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New insights into human minimal change disease: lessons from animal models
Sumant S Chugh1, Lionel C Clement, Camille Macé
1Glomerular Disease Therapeutics Laboratory, University of Alabama at Birmingham, USA. chugh@uab.edu
Abstract:
The pathogenesis of minimal change disease (MCD), considered to be the simplest form of nephrotic syndrome, has been one of the major unsolved mysteries in kidney disease. In this review, recent landmark studies that have led to the unraveling of MCD are discussed. A recent study now explains the molecular basis of major clinical and morphologic changes in MCD. Overproduction of angiopoietin-like 4 (ANGPTL4) in podocytes in MCD causes binding of ANGPTL4 to the glomerular basement membrane, development of nephrotic-range selective proteinuria, diffuse effacement of foot processes, and loss of glomerular basement membrane charge, but is not associated with changes shown by light microscopy in the glomerular and tubulointerstitial compartments. At least some of this ability of ANGPTL4 to induce proteinuria is linked to a deficiency of sialic acid residues because oral supplementation with sialic acid precursor N-acetyl-d-mannosamine improves sialylation of podocyte-secreted ANGPTL4 and significantly decreases proteinuria. Animal models of MCD, recent advances in potential biomarkers, and studies of upstream factors that may initiate glomerular changes also are discussed. In summary, recent progress in understanding MCD is likely to influence the diagnosis and treatment of MCD in the near future.
Insights
Minimal change disease (MCD) pathogenesis is explained by overproduced angiopoietin-like 4 (ANGPTL4) in podocytes. Supplementing sialic acid precursors reduces proteinuria in this kidney disease.
Area of Science:
- Nephrology
- Molecular Biology
- Pathogenesis of Kidney Diseases
Background:
- Minimal change disease (MCD) is a primary cause of nephrotic syndrome, with its underlying pathogenesis remaining largely unknown.
- Understanding MCD is crucial for developing targeted therapies for nephrotic syndrome.
Observation:
- Recent studies identify angiopoietin-like 4 (ANGPTL4) overproduction in podocytes as a key factor in MCD.
- ANGPTL4 binds to the glomerular basement membrane, causing proteinuria and podocyte foot process effacement.
Findings:
- The molecular basis of MCD involves ANGPTL4-induced loss of glomerular basement membrane charge and proteinuria.
- Deficiency in sialic acid residues contributes to ANGPTL4's ability to induce proteinuria.
- Oral N-acetyl-d-mannosamine supplementation improves podocyte ANGPTL4 sialylation and significantly reduces proteinuria in MCD.
Implications:
- These findings offer a molecular explanation for MCD's clinical and morphological features.
- Understanding ANGPTL4's role may lead to novel diagnostic biomarkers and therapeutic strategies for MCD.
- Future research directions include exploring upstream factors and refining treatment approaches for minimal change disease.
