ArticleHuman molecular genetics2022
Cellular and metabolic effects of renin-angiotensin system blockade on glycogen storage disease type I nephropathy.
Article in Human molecular genetics, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed, 22 citations in OpenAlex.
- Glycogen storage disease type Ia with a 17-year history of renal involvement: a case report.Journal of medical case reports · 2026Article
- Tracing the molecular landscape of diabetic nephropathy: Insights from machine learning and experiment verification.Journal of diabetes investigation · 2025Article
- The cross-sectional association between cardiometabolic index and abdominal aortic calcification in U.S. adults: evidence from NHANES 2013-2014.Frontiers in nutrition · 2025Article
- Impaired Glucose Metabolism, Primary Cilium Defects, and Kidney Cystogenesis in Glycogen Storage Disease Type Ia.Journal of the American Society of Nephrology : JASN · 2024Article
- Glycogen storage diseases: An update.World journal of gastroenterology · 2023Review
- Mitochondrial reprogramming in peripheral blood mononuclear cells of patients with glycogen storage disease type Ia.Genes & nutrition · 2023Article
- Bibliometric Study of Trends in the Diabetic Nephropathy Research Space from 2016 to 2020.Oxidative medicine and cellular longevity · 2022Article
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Authors and funding
12 authors at 3 institutions in 2 countries.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Glycogen Storage Disease Type I (GSDI) is an inherited disease caused by glucose-6 phosphatase (G6Pase) deficiency, leading to a loss of endogenous glucose production and severe hypoglycemia. Moreover, most GSDI patients develop a chronic kidney disease (CKD) due to lipid accumulation in the kidney. Similar to diabetic CKD, activation of renin-angiotensin system (RAS) promotes renal fibrosis in GSDI. Here, we investigated the physiological and molecular effects of RAS blockers in GSDI patients and mice. A retrospective analysis of renal function was performed in 21 GSDI patients treated with RAS blockers. Cellular and metabolic impacts of RAS blockade were analyzed in K.G6pc-/- mice characterized by G6pc1 deletion in kidneys. GSDI patients started RAS blocker treatment at a median age of 21 years and long-term treatment reduced the progression of CKD in about 50% of patients. However, CKD progressed to kidney failure in 20% of treated patients, requiring renal transplantation. In K.G6pc-/- mice, CKD was associated with an impairment of autophagy and ER stress. RAS blockade resulted in a rescue of autophagy and decreased ER stress, concomitantly with decreased fibrosis and improved renal function, but without impact on glycogen and lipid contents. In conclusion, these data confirm the partial beneficial effect of RAS blockers in the prevention of CKD in GSDI. Mechanistically, we show that these effects are linked to a reduction of cell stress, without affecting metabolism.
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