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Proteolytic cleavage of Podocin by Matriptase exacerbates podocyte injury
Shota Ozawa1, Masaya Matsubayashi2, Hitoki Nanaura2
1TMK Project at the Medical Innovation Center, Kyoto University, Kyoto, Japan; Research Unit/Innovative Medical Science, Mitsubishi Tanabe Pharma Corporation, Saitama, Japan.
Abstract:
Podocyte injury is a critical step toward the progression of renal disease and is often associated with a loss of slit diaphragm proteins, including Podocin. Although there is a possibility that the extracellular domain of these slit diaphragm proteins can be a target for a pathological proteolysis, the precise mechanism driving the phenomenon remains unknown. Here we show that Matriptase, a membrane-anchored protein, was activated at podocytes in CKD patients and mice, whereas Matriptase inhibitors slowed the progression of mouse kidney disease. The mechanism could be accounted for by an imbalance favoring Matriptase over its cognate inhibitor, hepatocyte growth factor activator inhibitor type 1 (HAI-1), because conditional depletion of HAI-1 in podocytes accelerated podocyte injury in mouse model. Matriptase was capable of cleaving Podocin, but such a reaction was blocked by either HAI-1 or dominant-negative Matriptase. Furthermore, the N terminus of Podocin, as a consequence of Matriptase cleavage of Podocin, translocated to nucleoli, suggesting that the N terminus of Podocin might be involved in the process of podocyte injury. Given these observations, we propose that the proteolytic cleavage of Podocin by Matriptase could potentially cause podocyte injury and that targeting Matriptase could be a novel therapeutic strategy for CKD patients.
Insights
Matriptase activation cleaves Podocin, a key protein in kidney podocytes, contributing to chronic kidney disease (CKD) progression. Inhibiting Matriptase may offer a new therapeutic approach for CKD patients.
Area of Science:
- Nephrology
- Molecular Biology
- Proteolysis
Background:
- Podocyte injury is central to chronic kidney disease (CKD) progression.
- Loss of slit diaphragm proteins, like Podocin, is a hallmark of podocyte injury.
- The mechanisms driving proteolysis of slit diaphragm proteins remain unclear.
Purpose of the Study:
- To investigate the role of Matriptase in podocyte injury and CKD.
- To identify the mechanism by which Matriptase contributes to Podocin loss.
- To evaluate Matriptase as a potential therapeutic target for CKD.
Main Methods:
- Analysis of podocytes in CKD patients and mouse models.
- Assessment of Matriptase activity and its inhibitor, HAI-1.
- Conditional depletion of HAI-1 in mouse podocytes.
- In vitro cleavage assays using Matriptase and Podocin.
- Localization studies of Podocin fragments.
Main Results:
- Matriptase was activated in podocytes of CKD patients and mice.
- Matriptase inhibitors ameliorated kidney disease progression in mice.
- Depletion of HAI-1 exacerbated podocyte injury.
- Matriptase directly cleaved Podocin, a process inhibited by HAI-1.
- The N-terminus of cleaved Podocin translocated to nucleoli.
Conclusions:
- Proteolytic cleavage of Podocin by Matriptase contributes to podocyte injury in CKD.
- An imbalance between Matriptase and HAI-1 drives this process.
- Targeting Matriptase presents a potential novel therapeutic strategy for CKD.
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