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Published on: December 9, 2022
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.
Abstract:
Familial hyperkalemic hypertension (FHHt) is a monogenic disease resulting from mutations in genes encoding WNK kinases, the ubiquitin scaffold protein cullin 3 (CUL3), or the substrate adaptor kelch-like 3 (KLHL3). Disease-associated CUL3 mutations abrogate WNK kinase degradation in cells, but it is not clear how mutant forms of CUL3 promote WNK stability. Here, we demonstrated that an FHHt-causing CUL3 mutant (CUL3 Δ403-459) not only retains the ability to bind and ubiquitylate WNK kinases and KLHL3 in cells, but is also more heavily neddylated and activated than WT CUL3. In cells, activated CUL3 Δ403-459 depleted KLHL3, preventing WNK degradation, despite increased CUL3-mediated WNK ubiquitylation; therefore, CUL3 loss in kidney should phenocopy FHHt in murine models. As predicted, nephron-specific deletion of Cul3 in mice did increase WNK kinase levels and the abundance of phosphorylated Na-Cl cotransporter (NCC). Over time, however, Cul3 deletion caused renal dysfunction, including hypochloremic alkalosis, diabetes insipidus, and salt-sensitive hypotension, with depletion of sodium potassium chloride cotransporter 2 and aquaporin 2. Moreover, these animals exhibited renal inflammation, fibrosis, and increased cyclin E. These results indicate that FHHt-associated CUL3 Δ403-459 targets KLHL3 for degradation, thereby preventing WNK degradation, whereas general loss of CUL3 activity - while also impairing WNK degradation - has widespread toxic effects in the kidney.
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