Hyperkalemic hypertension-associated cullin 3 promotes WNK signaling by degrading KLHL3

Insights

Familial hyperkalemic hypertension involves mutations in CUL3. A specific mutant CUL3 (CUL3 Δ403-459) depletes KLHL3, stabilizing WNK kinases and causing disease. General CUL3 loss leads to kidney dysfunction.

Area of Science:

  • Molecular biology
  • Genetics
  • Nephrology

Background:

  • Familial hyperkalemic hypertension (FHHt) is a genetic disorder linked to WNK kinases, CUL3, and KLHL3.
  • CUL3 mutations in FHHt are known to disrupt WNK kinase degradation, but the precise mechanism remains unclear.

Purpose of the Study:

  • To investigate how FHHt-associated CUL3 mutants affect WNK kinase stability and cellular processes.
  • To determine the in vivo consequences of CUL3 loss in the kidney and its relation to FHHt.

Main Methods:

  • Utilized cell-based assays to examine the binding, ubiquitylation, and neddylation of CUL3 mutants with WNK kinases and KLHL3.
  • Generated a murine model with nephron-specific deletion of Cul3 to assess its physiological and pathological effects.

Main Results:

  • An FHHt-associated CUL3 mutant (CUL3 Δ403-459) was found to be hyper-neddylated and activated, leading to KLHL3 depletion and WNK stabilization.
  • Cul3 deletion in mouse kidneys increased WNK kinase levels and NCC phosphorylation, but ultimately caused renal dysfunction, inflammation, and fibrosis.

Conclusions:

  • FHHt-associated CUL3 mutants disrupt KLHL3 degradation, preventing WNK degradation and causing hypertension.
  • Complete loss of CUL3 in the kidney induces broader toxic effects beyond FHHt, including renal dysfunction and inflammation.

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