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High-Throughput Mapping of Long-Range Neuronal Projection Using In Situ Sequencing.

Publication ,  Journal Article
Chen, X; Sun, Y-C; Zhan, H; Kebschull, JM; Fischer, S; Matho, K; Huang, ZJ; Gillis, J; Zador, AM
Published in: Cell
October 17, 2019

Understanding neural circuits requires deciphering interactions among myriad cell types defined by spatial organization, connectivity, gene expression, and other properties. Resolving these cell types requires both single-neuron resolution and high throughput, a challenging combination with conventional methods. Here, we introduce barcoded anatomy resolved by sequencing (BARseq), a multiplexed method based on RNA barcoding for mapping projections of thousands of spatially resolved neurons in a single brain and relating those projections to other properties such as gene or Cre expression. Mapping the projections to 11 areas of 3,579 neurons in mouse auditory cortex using BARseq confirmed the laminar organization of the three top classes (intratelencephalic [IT], pyramidal tract-like [PT-like], and corticothalamic [CT]) of projection neurons. In depth analysis uncovered a projection type restricted almost exclusively to transcriptionally defined subtypes of IT neurons. By bridging anatomical and transcriptomic approaches at cellular resolution with high throughput, BARseq can potentially uncover the organizing principles underlying the structure and formation of neural circuits.

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Published In

Cell

DOI

EISSN

1097-4172

Publication Date

October 17, 2019

Volume

179

Issue

3

Start / End Page

772 / 786.e19

Location

United States

Related Subject Headings

  • Single-Cell Analysis
  • Sequence Analysis, RNA
  • Pyramidal Tracts
  • Pyramidal Cells
  • Neurites
  • Nerve Net
  • Mice
  • Integrases
  • Humans
  • Developmental Biology
 

Citation

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Chen, X., Sun, Y.-C., Zhan, H., Kebschull, J. M., Fischer, S., Matho, K., … Zador, A. M. (2019). High-Throughput Mapping of Long-Range Neuronal Projection Using In Situ Sequencing. Cell, 179(3), 772-786.e19. https://doi.org/10.1016/j.cell.2019.09.023
Chen, Xiaoyin, Yu-Chi Sun, Huiqing Zhan, Justus M. Kebschull, Stephan Fischer, Katherine Matho, Z Josh Huang, Jesse Gillis, and Anthony M. Zador. “High-Throughput Mapping of Long-Range Neuronal Projection Using In Situ Sequencing.Cell 179, no. 3 (October 17, 2019): 772-786.e19. https://doi.org/10.1016/j.cell.2019.09.023.
Chen X, Sun Y-C, Zhan H, Kebschull JM, Fischer S, Matho K, et al. High-Throughput Mapping of Long-Range Neuronal Projection Using In Situ Sequencing. Cell. 2019 Oct 17;179(3):772-786.e19.
Chen, Xiaoyin, et al. “High-Throughput Mapping of Long-Range Neuronal Projection Using In Situ Sequencing.Cell, vol. 179, no. 3, Oct. 2019, pp. 772-786.e19. Pubmed, doi:10.1016/j.cell.2019.09.023.
Chen X, Sun Y-C, Zhan H, Kebschull JM, Fischer S, Matho K, Huang ZJ, Gillis J, Zador AM. High-Throughput Mapping of Long-Range Neuronal Projection Using In Situ Sequencing. Cell. 2019 Oct 17;179(3):772-786.e19.
Journal cover image

Published In

Cell

DOI

EISSN

1097-4172

Publication Date

October 17, 2019

Volume

179

Issue

3

Start / End Page

772 / 786.e19

Location

United States

Related Subject Headings

  • Single-Cell Analysis
  • Sequence Analysis, RNA
  • Pyramidal Tracts
  • Pyramidal Cells
  • Neurites
  • Nerve Net
  • Mice
  • Integrases
  • Humans
  • Developmental Biology