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.

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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