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Published on: November 3, 2023
Signal integration at the PI3K-p85-XBP1 hub endows coagulation protease activated protein C with insulin-like
Thati Madhusudhan1,2, Hongjie Wang1,3, Sanchita Ghosh1
1Institute of Clinical Chemistry and Pathobiochemistry, Otto von Guericke University Magdeburg, Magdeburg, Germany.
Abstract:
Coagulation proteases have increasingly recognized functions beyond hemostasis and thrombosis. Disruption of activated protein C (aPC) or insulin signaling impair function of podocytes and ultimately cause dysfunction of the glomerular filtration barrier and diabetic kidney disease (DKD). We here show that insulin and aPC converge on a common spliced-X-box binding protein-1 (sXBP1) signaling pathway to maintain endoplasmic reticulum (ER) homeostasis. Analogous to insulin, physiological levels of aPC maintain ER proteostasis in DKD. Accordingly, genetically impaired protein C activation exacerbates maladaptive ER response, whereas genetic or pharmacological restoration of aPC maintains ER proteostasis in DKD models. Importantly, in mice with podocyte-specific deficiency of insulin receptor (INSR), aPC selectively restores the activity of the cytoprotective ER-transcription factor sXBP1 by temporally targeting INSR downstream signaling intermediates, the regulatory subunits of PI3Kinase, p85α and p85β. Genome-wide mapping of condition-specific XBP1-transcriptional regulatory patterns confirmed that concordant unfolded protein response target genes are involved in maintenance of ER proteostasis by both insulin and aPC. Thus, aPC efficiently employs disengaged insulin signaling components to reconfigure ER signaling and restore proteostasis. These results identify ER reprogramming as a novel hormonelike function of coagulation proteases and demonstrate that targeting insulin signaling intermediates may be a feasible therapeutic approach ameliorating defective insulin signaling.
Insights
Activated protein C (aPC) and insulin signaling converge on the spliced X-box binding protein-1 (sXBP1) pathway to maintain endoplasmic reticulum (ER) homeostasis. This study reveals a novel role for aPC in ER reprogramming, offering therapeutic potential for diabetic kidney disease (DKD).
Area of Science:
- Molecular Biology
- Endocrinology
- Nephrology
Background:
- Coagulation proteases, beyond hemostasis, have emerging roles in cellular signaling.
- Disrupted insulin signaling and activated protein C (aPC) impair podocyte function, leading to diabetic kidney disease (DKD).
- Endoplasmic reticulum (ER) stress and proteostasis imbalance are implicated in DKD pathogenesis.
Purpose of the Study:
- To investigate the convergence of insulin and aPC signaling pathways in maintaining ER homeostasis.
- To explore the therapeutic potential of aPC in restoring ER proteostasis in DKD models.
- To elucidate the mechanism by which aPC influences ER signaling, particularly the spliced X-box binding protein-1 (sXBP1) pathway.
Main Methods:
- Utilized mouse models with genetic alterations in protein C activation and insulin receptor (INSR) deficiency.
- Assessed ER proteostasis and unfolded protein response (UPR) gene expression.
- Employed genome-wide mapping to identify XBP1-transcriptional regulatory patterns.
Main Results:
- Insulin and aPC converge on the sXBP1 signaling pathway to maintain ER proteostasis.
- Physiological levels of aPC maintain ER proteostasis in DKD models, analogous to insulin.
- aPC selectively restores sXBP1 activity in podocytes with INSR deficiency by targeting PI3Kinase regulatory subunits (p85α and p85β).
Conclusions:
- Activated protein C (aPC) exhibits a novel, hormone-like function in ER reprogramming.
- aPC utilizes components of insulin signaling to restore ER proteostasis in diabetic kidney disease.
- Targeting insulin signaling intermediates presents a potential therapeutic strategy for DKD.
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