4.5 Article

Characterization of Dent's disease mutations of CLC-5 reveals a correlation between functional and cell biological consequences and protein structure

Journal

AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY
Volume 296, Issue 2, Pages F390-F397

Publisher

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/ajprenal.90526.2008

Keywords

chloride channel; endocytosis; endosomal acidification; proteinuria

Funding

  1. Wellcome Trust [076545/Z/05/Z, GR063046FR]
  2. EuReGene FP6
  3. Medical Research Council UK
  4. University of Oxford Career Development Fellow.
  5. MRC [G9825289] Funding Source: UKRI
  6. Medical Research Council [G9825289] Funding Source: researchfish

Ask authors/readers for more resources

Smith AJ, Reed AA, Loh NY, Thakker RV, Lippiat JD. Characterization of Dent's disease mutations of CLC-5 reveals a correlation between functional and cell biological consequences and protein structure. Am J Physiol Renal Physiol 296: F390-F397, 2009. First published November 19, 2008; doi:10.1152/ajprenal.90526.2008.-Mutations of the human CLCN5 gene, which encodes the CLC-5 Cl-/H+ exchanger, lead to Dent's disease. Mutations result in functional defects that range from moderate reductions to complete loss of whole cell currents, although the severity of the functional defect rarely correlates with the severity of the disease. To further elucidate the basis of CLC-5 mutations causing Dent's disease, we examined the functional and cell biological consequences of seven previously reported missense mutants, utilizing electrophysiological and cell biological techniques. This revealed three classes of Dent's disease-causing CLC-5 mutations. Class 1 mutations lead to endoplasmic reticulum retention and degradation of CLC-5. Class 2 mutations appear to have little effect on subcellular distribution of CLC-5 but cause defective function resulting in severe defects in endosomal acidification. Class 3 mutations lead to alterations in the endosomal distribution of CLC-5 but are otherwise able to support endosomal acidification. Molecular modeling demonstrates a structural basis that may underlie the nature of the defect resulting from each mutation with each class occupying discrete regions of the protein quaternary structure. Thus these results demonstrate that the cell biological consequences of CLC-5 mutations are heterogeneous and can be classified into three major groups and that a correlation between the nature of the defect and the location of the mutation in the structure may be drawn. This model may prove to be useful as a tool to aid in the diagnosis and future therapeutic intervention of the disease.

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