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Capobianco, C. A.

Publications and source records attributed to Capobianco, C. A..

2 recordsLinked to original sources

Spatial transcriptomic profiling of decalcified murine musculoskeletal samples via Xenium Prime 5K

Successful generation of high-quality spatial transcriptomics data from murine musculoskeletal tissues has been impeded by the challenge of preserving RNA integrity through the harsh tissue processing steps required for histological sectioning. In particular, the need to thoroughly fix and decalcify mineralized tissues has proven problematic. We detail a comprehensive sample processing pipeline for three common murine musculoskeletal tissue samples, enabling high-quality transcript detection via imaging-based spatial transcriptomics using the Xenium Prime 5K platform from 10x Genomics. Our protocol outlines methodological details for transcardiac perfusion, fixation, decalcification, paraffin processing, and a sample co-embedding strategy facilitating anatomically consistent and simultaneous sectioning of multiple samples onto the spatial transcriptomics slide. Rigorous quality control demonstrates high-quality tissue-specific outcomes across intact knee joints, tibiae, and lumbar spines from adult mice. Our pipeline enabled 70-91% high-quality transcripts across synovium, meniscus, patellar tendon, articular cartilage, subchondral bone, cortical bone, bone marrow, muscle, fracture callus, and dorsal root ganglion tissues. The average number of detected transcripts varied markedly between tissue types - soft tissues such as synovium, patellar tendon, muscle, bone marrow, and callus exhibited ~200 - 400 transcript per cell; mineralized tissues such as subchondral bone, meniscus, and cortical bone exhibited ~ 13 - 150 transcripts per cell; highly active neuronal tissues such as dorsal root ganglion neurons yielded 750 - 1100 transcripts per cell. Canonical cell markers within each tissue confirmed successful identification and representation of key cell types. Through rigorous sample quality assessment at multiple stages of processing, this protocol yields high-quality RNA transcript detection while preserving critical anatomical context and will serve as a valuable tool enabling spatial transcriptomic profiling of intact musculoskeletal tissue samples. Lay summarySpatial transcriptomics is a powerful scientific tool that characterizes genetic coding material ("transcripts") of specific cell types in their native anatomical context. However, successfully applying this tool to musculoskeletal tissues has been challenging because preserving transcript integrity in these tissues requires additional care. The authors of this publication developed a specialized method for preparing tissue samples from mice that works with the spatial transcriptomics platform, 10x Genomics Xenium Prime 5K. This protocol improves sample quality while preserving high-quality genetic information in various mouse musculoskeletal tissues, making it easier to explore their functions. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=168 SRC="FIGDIR/small/693132v1_ufig1.gif" ALT="Figure 1"> View larger version (87K): org.highwire.dtl.DTLVardef@4c4389org.highwire.dtl.DTLVardef@e607bcorg.highwire.dtl.DTLVardef@5f957org.highwire.dtl.DTLVardef@34ce27_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioinformatics↗

CD47 is Required for Mesenchymal Progenitor Proliferation and Fracture Repair

CD47 is a ubiquitous and pleiotropic cell-surface receptor. Disrupting CD47 enhances injury repair in various tissues but the role of CD47 has not been studied in bone injuries. In a murine closed-fracture model, CD47-null mice showed decreased callus bone volume, bone mineral content, and tissue mineral content as assessed by microcomputed tomography 10 days post-fracture, and increased fibrous volume as determined by histology. To understand the cellular basis for this phenotype, mesenchymal progenitors (MSC) were harvested from bone marrow. CD47-null MSC showed decreased large fibroblast colony formation (CFU-F), significantly less proliferation, and fewer cells in S-phase, although osteoblast differentiation was unaffected. However, consistent with prior research, CD47-null endothelial cells showed increased proliferation relative to WT cells. Similarly, in a murine ischemic fracture model, CD47-null mice showed reduced fracture callus bone volume and bone mineral content relative to WT. Consistent with our in vitro results, in vivo EdU labeling showed decreased cell proliferation in the callus of CD47-null mice, while staining for CD31 and endomucin demonstrated increased endothelial cell mass. Finally, WT mice administered a CD47 morpholino, which blocks CD47 protein production, showed a callus phenotype similar to that of non-ischemic and ischemic fractures in CD47-null mice, suggesting the phenotype was not due to developmental changes in the knockout mice. Thus, inhibition of CD47 during bone healing reduces both non-ischemic and ischemic fracture healing, in part, by decreasing MSC proliferation. Furthermore, the increase in endothelial cell proliferation and early blood vessel density caused by CD47 disruption is not sufficient to overcome MSC dysfunction.

molecular biology↗