ArticleCirculation2023
Noncanonical Form of ERAD Regulates Cardiac Hypertrophy.
Article in Circulation, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers, 1 of them a synthesis that pooled it.
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Who cites it
8 citing papers in PubMed, 1 synthesis or guideline pooled it, 11 citations in OpenAlex.
- Novel Quality Metrics for Assessing the Reproducibility and Translational Relevance of Mouse Transverse Aortic Constriction Experiments: A Systematic Review.Journal of the American Heart Association · 2026Pooled it
- Emerging perspectives in proteostasis: bridging mechanisms and therapeutics for human diseases.Signal transduction and targeted therapy · 2026Review
- Doxorubicin exposure leads to cardiac fibroblast dysregulation and worsens fibrotic remodeling in the pathological heart.Journal of molecular and cellular cardiology plus · 2026Article
- Low Expression of Selenoprotein S Promotes Osteogenic Differentiation in Bone Marrow Mesenchymal Stromal Cells.Biological trace element research · 2025Article
- Low Expression of Selenoprotein S Modulates Osteogenic Differentiation Through Bidirectional Regulation of theCurrent issues in molecular biology · 2025Article
- QRICH1 regulates ATF6 transcription to affect pathological cardiac hypertrophy progression.Molecular medicine (Cambridge, Mass.) · 2025Article
- Research progress on endoplasmic reticulum homeostasis in acute kidney injury.Frontiers in pharmacology · 2025Review
- Advances in the study of protein folding and endoplasmic reticulum-associated degradation in mammal cells.Journal of Zhejiang University. Science. B · 2024Review
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Authors and funding
8 authors at 2 institutions in 1 country.
Funding
Abstract
backgroundCardiac hypertrophy increases demands on protein folding, which causes an accumulation of misfolded proteins in the endoplasmic reticulum (ER). These misfolded proteins can be removed by the adaptive retrotranslocation, polyubiquitylation, and a proteasome-mediated degradation process, ER-associated degradation (ERAD), which, as a biological process and rate, has not been studied in vivo. To investigate a role for ERAD in a pathophysiological model, we examined the function of the functional initiator of ERAD, valosin-containing protein-interacting membrane protein (VIMP), positing that VIMP would be adaptive in pathological cardiac hypertrophy in mice.
methodsWe developed a new method involving cardiac myocyte-specific adeno-associated virus serovar 9-mediated expression of the canonical ERAD substrate, TCRα, to measure the rate of ERAD, ie, ERAD flux, in the heart in vivo. Adeno-associated virus serovar 9 was also used to either knock down or overexpress VIMP in the heart. Then mice were subjected to transverse aortic constriction to induce pressure overload-induced cardiac hypertrophy.
resultsERAD flux was slowed in both human heart failure and mice after transverse aortic constriction. Surprisingly, although VIMP adaptively contributes to ERAD in model cell lines, in the heart, VIMP knockdown increased ERAD and ameliorated transverse aortic constriction-induced cardiac hypertrophy. Coordinately, VIMP overexpression exacerbated cardiac hypertrophy, which was dependent on VIMP engaging in ERAD. Mechanistically, we found that the cytosolic protein kinase SGK1 (serum/glucocorticoid regulated kinase 1) is a major driver of pathological cardiac hypertrophy in mice subjected to transverse aortic constriction, and that VIMP knockdown decreased the levels of SGK1, which subsequently decreased cardiac pathology. We went on to show that although it is not an ER protein, and resides outside of the ER, SGK1 is degraded by ERAD in a noncanonical process we call ERAD-Out. Despite never having been in the ER, SGK1 is recognized as an ERAD substrate by the ERAD component DERLIN1, and uniquely in cardiac myocytes, VIMP displaces DERLIN1 from initiating ERAD, which decreased SGK1 degradation and promoted cardiac hypertrophy.
conclusionsERAD-Out is a new preferentially favored noncanonical form of ERAD that mediates the degradation of SGK1 in cardiac myocytes, and in so doing is therefore an important determinant of how the heart responds to pathological stimuli, such as pressure overload.
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