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Published on: June 14, 2016
The emerging roles of β-arrestins in fibrotic diseases
Yuan-jing Gu1, Wu-yi Sun1, Sen Zhang1
1Institute of Clinical Pharmacology, Anhui Medical University, Key Laboratory of Antiinflammatory and Immune Medicine, Ministry of Education, Anhui Collaborative Innovation Center of Anti-inflammatory and Immune Medicine, Hefei 230032, China.
Abstract:
β-Arrestins and β-arrestin2 are important adaptor proteins and signal transduction proteins that are mainly involved in the desensitization and internalization of G-protein-coupled receptors. Fibrosis is characterized by accumulation of excess extracellular matrix (ECM) molecules caused by chronic tissue injury. If highly progressive, the fibrotic process leads to organ malfunction and, eventually, death. The incurable lung fibrosis, renal fibrosis and liver fibrosis are among the most common fibrotic diseases. Recent studies show that β-arrestins can activate signaling cascades independent of G-protein activation and scaffold many intracellular signaling networks by diverse types of signaling pathways, including the Hedgehog, Wnt, Notch and transforming growth factor-β pathways, as well as downstream kinases such as MAPK and PI3K. These signaling pathways are involved in the pathological process of fibrosis and fibrotic diseases. This β-arrestin-mediated regulation not only affects cell growth and apoptosis, but also the deposition of ECM, activation of inflammatory response and development of fibrotic diseases. In this review, we survey the involvement of β-arrestins in various signaling pathways and highlight different aspects of their regulation of fibrosis. We also discuss the important roles of β-arrestins in the process of fibrotic diseases by regulating the inflammation and deposit of ECM. It is becoming more evident that targeting β-arrestins may offer therapeutic potential for the treatment of fibrotic diseases.
Insights
Beta-arrestins regulate signaling pathways involved in fibrosis. Targeting these proteins may offer new treatments for fibrotic diseases like lung, kidney, and liver fibrosis.
Area of Science:
- Cellular Biology
- Molecular Biology
- Pathology
Background:
- Beta-arrestins are key adaptor and signal transduction proteins.
- They mediate G-protein-coupled receptor desensitization and internalization.
- Fibrosis, characterized by excess extracellular matrix deposition, leads to organ damage and failure.
Purpose of the Study:
- To review the role of beta-arrestins in various signaling pathways.
- To highlight beta-arrestin regulation of fibrosis.
- To discuss therapeutic potential of targeting beta-arrestins in fibrotic diseases.
Main Methods:
- Literature review of studies on beta-arrestins and fibrosis.
- Analysis of beta-arrestin involvement in signaling pathways (Hedgehog, Wnt, Notch, TGF-β).
- Examination of beta-arrestin regulation of ECM deposition and inflammation.
Main Results:
- Beta-arrestins scaffold signaling networks and activate G-protein-independent cascades.
- These pathways (MAPK, PI3K) are implicated in fibrotic processes.
- Beta-arrestin regulation impacts cell growth, apoptosis, ECM deposition, and inflammation.
Conclusions:
- Beta-arrestins play significant roles in the pathogenesis of fibrotic diseases.
- They regulate key processes including inflammation and extracellular matrix deposition.
- Targeting beta-arrestins presents a promising therapeutic strategy for treating fibrosis.
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