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Heterogeneity in the processing of CLCN5 mutants related to Dent disease
Teddy Grand1, Sébastien L'Hoste, David Mordasini
1UPMC Univ Paris 06, UMR_S 872, Laboratoire de Génomique, Physiologie et Physiopathologie Rénales, Paris, France.
Abstract:
Mutations in the electrogenic Cl(-)/H(+) exchanger ClC-5 gene CLCN5 are frequently associated with Dent disease, an X-linked recessive disorder affecting the proximal tubules. Here, we investigate the consequences in Xenopus laevis oocytes and in HEK293 cells of nine previously reported, pathogenic, missense mutations of ClC-5, most of them which are located in regions forming the subunit interface. Two mutants trafficked normally to the cell surface and to early endosomes, and displayed complex glycosylation at the cell surface like wild-type ClC-5, but exhibited reduced currents. Three mutants displayed improper N-glycosylation, and were nonfunctional due to being retained and degraded at the endoplasmic reticulum. Functional characterization of four mutants allowed us to identify a novel mechanism leading to ClC-5 dysfunction in Dent disease. We report that these mutant proteins were delayed in their processing, and that the stability of their complex glycosylated form was reduced, causing lower cell surface expression. The early endosome distribution of these mutants was normal. Half of these mutants displayed reduced currents, whereas the other half showed abolished currents. Our study revealed distinct cellular mechanisms accounting for ClC-5 loss of function in Dent disease.
Insights
Mutations in the ClC-5 gene cause Dent disease by disrupting kidney tubule function. This study reveals distinct cellular defects, including protein misfolding and reduced cell surface expression, leading to chloride-proton exchanger dysfunction.
Area of Science:
- Molecular biology
- Cell biology
- Genetics
Background:
- Dent disease is an X-linked disorder caused by mutations in the CLCN5 gene, which encodes the electrogenic Cl(-)/H(+) exchanger ClC-5.
- ClC-5 is crucial for proximal tubule function, and its dysfunction leads to kidney disease.
Purpose of the Study:
- To investigate the cellular consequences of nine pathogenic missense mutations in the CLCN5 gene.
- To elucidate the distinct mechanisms underlying ClC-5 loss of function in Dent disease.
Main Methods:
- Expression of wild-type and mutant ClC-5 in Xenopus laevis oocytes and HEK293 cells.
- Analysis of protein trafficking, glycosylation, and channel activity.
- Functional characterization of mutant ClC-5 proteins.
Main Results:
- Two mutants trafficked normally but showed reduced currents.
- Three mutants were retained and degraded in the endoplasmic reticulum due to improper N-glycosylation.
- Four mutants exhibited delayed processing, reduced stability, and lower cell surface expression, leading to abolished or reduced currents.
Conclusions:
- Distinct cellular mechanisms contribute to ClC-5 loss of function in Dent disease.
- Mutations can impair ClC-5 function through endoplasmic reticulum retention, altered glycosylation, or reduced cell surface expression.
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