Overall, this work identifies a conserved transcriptional axis that links cortical architecture to developmental timing and organizes the heterogeneous cortical effects of autism-associated mutations.
Abstract
Much of our mechanistic understanding of cortical development and neurodevelopmental disorders comes from studies in mice, yet translating these insights to humans rests on a fundamental assumption: that the cortex is organized according to conserved principles across species. Here, by independently decomposing human and mouse cortical transcriptomes, we test this assumption and identify a shared organizational axis extending from limbic anterior–ventral (AV) to primary sensory posterior–dorsal (PD) cortex. This axis aligns with conserved variation in cell-type composition, thalamocortical connectivity, myelination and excitation–inhibition balance. Its spatial topology emerges by mid-gestation and is progressively refined while remaining stable in orientation across subsequent development. What varies systematically along the axis is developmental timing: AV-enriched genes preferentially retained earlier cortical-construction features and progressively decline after birth, whereas PD-enriched genes preferentially reflected later maturation processes and progressively increased, with developmental rates graded along the axis. Across genetically distinct autism mouse models, developmental dysregulation converged on this axis, following a shared pattern that generally intensified toward the PD pole. The same axis also organized genotype-specific patterns of cortical volume alteration, while human autism risk genes showed corresponding enrichment along this transcriptional coordinate. Overall, we identify a conserved transcriptional axis that links cortical architecture to developmental timing and organizes the heterogeneous cortical effects of autism-associated mutations.
Background/Objectives: Sleep and circadian disturbances are common in neurodevelopmental conditions, yet the developmental cortical programs linking clock-related transcriptional regulators to disease vulnerability remain unclear. Methods: Here, we integrated human developmental brain transcriptomes, weighted gene co-e...
How aging is coordinated across the anatomically distinct tissues that collectively constitute the human motor system remains unclear. Here, we integrated data from the Genotype-Tissue Expression (GTEx) project and Gene Expression Omnibus (GEO), comprising 7,145 samples from 15 human tissues spanning three functional l...
Autism spectrum disorder (ASD) is a neurodevelopmental condition characterized by impaired social communication, restricted interests, and repetitive behaviors. Although traditionally considered a disorder of early brain development, growing evidence indicates that many ASD-associated genes continue to regulate neurona...
A. Palacios-Muñoz· International Journal of Mol...· 0 citations
The human brain undergoes profound changes from early development through late adulthood, shaping cognition, behaviour and vulnerability to disease1,2. Understanding how these changes are organized within specific brain regions and cell types is essential for interpreting normal ageing and its relationship to psychiatr...
Hui Yang, Tereza Clarence, Madeline R. Scott et al.· Nature· 3 citations
The hippocampus (HPC) and medial entorhinal cortex (MEC) are essential for learning, memory, and spatial cognition, and both exhibit dorsoventral (longitudinal) organization across mammalian species. While prior studies have highlighted functional differences along this axis, the molecular basis and cross-species conse...
Sihui Cheng, Qi-Run Wang, Ye Feng et al.· bioRxiv· 0 citations
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