissue acquired from patients with brain injury, which supports a therapeutic neuroprotective strategy.

neuroscience↗