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Here we present an overview of the experimental setup for using this combined approach which includes (i) high-dimensional CyTOF analysis of an acute injury time course by notexin injection to study the cellular and molecular dynamics of stem and progenitor cells in skeletal muscle (Figure 1, top scheme); and (ii) FACS of stem and progenitor cells using two cell surface markers, CD9 and CD104, to isolate these populations and perform in-depth studies of their function (Figure 1, bottom scheme). 8-10-week-old female C57BL/6 mice were used in the experiments described below.
CyTOF analysis of skeletal muscle for identifying stem and progenitor cells and studying their cellular and molecular dynamics during the course of acute injury
We have reanalyzed publicly available, previously published CyTOF datasets from an acute injury time course by notexin injection, where skeletal muscle samples were stained with a panel of 21 metal-conjugated CyTOF-compatible antibodies19 (Figure 2 and Figure 3). Here we present the hierarchical gating strategy for the identification of stem and progenitor cells in vivo in skeletal muscle (Figure 2A). This approach identifies a sequence of 4 populations, stem cells (SC), and progenitor populations 1-3 (P1, P2, P3). The progenitor populations P1 and P2 correspond to increasingly more mature progenitor cells. P3 was previously identified but not characterized due to its low abundance.
We first identify cells by gating on Ir191/Ir193 double positive events, which enables us to discriminate single-nucleated cells from debris or doublets due to the nucleic acid intercalating properties of this reagent47. We then identify live cells by gating on cisplatin negative events, given that cisplatin is a chemical that binds covalently to cellular proteins and labels cells with compromised cell membranes (dying and dead cells) to a greater extent than live cells43. We further enrich for myogenic cells by excluding immune cells (CD45+, CD11b+), endothelial cells (CD31+), and mesenchymal cells (Sca1+), and gating on α7 integrin+/CD9+ myogenic cells16,19. Stem and progenitor cells are then identified by visualizing the expression of CD9 and CD104 within the α7 integrin+/CD9+ myogenic cell gate using a CD9 (y-axis) by CD104 (x-axis) biaxial dot plot. Stem cells (SC) express intermediate levels of CD9 and lack expression of CD104 (lower left quadrant); P1 progenitor cells express high levels of CD9 and lack expression of CD104 (upper left quadrant); P2 progenitor cells express high levels of both CD9 and CD104 (upper right quadrant), P3 progenitor cells express intermediate levels of CD9 and intermediate to high levels of CD104 (lower right quadrant) (Figure 2A). The CyTOF panel used in the experiment presented here included antibodies to cell surface markers, intracellular myogenic transcription factors and signaling molecules (Figure 2B).
To visualize the expression of the myogenic transcription factors within the different stem and progenitor cell populations, we show a representative CD9 by CD104 biaxial dot plot from an uninjured muscle sample, colored in third dimension by expression of Pax7, Myf5, MyoD, and MyoG, as well as CD9 and CD104 to highlight their differential expression within the different populations (Figure 2C).
To visualize the cellular, molecular and proliferation dynamics of stem and progenitor cell populations during the time course of acute injury, we show representative CD9 by CD104 biaxial dot plots at different injury time points (Day 0, Day 3, Day 6), colored in third dimension by incorporation of IdU (left), which enable the identification of cells in S phase, or expression of MyoD (right), a transcription factor that is upregulated in activated stem cells that have entered the cell cycle (Figure 3A). As previously described, the stem cell population (SC) proportionally increases at day 3 post-injury (red arrow), suggesting expansion, which is corroborated by a large increase in IdU incorporation, indicating cell proliferation (Figure 3A, left). This increase in IdU incorporation is accompanied by increased MyoD expression (Figure 3A, right).
Given the well-established molecular definition of activated muscle stem cells (MuSCs; highly proliferative and MyoDhigh), high dimensional CyTOF analysis of muscle cells investigating the expression of known and novel cell surface markers, myogenic transcription factors, and markers of S phase, enabled the identification of an activated stem cell signature based solely on cell surface markers19,48,49,50. Such signature, which is based on the co-expression of cell surface markers CD98 and CD44, now enables the identification and prospective isolation of this transient MuSC subset at day 3 post-injury, opening the door to studies of stem cell self-renewal that were previously unfeasible19. To visualize the subset of activated stem cells, we show representative CD98 (y-axis) by CD44 (x-axis) biaxial dot plots of the SC population at different injury time points (Day 0, Day 3, Day 6), colored in the third dimension by IdU incorporation (left) or expression of MyoD (right). Activated stem cells, defined by co-expression of high levels of cell surface markers CD98 and CD44, as well as high MyoD expression and high IdU incorporation, are indicated by a red arrow (Figure 3B). These data highlight the high proliferative state and the activated phenotype of MuSCs at day 3 post-injury.
Purification of stem and progenitor cells by FACS
The gating strategy used to isolate muscle stem and progenitor cell populations by FACS is shown in Figure 4. The main gate is used to exclude debris. The singlets gate enables the exclusion of doublets51. The live cells gate excludes dying and dead cells that stain with DAPI, and the lineage-negative gate excludes immune cells (CD45+/CD11b+), endothelial cells (CD31+), and mesenchymal cells (Sca1+), which are stained with individual antibodies labeled with the same fluorophore APC-Cy7. Cells within the myogenic compartment are gated based on expression of α7 integrin and intermediate to high expression levels of CD9. Muscle stem and progenitor cell populations are identified based on differential expression of CD9 and CD104 (Figure 4A), and their relative proportion is quantified (Figure 4B). Each gate is established using appropriate FMO controls, which take into account the background signal generated by the combination of the fluorophore-conjugated antibodies used in that control (Figure 4C). SC population is defined based on the expression of intermediate levels of CD9 and lack of CD104 expression (CD9int/CD104-). While P1 and P2 express high levels of CD9, CD104 is not expressed in P1 progenitor cells (CD9high/CD104-) but is highly expressed in P2 progenitor cells (CD9high/CD104high).

Figure 1: Combined approach to analyze and purify muscle stem and progenitor cells in the context of acute muscle injury. Protocol scheme. (Upper scheme) Investigation of stem and progenitor cell dynamics by high-dimensional CyTOF analysis of skeletal muscle in the context of acute injury. The injury time course experimental setup requires intramuscular (i.m.) injection of notexin in the Tibialis Anterior (TA) and Gastrocnemius (GA) muscle of mice 6 (Day -6) or 3 (Day -3) days prior to tissue harvest. IdU injection is performed intraperitoneally (i.p.) 8 h prior (-8 h) to tissue harvest to detect proliferating cells. The TA and GA muscles are dissected, and tissue is dissociated by a combination of mechanical dissociation and enzymatic digestion. Cells are then incubated with cisplatin to detect dying and dead cells, fixed with paraformaldehyde to preserve marker expression, stained with metal-conjugated antibodies, and permeabilized with methanol for intracellular staining. Cells are finally analyzed on the CyTOF instrument. After CyTOF analysis and event acquisition, data are normalized, concatenated, and stored using servers like Cytobank or Cell Engine42. Data can be analyzed using (i) traditional biaxial plots, and (ii) high-dimensional clustering algorithms, such as X-shift, a k-nearest neighbor-based algorithm47. Cell clusters can be visualized by single-cell force-directed layout visualization as previously described19. (Lower scheme) FACS of stem and progenitor cells. TA and GA muscles from uninjured mice (homeostasis) are dissected and dissociated as above. Cells are stained with antibodies to lineage markers (CD45, CD11b, CD31, and Sca1), cell surface markers used to define muscle stem cell and progenitor cell populations (α7 integrin, CD9, and CD104), and DAPI to determine viability. Cells are analyzed on the FACS instrument to establish the sorting strategy and sorted into distinct muscle stem and progenitor cell populations based on differential expression of cell surface markers CD9 and CD104. Please click here to view a larger version of this figure.

Figure 2: Identifying stem and progenitor cells using single-cell mass cytometry (CyTOF). (A) CyTOF gating strategy to identify muscle stem and progenitor cells. Cells are distinguished from debris and doublets by staining with a cationic nucleic acid intercalator (Cell-ID Intercalator-Ir) and gating on Ir191/Ir193 double positive events. Live cells are then identified based on lack of cisplatin staining, which labels cells with compromised cell membranes (dying and dead cells) to a greater extent than live cells. Immune cells (CD45+ and CD11b+), endothelial cells (CD31+), and mesenchymal cells (Sca1+) are excluded based on expression of the respective markers. The myogenic compartment is identified by co-expression of α7 integrin and CD9. Stem and progenitor cells are distinguished by differential expression of CD9 and CD104 in a CD9 (y-axis) by CD104 (x-axis) biaxial dot plot of α7 integrin+/CD9+ cells. (B) Summary of CyTOF marker panel displaying antibodies to cell surface markers, intracellular transcription factors, phosphorylated signaling molecules, and reagents for DNA staining (Cell-ID Intercalator-Ir), viability staining (cisplatin), and cell proliferation (IdU). (C) Representative CD9 (y-axis) by CD104 (x-axis) biaxial dot plots of the myogenic compartment (α7 integrin+/CD9+ cells) from uninjured mice colored by expression of the transcription factors Pax7, Myf5, MyoD, and MyoG and the cell surface markers CD9 and CD104. Expression of the individual markers in the stem and progenitor populations reveals a myogenic progression. Please click here to view a larger version of this figure.

Figure 3: Resolving the cellular and molecular dynamics of muscle stem and progenitor cells during an acute injury time course. (A) Representative CD9 (y-axis) by CD104 (x-axis) biaxial dot plots of the myogenic compartment (α7 integrin+/CD9+ cells) during the injury time course (Day 0, Day 3, Day 6), colored by IdU incorporation (left panels) and MyoD expression (right panels). Expression of the individual markers in the stem and progenitor populations reveals a myogenic progression. The red arrow indicates the expansion of the stem cell (SC) population at day 3 post-injury. (B) (Left) The muscle stem cell (SC) population is highlighted in red in a scheme depicting a CD9 (y-axis) by CD104 (x-axis) biaxial plot. (Right) Representative CD98 (y-axis) by CD44 (x-axis) biaxial dot plots of the stem cell (SC) population during the injury time course (Day 0, Day 3, Day 6), colored by IdU incorporation (left panels) and MyoD expression (right panels). Co-expression of cell surface markers CD98 and CD44 identifies a subset of activated stem cells at day 3 post-injury (red arrow), which is marked by high IdU incorporation (left panels) and increased MyoD expression (right panels). Please click here to view a larger version of this figure.

Figure 4: Sorting stem and progenitor cells for downstream assays using a unique strategy defined by cell surface markers CD9 and CD104. (A) Hierarchical gating strategy used to identify stem and progenitor cells during a sort. The main gate, based on FSC and SSC, excludes debris. The singlets gate based on FSC-Area and FSC-Height is used to exclude doublets. The lineage gate is used to exclude immune cells (CD45+ and CD11b+), endothelial cells (CD31+), and mesenchymal cells (Sca1+), stained with antibodies conjugated to the same fluorophore, APC-Cy7. The α7 integrin+/CD9+ gate is used to define cells within the myogenic compartment. Stem and progenitor cells within the myogenic compartment are distinguished based on differential expression of cell surface markers CD9 and CD104. (B) Quantification of stem and progenitor cells as a fraction of α7 integrin+/CD9+ cells. (C) Fluorescence minus one (FMO) controls are used to establish positive gates for the different populations in the hierarchical gating strategy (A). Please click here to view a larger version of this figure.
Table 1: Table of buffer recipes. Buffer type, content, and description of the preparation. Please click here to download this Table.
Table 2: Antibodies and reagents used for CyTOF analysis. See also Figure 2B. Most antibodies used for CyTOF were conjugated in-house with the indicated metals. Please click here to download this Table.
Table 3: Antibodies used for FACS of stem and progenitor cells. Please click here to download this Table.
Table 4: Staining scheme used for FACS. Samples are categorized into unstained, single-stained color controls (single), FMO controls (FMO), and all-stained samples. The antibody concentration used in the current experiment is given. It is important to note that the addition of DAPI is performed during the final cell resuspension. Please click here to download this Table.