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Massively Parallel Single Nucleus Transcriptional Profiling Defines Spinal Cord Neurons and Their Activity during Behavior

Updated January 6, 2023

To understand the cellular basis of behavior, it is necessary to know the cell types that exist in the nervous system and their contributions to function. Spinal networks are essential for sensory processing and motor behavior and provide a powerful system for identifying the cellular correlates of behavior. Here, we used massively parallel single nucleus RNA sequencing (snRNA-seq) to create an atlas of the adult mouse lumbar spinal cord. We identified and molecularly characterized 43 neuronal populations. Next, we leveraged the snRNA-seq approach to provide unbiased identification of neuronal populations that were active following a sensory and a motor behavior, using a transcriptional signature of neuronal activity. This approach can be used in the future to link single nucleus gene expression data with dynamic biological responses to behavior, injury, and disease.

Ariel J LevineNational Institute of Neurological Disorders and Strokeariel.levine@nih.gov
Anupama Sathyamurthy1
Kory R Johnson1
Kaya J E Matson1
Courtney I Dobrott1
Li Li1
Anna R Ryba1
Tzipporah B Bergman1
Michael C Kelly2
Matthew W Kelley2
Ariel J Levine1
1National Institute of Neurological Disorders and Stroke
2National Institute on Deafness and Other Communication Disorders
Ida Zucchi

To reference this project, please use the following link:

https://explore.data.humancellatlas.org/projects/cdc2d270-6c99-4142-8883-9bd95c041d05
None
INSDC Project Accessions:GEO Series Accessions:INSDC Study Accessions:

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Analysis Portals

None

Project Label

Sathyamurthy2018MouseSpinal

Species

Mus musculus

Sample Type

specimens

Anatomical Entity

spinal cord

Organ Part

Unspecified

Selected Cell Types

Unspecified

Disease Status (Specimen)

normal

Disease Status (Donor)

normal

Development Stage

adult

Library Construction Method

Drop-seq

Nucleic Acid Source

single nucleus

Paired End

false

Analysis Protocol

matrix_generation

File Format

3 file formats

Cell Count Estimate

17.4k

Donor Count

19
fastq.gz48 file(s)txt.gz2 file(s)xlsx1 file(s)