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Published on: September 1, 2015
Renal effects of cullin 3 mutations causing familial hyperkalemic hypertension
Ryan J Cornelius1, Yujiro Maeoka, James A McCormick
1Division of Nephrology and Hypertension, Department of Medicine, Oregon Health and Science University, Portland, Oregon, USA.
Insights
Mutations in cullin 3 (CUL3) cause familial hyperkalemic hypertension (FHHt) by affecting the NaCl cotransporter (NCC). Recent findings reveal CUL3 mutations
Area of Science:
- Molecular biology
- Nephrology
- Genetics
Background:
- Familial hyperkalemic hypertension (FHHt) is a genetic disorder linked to mutations in the cullin 3 (CUL3) E3 ubiquitin ligase scaffold.
- CUL3 mutations lead to hyperactivation of the NaCl cotransporter (NCC), a key regulator of blood pressure in the kidney.
Conclusions:
- Recent studies have advanced the understanding of renal mechanisms by which CUL3 mutations impact blood pressure in FHHt.
- CUL3 mutations disrupt normal protein degradation and signaling pathways, leading to NCC hyperactivation and hypertension.
- Further research is warranted to explore potential complications and renal injury risks associated with CUL3 mutations.
Purpose Of Review:
Mutations in the E3 ubiquitin ligase scaffold cullin 3 (CUL3) cause the disease familial hyperkalemic hypertension (FHHt) by hyperactivating the NaCl cotransporter (NCC). The effects of these mutations are complex and still being unraveled. This review discusses recent findings revealing the molecular mechanisms underlying the effects of CUL3 mutations in the kidney.
Recent Findings:
The naturally occurring mutations that cause deletion of exon 9 (CUL3-Δ9) from CUL3 generate an abnormal CUL3 protein. CUL3-Δ9 displays increased interaction with multiple ubiquitin ligase substrate adaptors. However, in-vivo data show that the major mechanism for disease pathogenesis is that CUL3-Δ9 promotes degradation of itself and KLHL3, the specific substrate adaptor for an NCC-activating kinase. CUL3-Δ9 displays dysregulation via impaired binding to the CSN and CAND1, which cause hyperneddylation and compromised adaptor exchange, respectively. A recently discovered CUL3 mutant (CUL3-Δ474-477) displays many similarities to CUL3-Δ9 mutations but some key differences that likely account for the milder FHHt phenotype it elicits. Furthermore, recent work suggests that CUL3 mutations could have unidentified complications in patients and/or a predisposition to renal injury.
Summary:
This review summarizes recent studies highlighting advances in our understanding of the renal mechanisms by which CUL3 mutations modulate blood pressure in FHHt.
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