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Cullin 3 Exon 9 Deletion in Familial Hyperkalemic Hypertension Impairs Cullin3-Ring-E3 Ligase (CRL3) Dynamic
Ilektra Kouranti1, Waed Abdel Khalek1, Stephani Mazurkiewicz1
1Université Paris Cité, French National Institute of Health and Medical Research (INSERM), Paris Cardiovascular Research Center (PARCC), F-75015 Paris, France.
Insights
Familial hyperkalemia and hypertension is linked to Cullin 3 (CUL3) mutations. The CUL3-∆9 variant, despite being modified, fails to ubiquitinate substrates due to disrupted interactions with key regulatory partners.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Cullin 3 (CUL3) forms Cullin3 Ring E3-ligases (CRL3s) that ubiquitinate substrates for proteasomal degradation.
- Mutations in CUL3 cause familial hyperkalemia and hypertension (FHHt), often involving exon 9 deletion (CUL3-∆9).
Purpose of the Study:
- To investigate the loss-of-function mechanism of the CUL3-∆9 mutation.
- To understand how CUL3-∆9 fails to ubiquitinate substrates despite hyperneddylation.
Main Methods:
- Comparative label-free quantitative mass spectrometry to analyze CUL3 and CUL3-∆9 interactomes.
- SILAC (Stable Isotope Labeling by Amino acids in Cell culture) experiments to assess CRL3 complex dynamics.
Main Results:
- CUL3-∆9 exhibits disrupted interactions with COP9 and CAND1, crucial for CRL3 complex assembly.
- These disruptions lead to reduced dynamic cycling of CRL3 complexes.
- The CUL3-∆9 complex acts as an inactive BTB-adaptor trap.
Conclusions:
- Hyperneddylated CUL3-∆9 is inactive due to structural changes affecting interactions with regulatory partners.
- Defective CRL3 complex dynamics underlie the pathology of CUL3-associated FHHt.
Abstract:
Cullin 3 (CUL3) is the scaffold of Cullin3 Ring E3-ligases (CRL3s), which use various BTB-adaptor proteins to ubiquitinate numerous substrates targeting their proteasomal degradation. CUL3 mutations, responsible for a severe form of familial hyperkalemia and hypertension (FHHt), all result in a deletion of exon 9 (amino-acids 403-459) (CUL3-∆9). Surprisingly, while CUL3-∆9 is hyperneddylated, a post-translational modification that typically activates CRL complexes, it is unable to ubiquitinate its substrates. In order to understand the mechanisms behind this loss-of function, we performed comparative label-free quantitative analyses of CUL3 and CUL3-∆9 interactome by mass spectrometry. It was observed that CUL3-∆9 interactions with COP9 and CAND1, both involved in CRL3 complexes' dynamic assembly, were disrupted. These defects result in a reduction in the dynamic cycling of the CRL3 complexes, making the CRL3-∆9 complex an inactive BTB-adaptor trap, as demonstrated by SILAC experiments. Collectively, the data indicated that the hyperneddylated CUL3-∆9 protein is inactive as a consequence of several structural changes disrupting its dynamic interactions with key regulatory partners.
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