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Published on: June 10, 2016
SIRT2 inhibition attenuates myofibroblast transition through autophagy-mediated ciliogenesis in renal epithelial
Juyoung Son1, Jaejung Park1, Joo-Won Jeong2
1Department of Biomedical Science, Graduate School, Kyung Hee University, Seoul 02447, Republic of Korea.
Abstract:
Myofibroblast transition plays a crucial role in both fibrotic diseases and wound healing. Although SIRT2 regulates fibrosis, its mechanisms of action remain poorly understood. This study aimed to investigate the effects of SIRT2 inhibition on myofibroblast transition in human renal cells under quiescent conditions. HK-2 kidney proximal tubular epithelial cells were starved of serum, resulting in the formation of primary cilia. Transforming growth factor-β (TGF-β) stimulation reduced both the number of ciliated cells and ciliary length. The ciliary defects resulted from a failure in autophagy termination, leading to the accumulation of OFD1, a negative regulator of ciliogenesis, at centriolar satellites. This phenomenon was correlated with the upregulation of fibrosis-related proteins. To elucidate the role of SIRT2 in the autophagy-ciliogenesis-fibrosis axis, cells were treated with AGK2, a specific inhibitor of SIRT2. AGK2 treatment promoted the formation of both autophagosomes and autolysosomes and facilitated OFD1 degradation at the centriolar satellites, resulting in the lengthening of primary cilia. Restoration of primary cilia by AGK2 was associated with the suppression of myofibroblast transition. In conclusion, SIRT2 inhibition attenuates TGF-β-induced fibrosis by promoting autophagy-mediated ciliogenesis. This study highlights SIRT2 as a potential therapeutic target for fibrotic diseases.
Insights
Inhibiting SIRT2 (Sirtuin 2) protein may treat fibrotic diseases. This study shows SIRT2 inhibition promotes autophagy and primary cilia formation, suppressing myofibroblast transition and fibrosis in kidney cells.
Area of Science:
- Cell Biology
- Renal Physiology
- Molecular Mechanisms of Fibrosis
Background:
- Myofibroblast transition is key in fibrosis and wound healing.
- SIRT2's role in fibrosis is not well understood.
- Primary cilia are involved in cellular signaling and homeostasis.
Purpose of the Study:
- Investigate SIRT2 inhibition's effect on myofibroblast transition in human renal cells.
- Elucidate the role of SIRT2 in the autophagy-ciliogenesis-fibrosis axis.
Main Methods:
- Used HK-2 human renal proximal tubular epithelial cells.
- Induced quiescence and primary cilia formation via serum starvation.
- Stimulated cells with transforming growth factor-β (TGF-β).
- Treated cells with AGK2, a SIRT2 inhibitor.
Main Results:
- TGF-β reduced primary cilia number and length due to impaired autophagy and OFD1 accumulation.
- SIRT2 inhibition with AGK2 restored autophagy and primary cilia.
- AGK2 treatment suppressed myofibroblast transition and fibrosis-related protein upregulation.
Conclusions:
- SIRT2 inhibition attenuates TGF-β-induced fibrosis by enhancing autophagy-mediated ciliogenesis.
- Restoration of primary cilia is linked to suppressed myofibroblast transition.
- SIRT2 is a potential therapeutic target for fibrotic diseases.
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