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Proteasomal inhibition after injury prevents fibrosis by modulating TGF-β(1) signalling
Gökhan M Mutlu1, G R Scott Budinger, Minghua Wu
1Department of Medicine, Northwestern University, Chicago, Illinois 60611, USA.
Background:
The development of organ fibrosis after injury requires activation of transforming growth factor β(1) which regulates the transcription of profibrotic genes. The systemic administration of a proteasomal inhibitor has been reported to prevent the development of fibrosis in the liver, kidney and bone marrow. It is hypothesised that proteasomal inhibition would prevent lung and skin fibrosis after injury by inhibiting TGF-β(1)-mediated transcription.
Methods:
Bortezomib, a small molecule proteasome inhibitor in widespread clinical use, was administered to mice beginning 7 days after the intratracheal or intradermal administration of bleomycin and lung and skin fibrosis was measured after 21 or 40 days, respectively. To examine the mechanism of this protection, bortezomib was administered to primary normal lung fibroblasts and primary lung and skin fibroblasts obtained from patients with idiopathic pulmonary fibrosis and scleroderma, respectively.
Results:
Bortezomib promoted normal repair and prevented lung and skin fibrosis when administered beginning 7 days after the initiation of bleomycin. In primary human lung fibroblasts from normal individuals and patients with idiopathic pulmonary fibrosis and in skin fibroblasts from a patient with scleroderma, bortezomib inhibited TGF-β(1)-mediated target gene expression by inhibiting transcription induced by activated Smads. An increase in the abundance and activity of the nuclear hormone receptor PPARγ, a repressor of Smad-mediated transcription, contributed to this response.
Conclusions:
Proteasomal inhibition prevents lung and skin fibrosis after injury in part by increasing the abundance and activity of PPARγ. Proteasomal inhibition may offer a novel therapeutic alternative in patients with dysregulated tissue repair and fibrosis.
Insights
Proteasome inhibition prevents lung and skin fibrosis by blocking transforming growth factor-β(1) signaling. This approach may offer new treatments for fibrotic diseases by enhancing PPARγ activity.
Area of Science:
- Fibrosis research
- Proteasome inhibitor mechanisms
- Cellular signaling pathways
Background:
- Organ fibrosis development is regulated by transforming growth factor-β(1) (TGF-β(1)) and profibrotic gene transcription.
- Systemic proteasome inhibition has shown efficacy in preventing fibrosis in various organs.
- Hypothesis: Proteasome inhibition can prevent lung and skin fibrosis by inhibiting TGF-β(1) transcription.
Purpose of the Study:
- To investigate the efficacy of proteasome inhibition in preventing lung and skin fibrosis.
- To elucidate the underlying molecular mechanisms of proteasome inhibitor-mediated antifibrotic effects.
Main Methods:
- Bortezomib, a proteasome inhibitor, was administered to mice after bleomycin-induced lung and skin injury.
- Fibrosis was assessed in lung and skin tissues.
- Primary human lung and skin fibroblasts were treated with bortezomib to examine its effects on TGF-β(1)-mediated gene expression.
Main Results:
- Bortezomib administration prevented lung and skin fibrosis in mice.
- Bortezomib inhibited TGF-β(1)-mediated transcription in human fibroblasts.
- Increased abundance and activity of PPARγ, a Smad-mediated transcription repressor, contributed to the antifibrotic effect.
Conclusions:
- Proteasome inhibition effectively prevents lung and skin fibrosis post-injury.
- The mechanism involves increased PPARγ abundance and activity, repressing Smad-mediated transcription.
- Proteasome inhibition presents a potential therapeutic strategy for fibrotic disorders.
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