ReviewFrontiers in neural circuits2023
Recent advances in understanding neuronal diversity and neural circuit complexity across different brain regions using single-cell sequencing.
Review in Frontiers in neural circuits, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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8 citing papers in PubMed, 12 citations in OpenAlex.
- Aspiration Patch Proteomics Enables CE-ESI-MS Proteotyping of Identified Single Neurons in Intact Brain Tissue.Analytical chemistry · 2026Article
- Neural Metabolic Networks: Key Elements of Healthy Brain Function.Journal of neurochemistry · 2025Review
- Conserved transcription factors coordinate synaptic gene expression through repression.bioRxiv : the preprint server for biology · 2025Article
- Advancements in single-cell RNA sequencing and spatial transcriptomics: transforming biomedical research.Acta biochimica Polonica · 2025Review
- Integrating Mitochondrial Biology into Innovative Cell Therapies for Neurodegenerative Diseases.Brain sciences · 2024Review
- Proteomic features of gray matter layers and superficial white matter of the rhesus monkey neocortex: comparison of prefrontal area 46 and occipital area 17.Brain structure & function · 2024Article
- Shaping the olfactory map: cell type-specific activity patterns guide circuit formation.Frontiers in neural circuits · 2024Review
- Asteroid impact: the potential of astrocytes to modulate human neural networks within organoids.Frontiers in neuroscience · 2023Review
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Authors and funding
3 authors at 1 institution in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Neural circuits are characterized as interconnecting neuron networks connected by synapses. Some kinds of gene expression and/or functional changes of neurons and synaptic connections may result in aberrant neural circuits, which has been recognized as one crucial pathological mechanism for the onset of many neurological diseases. Gradual advances in single-cell sequencing approaches with strong technological advantages, as exemplified by high throughput and increased resolution for live cells, have enabled it to assist us in understanding neuronal diversity across diverse brain regions and further transformed our knowledge of cellular building blocks of neural circuits through revealing numerous molecular signatures. Currently published transcriptomic studies have elucidated various neuronal subpopulations as well as their distribution across prefrontal cortex, hippocampus, hypothalamus, and dorsal root ganglion, etc. Better characterization of brain region-specific circuits may shed light on new pathological mechanisms involved and assist in selecting potential targets for the prevention and treatment of specific neurological disorders based on their established roles. Given diverse neuronal populations across different brain regions, we aim to give a brief sketch of current progress in understanding neuronal diversity and neural circuit complexity according to their locations. With the special focus on the application of single-cell sequencing, we thereby summarize relevant region-specific findings. Considering the importance of spatial context and connectivity in neural circuits, we also discuss a few published results obtained by spatial transcriptomics. Taken together, these single-cell sequencing data may lay a mechanistic basis for functional identification of brain circuit components, which links their molecular signatures to anatomical regions, connectivity, morphology, and physiology. Furthermore, the comprehensive characterization of neuron subtypes, their distributions, and connectivity patterns
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