Systems-based identification of the Hippo pathway for promoting fibrotic mesenchymal differentiation in systemic sclerosis.
Feiyang MaPei-Suen TsouMehrnaz Gharaee-KermaniOlesya PlazyoXianying XingJoseph KirmaRachael WasikowskiGrace A HileKelly L HarmsYanyun JiangEnze XingMio NakamuraDanielle OchockiWilliam D BrodieShiv S PillaiEmanual MaverakisMatteo PellegriniRobert L ModlinJohn VargaLam C TsoiRobert A LafyatisJ Michelle KahlenbergAllison C BilliZsuzsanna H McMahanJohann E GudjonssonPublished in: Nature communications (2024)
Systemic sclerosis (SSc) is a devastating autoimmune disease characterized by excessive production and accumulation of extracellular matrix, leading to fibrosis of skin and other internal organs. However, the main cellular participants in SSc skin fibrosis remain incompletely understood. Here using differentiation trajectories at a single cell level, we demonstrate a dual source of extracellular matrix deposition in SSc skin from both myofibroblasts and endothelial-to-mesenchymal-transitioning cells (EndoMT). We further define a central role of Hippo pathway effectors in differentiation and homeostasis of myofibroblast and EndoMT, respectively, and show that myofibroblasts and EndoMTs function as central communication hubs that drive key pro-fibrotic signaling pathways in SSc. Together, our data help characterize myofibroblast differentiation and EndoMT phenotypes in SSc skin, and hint that modulation of the Hippo pathway may contribute in reversing the pro-fibrotic phenotypes in myofibroblasts and EndoMTs.
Keyphrases
- systemic sclerosis
- extracellular matrix
- interstitial lung disease
- soft tissue
- wound healing
- single cell
- bone marrow
- stem cells
- induced apoptosis
- signaling pathway
- transforming growth factor
- multiple sclerosis
- rheumatoid arthritis
- epithelial mesenchymal transition
- rna seq
- machine learning
- body mass index
- cell cycle arrest
- physical activity
- pi k akt
- artificial intelligence
- deep learning
- liver fibrosis
- weight loss
- bioinformatics analysis
- cell proliferation