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STAP2 promotes the progression of renal fibrosis via HSP27
Yuan Yuan1, Xiao Wei1, Xi Xiong1
1Department of Urology, Wuhan Third Hospital and Tongren Hospital of Wuhan University, Wuhan, 430060, China.
Background:
Renal fibrosis is a key process in the progression from acute kidney injury (AKI) to chronic kidney disease (CKD), while the intricate mechanisms of renal fibrosis remain obscure. While the signal-transducing adaptor protein 2 (STAP2) was well-studied for its notable function in inflammation and immune-related disorders, its specific implication in renal fibrosis remains unclear. This study assessed the mechanism by which STAP2 could promote the progression of renal fibrosis.
Methods:
The expression level of STAP2 in fibrotic human samples, murine fibrosis models, and cellular fibrosis models was measured, respectively. Subsequently, immunoprecipitation (IP), mass spectrometry, and RNA sequencing (RNA-seq) were employed to identify HSP27 as an interacting protein and the PI3K-AKT signaling pathway. STAP2 was thereafter knocked down or overexpressed in both in vivo and in vitro models to assess the expression levels of pathway-related and fibrosis-related proteins. Finally, the important role of STAP2 in the fibrosis process in animal models induced by ischemia-reperfusion injury (IRI) and cisplatin was validated.
Results:
Functionally, in vivo assays demonstrated that the genetic knockout of STAP2 could remarkably mitigate epithelial-mesenchymal transition (EMT), diminish inflammatory cell infiltration, and reduce collagen deposition in mice with renal fibrosis. Conversely, in vitro assays employing STAP2-overexpressing cell models exacerbated the expression levels of fibrosis markers. The outcomes uncovered a potential mechanism by which STAP2 could modulate renal fibrosis through its impact on the expression level of phosphorylated HSP27, as well as modulating the PI3K/AKT signaling pathway.
Conclusions:
This comprehensive investigation delineated the noticeable function of STAP2 in the advancement of renal fibrosis, and the outcomes might contribute to the development of targeted therapies concentrated on STAP2 to mitigate renal fibrosis.
Insights
Signal-transducing adaptor protein 2 (STAP2) promotes renal fibrosis by impacting the PI3K/AKT pathway and HSP27 phosphorylation. Targeting STAP2 may offer new therapies for kidney fibrosis.
Area of Science:
- Nephrology
- Molecular Biology
- Cell Biology
Background:
- Renal fibrosis is a critical factor in the progression of acute kidney injury (AKI) to chronic kidney disease (CKD).
- The precise mechanisms driving renal fibrosis are not fully understood.
- The role of signal-transducing adaptor protein 2 (STAP2) in renal fibrosis has not been previously elucidated, despite its known functions in inflammation and immunity.
Purpose of the Study:
- To investigate the mechanism by which STAP2 contributes to the progression of renal fibrosis.
- To determine the specific molecular pathways and interactions involving STAP2 in the context of kidney fibrosis.
Main Methods:
- Assessed STAP2 expression in human fibrotic samples and animal/cellular fibrosis models.
- Utilized immunoprecipitation, mass spectrometry, and RNA sequencing to identify interacting proteins and pathways.
- Performed in vivo and in vitro knockdown and overexpression studies of STAP2.
- Validated STAP2's role in animal models of ischemia-reperfusion injury (IRI) and cisplatin-induced kidney injury.
Main Results:
- Genetic knockout of STAP2 significantly reduced epithelial-mesenchymal transition (EMT), inflammatory cell infiltration, and collagen deposition in murine renal fibrosis models.
- Overexpression of STAP2 in vitro exacerbated fibrosis marker expression.
- Identified a mechanism where STAP2 modulates renal fibrosis via phosphorylated HSP27 and the PI3K/AKT signaling pathway.
Conclusions:
- STAP2 plays a significant role in the advancement of renal fibrosis.
- These findings suggest STAP2 as a potential therapeutic target for mitigating renal fibrosis.
- Targeted therapies focused on STAP2 could offer new avenues for treating kidney fibrosis.
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