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Updated: Aug 10, 2026

Spectral Karyotyping to Study Chromosome Abnormalities in Humans and Mice with Polycystic Kidney Disease
Published on: February 3, 2012
Compromised cytoarchitecture and polarized trafficking in autosomal dominant polycystic kidney disease cells
A J Charron1, S Nakamura, R Bacallao
1Integrated Graduate Program in the Life Sciences, Northwestern University Medical School, Chicago, Illinois 60611, USA.
Insights
Autosomal dominant polycystic kidney disease (ADPKD) disrupts cell structure, causing E-cadherin to mislocalize. This impairs protein transport essential for kidney function.
Area of Science:
- Cell Biology
- Genetics
- Nephrology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) involves cyst formation due to epithelial cell dysfunction.
- The role of polycystins in ADPKD pathogenesis and protein mislocalization is not fully understood.
Purpose of the Study:
- To investigate the mechanism of cell membrane protein mislocalization in ADPKD.
- To identify specific proteins affected by ADPKD-causing mutations.
Main Methods:
- Analysis of protein localization in ADPKD cells.
- Investigation of membrane transport pathways, including Golgi apparatus exit and apical/basolateral trafficking.
- Examination of E-cadherin, sec6, and sec8 protein localization.
Main Results:
- E-cadherin was found sequestered in an internal compartment in ADPKD cells.
- Sec6 and sec8 proteins were depleted from the plasma membrane.
- Basolateral protein and lipid trafficking were impaired due to delayed Golgi exit; apical transport remained normal.
Conclusions:
- ADPKD mutations disrupt E-cadherin-mediated cell architecture.
- This disruption adversely affects protein complexes vital for basolateral trafficking.
- Findings suggest a link between polycystin function, E-cadherin, and polarized cell transport in ADPKD pathogenesis.
Abstract:
Cystogenesis associated with autosomal dominant polycystic kidney disease (ADPKD) is characterized by perturbations in the polarized phenotype and function of cyst-lining epithelial cells. The polycystins, the protein products of the genes mutated in the majority of ADPKD cases, have been described recently, but the pathological mechanism by which causal mutations result in the mislocalization of cell membrane proteins has remained unclear. This report documents the dissociation from the ADPKD cell basolateral membrane of three molecules essential for spatial organization and exocytosis. The adherens junction protein E-cadherin, the subcellular disposition of which governs intercellular and intracellular architecture, was discovered sequestered in an internal ADPKD cell compartment. At the same time, sec6 and sec8, components of a complex critical for basolateral cargo delivery normally arrayed at the apico-lateral apex, were depleted from the ADPKD cell plasma membrane. An analysis of membrane transport revealed that basolateral trafficking of proteins and lipids was impaired as a result of delayed cargo exit from the ADPKD cell Golgi apparatus. Apical transport proceeded normally. Taken together with recent documentation of an association between polycystin-1 and E-cadherin (Huan and van Adelsberg 1999), the data suggest that causal mutations disrupt E-cadherin-dependent cytoarchitecture, adversely affecting protein assemblies crucial for basolateral trafficking.
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