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Quantitative Immunofluorescence Assay to Measure the Variation in Protein Levels at Centrosomes
Published on: December 20, 2014
Novel nephronophthisis-associated variants reveal functional importance of MAPKBP1 dimerization for centriolar
Ria Schönauer1, Wenjun Jin1, Anastasia Ertel1
1Division of Nephrology, University Hospital Leipzig Medical Center, Leipzig, Germany.
Abstract:
Biallelic mutations in MAPKBP1 were recently associated with late-onset cilia-independent nephronophthisis. MAPKBP1 was found at mitotic spindle poles but could not be detected at primary cilia or centrosomes. Here, by identification and characterization of novel MAPKBP1 variants, we aimed at further investigating its role in health and disease. Genetic analysis was done by exome sequencing, homozygosity mapping, and a targeted kidney gene panel while coimmunoprecipitation was used to explore wild-type and mutant protein-protein interactions. Expression of MAPKBP1 in non-ciliated HeLa and ciliated inner medullary collecting duct cells enabled co-localization studies by fluorescence microscopy. By next generation sequencing, we identified two novel homozygous MAPKBP1 splice-site variants in patients with nephronophthisis-related chronic kidney disease. Splice-site analyses revealed truncation of C-terminal coiled-coil domains and patient-derived deletion constructs lost their ability to homodimerize and heterodimerize with paralogous WDR62. While wild-type MAPKBP1 exhibited centrosomal, basal body, and microtubule association, mutant proteins lost the latter and showed reduced recruitment to cell cycle dependent centriolar structures. Wild-type and mutant proteins had no reciprocal influence upon co-expression excluding dominant negative effects. Thus, MAPKBP1 appears to be a novel microtubule-binding protein with cell cycle dependent centriolar localization. Truncation of its coiled-coil domain is enough to abrogate its dimerization and results in severely disturbed intracellular localizations. Delineating the impact of impaired dimerization on cell cycle regulation and intracellular kidney signaling may provide new insights into common mechanisms of kidney degeneration. Thus, due to milder clinical presentation, MAPKBP1-associated nephronophthisis should be considered in adult patients with otherwise unexplained chronic kidney disease.
Insights
Biallelic mutations in MAPKBP1 cause a kidney disease called nephronophthisis. Novel variants disrupt MAPKBP1 protein dimerization and localization, impacting cell cycle regulation and kidney function.
Area of Science:
- Genetics
- Cell Biology
- Nephrology
Background:
- Biallelic mutations in MAPKBP1 have been linked to late-onset, cilia-independent nephronophthisis.
- MAPKBP1 localizes to mitotic spindle poles but not primary cilia or centrosomes.
Purpose of the Study:
- Investigate the role of MAPKBP1 in health and disease through novel variant characterization.
- Further understand the function of MAPKBP1 and its involvement in kidney disease.
Main Methods:
- Exome sequencing, homozygosity mapping, and kidney gene panel for genetic analysis.
- Coimmunoprecipitation to study protein-protein interactions.
- Fluorescence microscopy for co-localization studies in ciliated and non-ciliated cells.
Main Results:
- Identified two novel homozygous MAPKBP1 splice-site variants in patients with nephronophthisis-related chronic kidney disease.
- Mutant MAPKBP1 proteins showed truncated C-terminal domains, lost homodimerization/heterodimerization with WDR62, and had altered localization.
- Wild-type MAPKBP1 localized to centrosomes, basal bodies, and microtubules; mutants showed reduced microtubule association and centriolar recruitment.
Conclusions:
- MAPKBP1 is a novel microtubule-binding protein with cell cycle-dependent centriolar localization.
- Truncation of the coiled-coil domain impairs dimerization and disrupts intracellular localization.
- MAPKBP1-associated nephronophthisis presents milder in adults and should be considered in unexplained chronic kidney disease.
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