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Failure of endocytic flux in Donnai-Barrow syndrome caused by LRP2 p.C1400R
Andrew Beenken, Tian H. Shen, Aryan Ghotra, Hediye Erdjument-Bromage, Jeong Lee, Jared S. Kushner, Rachel E. Sturley, Atlas Khan, Jeffrey R. Arace, Leora Kronenberg, Lucy D. Shen, Gabriel H. Rahmani, Patricia K. Donahoe, Thomas A. Neubert, Frances A. High, Ora A. Weisz, Jonathan Barasch
Andrew Beenken, Tian H. Shen, Aryan Ghotra, Hediye Erdjument-Bromage, Jeong Lee, Jared S. Kushner, Rachel E. Sturley, Atlas Khan, Jeffrey R. Arace, Leora Kronenberg, Lucy D. Shen, Gabriel H. Rahmani, Patricia K. Donahoe, Thomas A. Neubert, Frances A. High, Ora A. Weisz, Jonathan Barasch
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Research Article Cell biology Nephrology

Failure of endocytic flux in Donnai-Barrow syndrome caused by LRP2 p.C1400R

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Abstract

Donnai-Barrow syndrome (DBS) arises from loss-of-function (LoF) variants in the endocytic receptor low-density lipoprotein receptor–related protein 2 (LRP2; or megalin) and is characterized by low–molecular weight proteinuria and developmental abnormalities. Urinary proteomics of 9 patients with DBS revealed that the urinary proteome of a DBS patient with the missense variant LRP2 p.C1400R was indistinguishable from that of patients with splice site, nonsense, or frameshift mutations. A CRISPR mouse model of the variant was generated to determine the mechanism of LoF and proteinuria. The mutant LRP2 was expressed and observed to dimerize and localize to the proximal tubule apical membrane. However, both fluid-phase and receptor-mediated endocytosis was impaired in the context of a general perturbation of endocytic flux. Immunofluorescence revealed aberrant endocytic recycling with mislocalized RAB11+ and TFR1+ compartments and enlarged lysosomes. Structural modeling showed that the LRP2 assembly likely tolerates the cysteine-to-arginine substitution at the cell surface, but at endosomal pH the variant introduced steric clashes that may disrupt intramolecular interfaces and disturb receptor recycling. These findings point to the importance of LRP2 recycling for global endocytic flux and offer a blueprint for leveraging patient-specific alleles to dissect proximal tubule function.

Authors

Andrew Beenken, Tian H. Shen, Aryan Ghotra, Hediye Erdjument-Bromage, Jeong Lee, Jared S. Kushner, Rachel E. Sturley, Atlas Khan, Jeffrey R. Arace, Leora Kronenberg, Lucy D. Shen, Gabriel H. Rahmani, Patricia K. Donahoe, Thomas A. Neubert, Frances A. High, Ora A. Weisz, Jonathan Barasch

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Figure 6

LRP2 p.C1401R perturbs endocytic flux.

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LRP2 p.C1401R perturbs endocytic flux.
IF of WT and Lrp2 p.C1401R mice (...
IF of WT and Lrp2 p.C1401R mice (p.C1401R). (A) Early endosome antigen 1 (EEA1; red) relative abundance and distribution remain unchanged in Lrp2 p.C1401R. LRP2 is in green. Scale bars: 10 μm. (B) RAB11 staining marking the apical recycling endosomes (AREs; red) is mislocalized in Lrp2 p.C1401R. LRP2 is in green. Scale bars: 10 μm. (C) Transferrin receptor 1 (TFR1) staining marking the common recycling endosomes (CREs; green) is redistributed in Lrp2 p.C1401R. LRP2 is in red. Scale bars: 10 μm. (D) Lysosomes marked by lysosomal-associated membrane protein 1 (LAMP1; green) are enlarged. LRP2 is in red. Scale bars: 10 μm. All panels are representative images from n = 5 mice. (E) Quantitation of radial distance from TFR1+ endosomes to the tubule center using Mann-Whitney U test with N = 40 tubule cross sections from n = 5 mice. (F) Quantitation of lysosomal area in Lrp2 p.C1401R mice and WT mice using Mann-Whitney U test with N = 43 tubule cross sections from n = 5 mice. Box plots display the median (center line) and interquartile range (box boundaries), with whiskers extending to the most extreme data point within 1.5 times the interquartile range; individual data points are overlaid.

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