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Analyzing Satellite Cell Function During Skeletal Muscle Regeneration by Cardiotoxin Injury and Injection of Self-delivering siRNA In Vivo
Published on: September 18, 2019
Satellite cell-specific ablation of Cdon impairs integrin activation, FGF signalling, and muscle regeneration
Ju-Hyeon Bae1,2, Mingi Hong3, Hyeon-Ju Jeong1,2
1Department of Molecular Cell Biology, Sungkyunkwan University School of Medicine, Suwon, Republic of Korea.
Background:
Perturbation in cell adhesion and growth factor signalling in satellite cells results in decreased muscle regenerative capacity. Cdon (also called Cdo) is a component of cell adhesion complexes implicated in myogenic differentiation, but its role in muscle regeneration remains to be determined.
Methods:
We generated inducible satellite cell-specific Cdon ablation in mice by utilizing a conditional Cdon allele and Pax7 CreERT2 . To induce Cdon ablation, mice were intraperitoneally injected with tamoxifen (tmx). Using cardiotoxin-induced muscle injury, the effect of Cdon depletion on satellite cell function was examined by histochemistry, immunostaining, and 5-ethynyl-2'-deoxyuridine (EdU) incorporation assay. Isolated myofibers or myoblasts were utilized to determine stem cell function and senescence. To determine pathways related to Cdon deletion, injured muscles were subjected to RNA sequencing analysis.
Results:
Satellite cell-specific Cdon ablation causes impaired muscle regeneration with fibrosis, likely attributable to decreased proliferation, and senescence, of satellite cells. Cultured Cdon-depleted myofibers exhibited 32 ± 9.6% of EdU-positive satellite cells compared with 58 ± 4.4% satellite cells in control myofibers (P < 0.05). About 32.5 ± 3.7% Cdon-ablated myoblasts were positive for senescence-associated β-galactosidase (SA-β-gal) while only 3.6 ± 0.5% of control satellite cells were positive (P < 0.001). Transcriptome analysis of muscles at post-injury Day 4 revealed alterations in genes related to mitogen-activated protein kinase signalling (P < 8.29 e-5 ) and extracellular matrix (P < 2.65 e-24 ). Consistent with this, Cdon-depleted tibialis anterior muscles had reduced phosphorylated extracellular signal-regulated kinase (p-ERK) protein levels and expression of ERK targets, such as Fos (0.23-fold) and Egr1 (0.31-fold), relative to mock-treated control muscles (P < 0.001). Cdon-depleted myoblasts exhibited impaired ERK activation in response to basic fibroblast growth factor. Cdon ablation resulted in decreased and/or mislocalized integrin β1 activation in satellite cells (weak or mislocalized integrin1 in tmx = 38.7 ± 1.9%, mock = 21.5 ± 6%, P < 0.05), previously linked with reduced fibroblast growth factor (FGF) responsiveness in aged satellite cells. In mechanistic studies, Cdon interacted with and regulated cell surface localization of FGFR1 and FGFR4, likely contributing to FGF responsiveness of satellite cells. Satellite cells from a progeria model, Zmpste24-/- myofibers, showed decreased Cdon levels (Cdon-positive cells in Zmpste24-/- = 63.3 ± 11%, wild type = 90 ± 7.7%, P < 0.05) and integrin β1 activation (weak or mislocalized integrin β1 in Zmpste24-/- = 64 ± 6.9%, wild type = 17.4 ± 5.9%, P < 0.01).
Conclusions:
Cdon deficiency in satellite cells causes impaired proliferation of satellite cells and muscle regeneration via aberrant integrin and FGFR signalling.
Insights
Satellite cell Cdon deficiency impairs muscle regeneration by reducing satellite cell proliferation and increasing senescence. This occurs through disrupted integrin and fibroblast growth factor receptor signaling pathways.
Area of Science:
- Muscle stem cell biology
- Regenerative medicine
- Cell adhesion mechanisms
Background:
- Satellite cells are crucial for muscle regeneration, but their function is impaired by disruptions in cell adhesion and growth factor signaling.
- Cdon (cell adhesion molecule expressed in terminally differentiated cells), a component of cell adhesion complexes, is involved in muscle differentiation, but its specific role in muscle regeneration is unclear.
Purpose of the Study:
- To investigate the role of Cdon in satellite cell function and muscle regeneration.
- To elucidate the molecular mechanisms underlying Cdon's function in muscle repair.
Main Methods:
- Generated inducible satellite cell-specific Cdon knockout mice using a conditional Cdon allele and Pax7CreERT2.
- Induced Cdon ablation via tamoxifen injection and assessed muscle regeneration following cardiotoxin-induced injury.
- Utilized histochemistry, immunostaining, EdU incorporation, isolated myofiber/myoblast cultures, and RNA sequencing to analyze satellite cell function, senescence, and signaling pathways.
Main Results:
- Satellite cell-specific Cdon ablation resulted in impaired muscle regeneration, characterized by fibrosis, decreased satellite cell proliferation (EdU incorporation), and increased senescence (SA-β-gal staining).
- RNA sequencing revealed alterations in MAPK signaling and extracellular matrix genes. Cdon-depleted muscles showed reduced p-ERK levels and impaired ERK activation in response to FGF.
- Cdon deficiency led to decreased and/or mislocalized integrin β1 activation, impacting FGF responsiveness, and Cdon was found to interact with and regulate FGFR1/FGFR4 cell surface localization.
Conclusions:
- Cdon deficiency in satellite cells impairs muscle regeneration by hindering satellite cell proliferation and promoting senescence.
- Aberrant integrin and fibroblast growth factor receptor (FGFR) signaling pathways are key mechanisms through which Cdon deficiency affects muscle repair.
- Cdon plays a critical role in maintaining satellite cell function necessary for effective muscle regeneration.
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