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Published on: July 17, 2020
SH2 Domain-Containing Phosphatase-SHP2 Attenuates Fibrotic Responses through Negative Regulation of Mitochondrial
Theodoros Karampitsakos1, Apostolos Galaris2, Ilianna Barbayianni2
1Department of Respiratory Medicine, University Hospital of Patras, 26504 Patras, Greece.
Background:
We have previously shown that SHP2 downregulation may predispose fibroblasts to differentiate into myofibroblasts and proposed a role for SHP2 downregulation in the pathogenesis of idiopathic pulmonary fibrosis (IPF). Recent data have shown that SHP2 localizes to the mitochondrial intercristae, and its overexpression enhances mitochondrial metabolism leading to oxidative stress and senescence.
Objective:
To determine the effect of SHP2 on fibrotic responses.
Methods And Results:
Primary mouse lung fibroblasts derived from mice carrying a conditional knock-in mutation (D61G/+), rendering the SHP2 catalytic domain constitutively active, had reduced proliferation (1.6-fold, p < 0.05), migration (2-fold, p < 0.05), as well as reduced responsiveness of TGFB-1 induced fibroblasts-to-myofibroblasts differentiation, compared to wild-type ones. Electron microscope analysis revealed that SHP2 D61G/+ mouse lung fibroblasts were characterized by mitochondrial abnormalities, including swollen mitochondria with disrupted electron-lucent cristae and an increased number of autophagosomes compared to wild-type ones. SHP2 D61G/+ MLFs exhibited increased protein levels of autophagy markers, including LC3B-II and p-62, evidence that was confirmed by immunofluorescence analysis. Mitochondrial function analysis revealed that stable (genotype D61G/+) overexpression of SHP2 led to impaired mitochondrial function, as assessed by decreased mitochondrial membrane potential (1.29-fold, p < 0.05), coupling efficiency (1.82 fold, p < 0.05), oxygen consumption rate (1.9-fold, p < 0.05), and increased reactive oxygen species production both at baseline (1.75-fold, p < 0.05) and following H2O2 stimulation (1.63-fold, p < 0.05) compared to wild-type ones (SHP2+/+). SHP2 D61G/+ mouse lung fibroblasts showed enhanced AMPK activity, as well as decreased activation of the mTORC1 signaling pathway, potentially leading to ineffective mitochondrial metabolism and increased autophagy.
Conclusions:
SHP2 attenuates fibrotic responses in fibroblast cell lines through negative regulation of mitochondrial metabolism and induction of autophagy. SHP2 activation may represent a promising therapeutic strategy for patients with fibrotic lung diseases.
Insights
SHP2 activation attenuates fibrotic responses by regulating mitochondrial metabolism and promoting autophagy. This suggests SHP2 activation could be a therapeutic strategy for fibrotic lung diseases.
Area of Science:
- Cell Biology
- Molecular Biology
- Pathology
Background:
- SHP2 downregulation is implicated in idiopathic pulmonary fibrosis (IPF) pathogenesis.
- SHP2 is localized to mitochondria, and its overexpression affects mitochondrial metabolism, oxidative stress, and senescence.
Purpose of the Study:
- To investigate the effect of SHP2 on fibrotic responses in fibroblasts.
- To elucidate the role of SHP2 in mitochondrial function and autophagy in the context of fibrosis.
Main Methods:
- Utilized primary mouse lung fibroblasts with a constitutively active SHP2 mutation (D61G/+).
- Performed proliferation, migration, and differentiation assays.
- Conducted electron microscopy, immunofluorescence, and mitochondrial function analyses.
Main Results:
- SHP2 activation reduced fibroblast proliferation, migration, and myofibroblast differentiation.
- Mitochondrial abnormalities, increased autophagy markers (LC3B-II, p62), impaired mitochondrial function, and increased reactive oxygen species were observed.
- Enhanced AMPK activity and decreased mTORC1 signaling were noted in SHP2-activated fibroblasts.
Conclusions:
- SHP2 activation attenuates fibrotic responses by negatively regulating mitochondrial metabolism and inducing autophagy.
- SHP2 activation presents a potential therapeutic avenue for fibrotic lung diseases.
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