Open access · CC-BY
via OpenAlex
Large-scale integration of single-cell transcriptomic data captures transitional progenitor states in mouse skeletal muscle regeneration
David W. McKellar, Lauren D. Walter, Leo T. Song, Madhav Mantri, Michael F. Z. Wang, Iwijn De Vlaminck, Benjamin D. Cosgrove
Communications Biology · 2021 · ▲ 223 citations
Abstract
Skeletal muscle repair is driven by the coordinated self-renewal and fusion of myogenic stem and progenitor cells. Single-cell gene expression analyses of myogenesis have been hampered by the poor sampling of rare and transient cell states that are critical for muscle repair, and do not inform the spatial context that is important for myogenic differentiation. Here, we demonstrate how large-scale integration of single-cell and spatial transcriptomic data can overcome these limitations. We created a single-cell transcriptomic dataset of mouse skeletal muscle by integration, consensus annotation, and analysis of 23 newly collected scRNAseq datasets and 88 publicly available single-cell (scRNAseq) and single-nucleus (snRNAseq) RNA-sequencing datasets. The resulting dataset includes more than 365,000 cells and spans a wide range of ages, injury, and repair conditions. Together, these data enabled identification of the predominant cell types in skeletal muscle, and resolved cell subtypes, including endothelial subtypes distinguished by vessel-type of origin, fibro-adipogenic progenitors defined by functional roles, and many distinct immune populations. The representation of different experimental conditions and the depth of transcriptome coverage enabled robust profiling of sparsely expressed genes. We built a densely sampled transcriptomic model of myogenesis, from stem cell quiescence to myofiber maturation, and identified rare, transitional states of progenitor commitment and fusion that are poorly represented in individual datasets. We performed spatial RNA sequencing of mouse muscle at three time points after injury and used the integrated dataset as a reference to achieve a high-resolution, local deconvolution of cell subtypes. We also used the integrated dataset to explore ligand-receptor co-expression patterns and identify dynamic cell-cell interactions in muscle injury response. We provide a public web tool to enable interactive exploration and visualization of the data. Our work supports the utility of large-scale integration of single-cell transcriptomic data as a tool for biological discovery.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1038/s42003-021-02810-x
- Canonical
- link ↗
- Fetched
- 2026-07-25 MST
Cite this
APA
McKellar, D.W., Walter, L.D., Song, L.T., Mantri, M., Wang, M.F.Z., Vlaminck, I.D., & Cosgrove, B.D. (2021). Large-scale integration of single-cell transcriptomic data captures transitional progenitor states in mouse skeletal muscle regeneration. <em>Communications Biology</em>. https://doi.org/10.1038/s42003-021-02810-x
Vancouver
McKellar DW, Walter LD, Song LT, Mantri M, Wang MFZ, Vlaminck ID, et al. Large-scale integration of single-cell transcriptomic data captures transitional progenitor states in mouse skeletal muscle regeneration. Communications Biology. 2021. doi:10.1038/s42003-021-02810-x.
BibTeX
@article{david2021Larges,
title = {Large-scale integration of single-cell transcriptomic data captures transitional progenitor states in mouse skeletal muscle regeneration},
author = {David W. McKellar and Lauren D. Walter and Leo T. Song and Madhav Mantri and Michael F. Z. Wang and Iwijn De Vlaminck and Benjamin D. Cosgrove},
journal = {Communications Biology},
year = {2021},
doi = {10.1038/s42003-021-02810-x},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
Aging Cell 2024
Open access · CC-BY
Age‐related dysregulation of the retinal transcriptome in African turquoise killifish
Cell Death and Differentiation 2014
Open access · CC-BY
Regulation of hematopoietic and leukemic stem cells by the immune system
Nature 2022
Open access · CC-BY
Senescence atlas reveals an aged-like inflamed niche that blunts muscle regeneration
Cells 2023
Open access · CC-BY
A Review of Single-Cell RNA-Seq Annotation, Integration, and Cell–Cell Communication
Frontiers in Pharmacology 2021
Open access · CC-BY
Diverse Roles of Cellular Senescence in Skeletal Muscle Inflammation, Regeneration, and Therapeutics
Blood 2017
Open access · OA