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Published on: November 10, 2021
Guanidinylated Apolipoprotein C3 (ApoC3) Associates with Kidney and Vascular Injury
Stefan J Schunk1, Juliane Hermann2, Tamim Sarakpi1
1Nephrology and Hypertension, Department of Internal Medicine IV, Saarland University, Homburg/Saar, Germany.
Insights
Posttranslational guanidinylation of apolipoprotein C-3 (gApoC3) is a novel mechanism in chronic kidney disease (CKD). This modification exacerbates inflammation and is linked to increased mortality and adverse cardiovascular and renal events in CKD patients.
Area of Science:
- Nephrology
- Cardiovascular Medicine
- Biochemistry
Background:
- Chronic kidney disease (CKD) and cardiovascular diseases (CVD) are prevalent and deadly comorbidities.
- Apolipoprotein C-3 (ApoC3) activates the NLRP3 inflammasome, inducing sterile inflammation in monocytes.
- This study investigates ApoC3 modifications in CKD and their impact on disease progression.
Purpose of the Study:
- To identify posttranslational modifications of ApoC3 in CKD patients.
- To determine the functional consequences of modified ApoC3 on inflammation, kidney fibrosis, and vascular injury.
- To explore the association of modified ApoC3 with clinical outcomes in CKD patients.
Main Methods:
- Mass spectrometry was used to analyze ApoC3 from CKD patients and healthy individuals.
- In vitro studies assessed modified ApoC3's effects on monocyte inflammation.
- In vivo studies utilized humanized mouse models for kidney fibrosis and vascular injury, alongside a prospective observational trial in 543 CKD patients.
Main Results:
- Significant posttranslational guanidinylation of ApoC3 (gApoC3) was identified in CKD patients, induced by guanidine and urea.
- gApoC3 accumulated in kidneys and plasma in a CKD mouse model and augmented ApoC3's proinflammatory effects.
- In humanized mice, gApoC3 promoted kidney fibrosis and impaired vascular regeneration. Higher gApoC3 levels in CKD patients correlated with increased mortality and renal/cardiovascular events.
Conclusions:
- Guanidinylation of ApoC3 is a novel pathogenic mechanism in CKD and associated vascular injury.
- gApoC3 represents a potential therapeutic target for mitigating CKD complications.
- This finding highlights a new avenue for managing patients with coexisting CKD and CVD.
Background:
Coexistent CKD and cardiovascular diseases are highly prevalent in Western populations and account for substantial mortality. We recently found that apolipoprotein C-3 (ApoC3), a major constituent of triglyceride-rich lipoproteins, induces sterile systemic inflammation by activating the NOD-like receptor protein-3 (NLRP3) inflammasome in human monocytes via an alternative pathway.
Methods:
To identify posttranslational modifications of ApoC3 in patients with CKD, we used mass spectrometry to analyze ApoC3 from such patients and from healthy individuals. We determined the effects of posttranslationally modified ApoC3 on monocyte inflammatory response in vitro, as well as in humanized mice subjected to unilateral ureter ligation (a kidney fibrosis model) and in a humanized mouse model for vascular injury and regeneration. Finally, we conducted a prospective observational trial of 543 patients with CKD to explore the association of posttranslationally modified ApoC3 with renal and cardiovascular events in such patients.
Results:
We identified significant posttranslational guanidinylation of ApoC3 (gApoC3) in patients with CKD. We also found that mechanistically, guanidine and urea induce guanidinylation of ApoC3. A 2D-proteomic analysis revealed that gApoC3 accumulated in kidneys and plasma in a CKD mouse model (mice fed an adenine-rich diet). In addition, gApoC3 augmented the proinflammatory effects of ApoC3 in monocytes in vitro . In humanized mice, gApoC3 promoted kidney tissue fibrosis and impeded vascular regeneration. In CKD patients, higher gApoC3 plasma levels (as determined by mass spectrometry) were associated with increased mortality as well as with renal and cardiovascular events.
Conclusions:
Guanidinylation of ApoC3 represents a novel pathogenic mechanism in CKD and CKD-associated vascular injury, pointing to gApoC3 as a potential therapeutic target.
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