A consolidated cellular-resolution transcriptomic atlas of human brain development from the onset of neurogenesis to adulthood is presented, covering ∼2.2 million cells from 156 donors across nine studies, and dynamic gene programs predictive of cell-type maturation are identified.
Abstract
Human neurodevelopment is a continuous process that begins prenatally and extends into postnatal life. Current transcriptomic datasets are limited, fragmented across analytical frameworks, precluding comprehensive reconstruction of cellular trajectories linking developmental states to mature cell types. Here we present a consolidated cellular-resolution transcriptomic atlas of human brain development from the onset of neurogenesis to adulthood, covering ∼2.2 million cells from 156 donors across nine studies. All data were reprocessed from raw sequencing reads and annotated within a unified cell-type taxonomy, enabling reliable mapping across the lifespan. Cell types were highly replicable across heterogeneous datasets, enabling us to chart their maturation and cortical layer localization over time. We identify dynamic gene programs predictive of cell-type maturation, validate gene modules tracking known fate transitions, and leverage our atlas’ scale to characterize rare populations, including microglia. This resource establishes a standardized reference of human brain development and maturation gene modules for future comparisons across model systems, species, and disease states.
A comprehensive transcriptomic and chromatin accessibility atlas of 8 brain regions of 23 female cynomolgus macaques spanning the adult lifespan, including exceptionally old individuals establishes a foundational framework for understanding the cellular and regulatory architecture of primate brain aging and its links to disease.
A cross-species single-cell transcriptomic atlas of microglia from mouse and human brains, spanning multiple regions, sexes and ages is presented and a conserved ‘lipid-associated microglia’ (LAM) state is identified, supporting the existence of evolutionarily conserved microglial programs.
Marmar R. Moussa, Pearl Daugaard, A. Burghard· Journal of Immunology· 0 citations
The striatum is critical for decision-making, movement, and reward processing, functions achieved through subregional cellular and molecular specialization. Striatal cell types and subregions are differentially implicated in neurodegenerative and neuropsychiatric disorders, but the mechanisms underlying these vulnerabilities are poorly understood. Using single-nucleus RNA sequencing across 109 human and 22 mouse samples spanning dorsal and ventral striatum, we provide a comprehensive atlas of subregional neuronal specialization. We define rare neuronal subpopulations and transcriptional gradients along the dorsolateral-ventromedial axis with notable differences between species, suggesting divergent pharmacological targets, connectivity, and disease mechanisms. Integration with genome-wide association and pharmacological studies identifies human-enriched sites of opioid receptor expression and ventral-biased chronic antipsychotic action. Lastly, paired single-cell transcriptomic and somatic trinucleotide repeat expansion measurements identify differences in subregion and neuronal subtype vulnerability in Huntington's disease. Our findings lay the foundation for understanding how striatal cell types and subregions contribute to brain function and neurological disorders.
Raleigh M. Linville, Benjamin T. James, K. Galani et al.· Cell· 0 citations
Age is the primary risk factor for neurodegenerative diseases, which are characterized by cell-type-specific vulnerability 1. Yet brain-aging mechanisms remain unclear given the complex, interacting age-associated pathways across diverse neural cell types. Here, we dissect cell type- cell state-specific aging gene regulatory programs and their contribution to cellular vulnerability by leveraging epigenomics, AI methodology, and natural lifespan diversity across placental mammals. Applying the TACIT method, we associated lifespans of 240 placental mammals to the predicted open chromatin levels of over 3 million orthologous loci across 18 cortical cell types. We identified thousands of lifespan-associated open chromatin regions, enriched near genes associated with hallmarks of aging, which stratified greatly by cell type. For example, regions near mitochondrial genes showed differential selective pressure in long-lived species in energetically-demanding layer V ET neurons, while regions near inflammatory response genes were under selective pressure in glial populations. We next asked whether regions linked to vulnerable or resilient neurons in the human brain were under differential selective pressure in longer lived species. Using an adaptive representation learning approach, we decompose intrinsic aging programs from systemic effects in the prefrontal cortex and define an aging signature predictive of cell-type-specific vulnerability. In Alzheimer’s disease, this intrinsic aging signature more strongly predicts vulnerability than systemic effects. Active regions in vulnerable neurons showed lower predicted activity in species with longer lifespans, suggesting selective pressure to down-regulate the vulnerability-associated networks. Overall, our findings argue against a single master regulator of aging, instead implicating different hallmarks across different cell types.
Ghada Abdelhady, Qiao Su, Andrew Z. Wang et al.· bioRxiv· 0 citations
Language is a defining trait of our species, and disruptions in language acquisition can have profound consequences to the individuals affected. Uncovering the neurodevelopmental basis of this complex trait requires detailed molecular and cellular insights into the neocortical areas that support linguistic abilities. Here we performed joint gene expression and chromatin accessibility profiling at single-nucleus resolution (10x Genomics Single cell Multiome) and spatial transcriptomic profiling (Xenium high-plex in situ spatial transcriptomics) of Broca’s area alongside adjacent motor cortical areas. We profiled individuals from different ancestries (European and African) and developmental stages (infancy, childhood, adolescence, and adulthood). We provide a high-resolution dissection of the cellular and molecular architecture of Broca’s and motor cortical areas across early life stages and anchor the trajectories to the cellular states found in the adult human brain. We identify distinct area- and stage-specific cellular signatures, including a prominent role of glia populations and interneuron subtypes contributing to cytoarchitectonic specializations. Using longitudinal single cell spatial transcriptomic profiling, we orthogonally validate our consensus cell taxonomy and spatially resolve layer enrichment of neuronal and astrocyte subtypes that distinguish Broca’s area and motor cortex. We also uncover cell type-specific molecular signatures that distinguish cell developmental trajectories in these cortical areas, including an early molecular code established by differential expression of cadherin genes that might contribute to area-specific intercellular communication. We also identify cell type-specific vulnerabilities to language- related neurodevelopmental and neuropsychiatric disorders, with selective susceptibility of particular somatostatin-positive interneuron subtypes to ASD/ADHD. Finally, evolutionary analysis of differentially accessible regions between Broca’s area and motor cortex suggests that genetic mutations that might have contributed to the emergence of linguistic abilities accumulated over the course of million years following the divergence of human and chimpanzee lineages. Together, our study provides a comprehensive molecular, cellular and spatial definition of Broca’s area and motor cortex, laying the groundwork for investigations into unique aspects of human cognition and related neurodevelopmental and neuropsychiatric disorders.
Juan Moriano, Tanzila Mukhtar, J. Lee et al.· bioRxiv· 0 citations
A "retrodictive" analysis of the cortex is presented that reconstructs the proliferation history of neural stem cells from a static snapshot of tissue, providing a developmentally grounded coordinate system for comparison across samples and is expected to be a foundational framework for 3D neuropathological analysis.
Tatsuya C. Murakami, Nathaniel Heintz· bioRxiv· 0 citations
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