Complete single neuron reconstruction reveals morphological diversity in molecularly defined claustral and cortical neuron types
Wang, Y.; Xie, P.; Gong, H.; Zhou, Z.; Kuang, X.; Wang, Y.; Li, A.-a.; Li, Y.; Liu, L.; Veldman, M. B.; Daigle, T. L.; Hirokawa, K. E.; Qu, L.; Lesnar, P.; Jiang, S.; Yu, Y.; Wakeman, W.; Zeng, S.; Li, X.; Yuan, J.; Nguyen, T. N.; Larsen, R.; Kedebe, S.; Song, Y.; Yin, L.; Zhao, S.; Feiner, A.; Shen, E.; Hill, C.; Wang, Q.; Mok, S.; Sunkin, S. M.; Huang, Z. J.; Esposito, L.; Yao, Z.; Hawrylycz, M. J.; Tasic, B.; Ng, L.; Sorensen, S. A.; Yang, X. W.; Harris, J. A.; Koch, C.; Luo, Q.; Peng, H.; Zeng, H.
Show abstract
Ever since the seminal findings of Ramon y Cajal, dendritic and axonal morphology has been recognized as a defining feature of neuronal types. Yet our knowledge concerning the diversity of neuronal morphologies, in particular distal axonal projection patterns, is extremely limited. To systematically obtain single neuron full morphology on a brain-wide scale, we established a platform with five major components: sparse labeling, whole-brain imaging, reconstruction, registration, and classification. We achieved sparse, robust and consistent fluorescent labeling of a wide range of neuronal types by combining transgenic or viral Cre delivery with novel transgenic reporter lines. We acquired high-resolution whole-brain fluorescent images from a large set of sparsely labeled brains using fluorescence micro-optical sectioning tomography (fMOST). We developed a set of software tools for efficient large-volume image data processing, registration to the Allen Mouse Brain Common Coordinate Framework (CCF), and computer-assisted morphological reconstruction. We reconstructed and analyzed the complete morphologies of 1,708 neurons from the striatum, thalamus, cortex and claustrum. Finally, we classified these cells into multiple morphological and projection types and identified a set of region-specific organizational rules of long-range axonal projections at the single cell level. Specifically, different neuron types from different regions follow highly distinct rules in convergent or divergent projection, feedforward or feedback axon termination patterns, and between-cell homogeneity or heterogeneity. Major molecularly defined classes or types of neurons have correspondingly distinct morphological and projection patterns, however, we also identify further remarkably extensive morphological and projection diversity at more fine-grained levels within the major types that cannot presently be accounted for by preexisting transcriptomic subtypes. These insights reinforce the importance of full morphological characterization of brain cell types and suggest a plethora of ways different cell types and individual neurons may contribute to the function of their respective circuits.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Cell class-specific long-range axonal projections of neurons in mouse whisker-related somatosensory cortices 98%
- Spatially patterned excitatory neuron subtypes and circuits within the claustrum 97%
- Whole-brain connectivity atlas of glutamatergic and GABAergic neurons in mouse dorsal and median raphe nucleus 97%
Similar papers in this journal
- Regional and cell type-specific afferent and efferent projections of the mouse claustrum 98%
- A Comprehensive Atlas of Perineuronal Net Distribution and Colocalization with Parvalbumin in the Adult Mouse Brain 97%
- Topographic connectivity and cellular profiling reveal detailed input pathways and functionally distinct cell types in the subthalamic nucleus 97%
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- High-throughput mapping of long-range neuronal projection using in situ sequencing 97%
- A taxonomy of transcriptomic cell types across the isocortex and hippocampal formation 96%
- Toward an integrated classification of neuronal cell types: morphoelectric and transcriptomic characterization of individual GABAergic cortical neurons 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.