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1.
JCI Insight ; 7(20)2022 10 24.
Article in English | MEDLINE | ID: mdl-36099022

ABSTRACT

Transforming growth factor-ß1 (TGF-ß1) plays a central role in normal and aberrant wound healing, but the precise mechanism in the local environment remains elusive. Here, using a mouse model of aberrant wound healing resulting in heterotopic ossification (HO) after traumatic injury, we find autocrine TGF-ß1 signaling in macrophages, and not mesenchymal stem/progenitor cells, is critical in HO formation. In-depth single-cell transcriptomic and epigenomic analyses in combination with immunostaining of cells from the injury site demonstrated increased TGF-ß1 signaling in early infiltrating macrophages, with open chromatin regions in TGF-ß1-stimulated genes at binding sites specific for transcription factors of activated TGF-ß1 (SMAD2/3). Genetic deletion of TGF-ß1 receptor type 1 (Tgfbr1; Alk5), in macrophages, resulted in increased HO, with a trend toward decreased tendinous HO. To bypass the effect seen by altering the receptor, we administered a systemic treatment with TGF-ß1/3 ligand trap TGF-ßRII-Fc, which resulted in decreased HO formation and a delay in macrophage infiltration to the injury site. Overall, our data support the role of the TGF-ß1/ALK5 signaling pathway in HO.


Subject(s)
Ossification, Heterotopic , Transforming Growth Factor beta1 , Humans , Chromatin/metabolism , Ligands , Macrophages/metabolism , Ossification, Heterotopic/metabolism , Receptor, Transforming Growth Factor-beta Type I/genetics , Transforming Growth Factor beta1/metabolism , Wound Healing , Transforming Growth Factor beta/metabolism
2.
Nat Commun ; 12(1): 4398, 2021 07 20.
Article in English | MEDLINE | ID: mdl-34285226

ABSTRACT

Studies in rodents and captive primates suggest that the early-life social environment affects future phenotype, potentially through alterations to DNA methylation. Little is known of these associations in wild animals. In a wild population of spotted hyenas, we test the hypothesis that maternal care during the first year of life and social connectedness during two periods of early development leads to differences in DNA methylation and fecal glucocorticoid metabolites (fGCMs) later in life. Here we report that although maternal care and social connectedness during the den-dependent life stage are not associated with fGCMs, greater social connectedness during the subadult den-independent life stage is associated with lower adult fGCMs. Additionally, more maternal care and social connectedness after den independence correspond with higher global (%CCGG) DNA methylation. We also note differential DNA methylation near 5 genes involved in inflammation, immune response, and aging that may link maternal care with stress phenotype.


Subject(s)
Epigenesis, Genetic/physiology , Hyaenidae/psychology , Maternal Behavior/physiology , Social Environment , Stress, Psychological/diagnosis , Aging/genetics , Aging/psychology , Animals , DNA Methylation/physiology , Feces/chemistry , Female , Glucocorticoids/analysis , Glucocorticoids/metabolism , Hyaenidae/genetics , Hyaenidae/growth & development , Male , Stress, Psychological/genetics , Stress, Psychological/metabolism , Stress, Psychological/psychology
3.
Stem Cells Dev ; 30(9): 473-484, 2021 05 01.
Article in English | MEDLINE | ID: mdl-33715398

ABSTRACT

Heterotopic ossification (HO) is a devastating condition in which ectopic bone forms inappropriately in soft tissues following traumatic injuries and orthopedic surgeries as a result of aberrant mesenchymal progenitor cell (MPC) differentiation. HO leads to chronic pain, decreased range of motion, and an overall decrease in quality of life. While several treatments have shown promise in animal models, all must be given during early stages of formation. Methods for early determination of whether and where endochondral ossification/soft tissue mineralization (HO anlagen) develop are lacking. At-risk patients are not identified sufficiently early in the process of MPC differentiation and soft tissue endochondral ossification for potential treatments to be effective. Hence, a critical need exists to develop technologies capable of detecting HO anlagen soon after trauma, when treatments are most effective. In this study, we investigate high frequency spectral ultrasound imaging (SUSI) as a noninvasive strategy to identify HO anlagen at early time points after injury. We show that by determining quantitative parameters based on tissue organization and structure, SUSI identifies HO anlagen as early as 1-week postinjury in a mouse model of burn/tenotomy and 3 days postinjury in a rat model of blast/amputation. We analyze single cell RNA sequencing profiles of the MPCs responsible for HO formation and show that the early tissue changes detected by SUSI match chondrogenic and osteogenic gene expression in this population. SUSI identifies sites of soft tissue endochondral ossification at early stages of HO formation so that effective intervention can be targeted when and where it is needed following trauma-induced injury. Furthermore, we characterize the chondrogenic to osteogenic transition that occurs in the MPCs during HO formation and correlate gene expression to SUSI detection of the HO anlagen.


Subject(s)
Disease Models, Animal , Ossification, Heterotopic/diagnostic imaging , Ossification, Heterotopic/genetics , Ultrasonography/methods , Animals , Burns/diagnostic imaging , Burns/genetics , Cell Differentiation/genetics , Chondrogenesis/genetics , Gene Expression Profiling/methods , Gene Ontology , Humans , Male , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/metabolism , Mice, Inbred C57BL , Osteogenesis/genetics , RNA-Seq/methods , Rats, Sprague-Dawley , Rodentia , Single-Cell Analysis/methods , Tenotomy , X-Ray Microtomography/methods
4.
J Clin Invest ; 130(10): 5444-5460, 2020 10 01.
Article in English | MEDLINE | ID: mdl-32673290

ABSTRACT

Cells sense the extracellular environment and mechanical stimuli and translate these signals into intracellular responses through mechanotransduction, which alters cell maintenance, proliferation, and differentiation. Here we use a mouse model of trauma-induced heterotopic ossification (HO) to examine how cell-extrinsic forces impact mesenchymal progenitor cell (MPC) fate. After injury, single-cell (sc) RNA sequencing of the injury site reveals an early increase in MPC genes associated with pathways of cell adhesion and ECM-receptor interactions, and MPC trajectories to cartilage and bone. Immunostaining uncovers active mechanotransduction after injury with increased focal adhesion kinase signaling and nuclear translocation of transcriptional coactivator TAZ, inhibition of which mitigates HO. Similarly, joint immobilization decreases mechanotransductive signaling, and completely inhibits HO. Joint immobilization decreases collagen alignment and increases adipogenesis. Further, scRNA sequencing of the HO site after injury with or without immobilization identifies gene signatures in mobile MPCs correlating with osteogenesis, and signatures from immobile MPCs with adipogenesis. scATAC-seq in these same MPCs confirm that in mobile MPCs, chromatin regions around osteogenic genes are open, whereas in immobile MPCs, regions around adipogenic genes are open. Together these data suggest that joint immobilization after injury results in decreased ECM alignment, altered MPC mechanotransduction, and changes in genomic architecture favoring adipogenesis over osteogenesis, resulting in decreased formation of HO.


Subject(s)
Extremities/injuries , Mesenchymal Stem Cells/pathology , Mesenchymal Stem Cells/physiology , Ossification, Heterotopic/etiology , Restraint, Physical , Acyltransferases , Adipogenesis/genetics , Animals , Cell Differentiation , Cell Lineage , Disease Models, Animal , Extracellular Matrix/metabolism , Focal Adhesion Kinase 1/deficiency , Focal Adhesion Kinase 1/genetics , Focal Adhesion Kinase 1/metabolism , Humans , Male , Mechanotransduction, Cellular/genetics , Mechanotransduction, Cellular/physiology , Mice , Mice, Inbred C57BL , Mice, Transgenic , Ossification, Heterotopic/pathology , Ossification, Heterotopic/physiopathology , Osteogenesis/genetics , Restraint, Physical/adverse effects , Restraint, Physical/physiology , Signal Transduction/genetics , Signal Transduction/physiology , Transcription Factors/genetics , Transcription Factors/metabolism
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