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Published on: September 1, 2015
INF2 mutations cause kidney disease through a gain-of-function mechanism
Balajikarthick Subramanian1,2, Sarah Williams1, Sophie Karp1
1Division of Nephrology, Department of Medicine, Beth Israel Deaconess Medical Center, Harvard Medical School, Boston, MA, USA.
Gain-of-function mutations in inverted formin-2 (INF2) cause focal segmental glomerulosclerosis (FSGS). This study reveals INF2 gain-of-function effects on the actin cytoskeleton drive FSGS pathogenesis and autosomal dominant inheritance.
Area of Science:
- Nephrology
- Genetics
- Cell Biology
Background:
- Mutations in inverted formin-2 (INF2) are linked to focal segmental glomerulosclerosis (FSGS), a kidney disorder.
- The precise mechanism, gain-of-function or loss-of-function, underlying INF2-related FSGS remains unclear.
- INF2 knockout mice and mice with a disease-associated mutation lack overt kidney or neurological phenotypes.
Purpose of the Study:
- To investigate the pathogenic mechanism of INF2 mutations in FSGS.
- To determine whether INF2 mutations cause disease through gain-of-function or loss-of-function effects.
- To elucidate the role of INF2 in kidney injury and disease development.
Main Methods:
- Comparison of puromycin aminonucleoside (PAN)-induced kidney injury in INF2 R218Q mutant mice and INF2 knockout mice.
- Assessment of INF2's effect on the actin cytoskeleton using colocalization, coimmunoprecipitation, and actin measurements.
- Analysis of RNA expression in PAN-treated R218Q mice to identify enriched pathways.
- Phenotypic analysis of podocytes from R218Q mice and human kidney organoids with INF2 mutations.
Main Results:
- INF2 R218Q mutant mice, unlike INF2 knockout mice, exhibited susceptibility to glomerular disease after PAN treatment.
- The INF2 R218Q mutation demonstrated a gain-of-function effect on the actin cytoskeleton.
- PAN-treated R218Q mice showed enrichment in adhesion and mitochondria-related pathways.
- Podocytes from R218Q mice and human kidney organoids with INF2 mutations recapitulated adhesion and mitochondrial defects.
Conclusions:
- Gain-of-function mechanisms involving the actin cytoskeleton are the primary drivers of INF2-related FSGS.
- These findings explain the autosomal dominant inheritance pattern observed in INF2-related FSGS.
- INF2's role in actin dynamics is critical for maintaining podocyte integrity and kidney function.
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