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In Vivo Polycystin-1 Interactome Using a Novel Pkd1 Knock-in Mouse Model

Overview
Journal PLoS One
Date 2023 Aug 4
PMID 37540694
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Abstract

PKD1 is the most commonly mutated gene causing autosomal dominant polycystic kidney disease (ADPKD). It encodes Polycystin-1 (PC1), a putative membrane protein that undergoes a set of incompletely characterized post-transcriptional cleavage steps and has been reported to localize in multiple subcellular locations, including the primary cilium and mitochondria. However, direct visualization of PC1 and detailed characterization of its binding partners remain challenging. We now report a new mouse model with HA epitopes and eGFP knocked-in frame into the endogenous mouse Pkd1 gene by CRISPR/Cas9. Using this model, we sought to visualize endogenous PC1-eGFP and performed affinity-purification mass spectrometry (AP-MS) and network analyses. We show that the modified Pkd1 allele is fully functional but the eGFP-tagged protein cannot be detected without signal amplification by secondary antibodies. Using nanobody-coupled beads and large quantities of tissue, AP-MS identified an in vivo PC1 interactome, which is enriched for mitochondrial proteins and components of metabolic pathways. These studies suggest this mouse model and interactome data will be useful to understand PC1 function, but that new methods and brighter tags will be required to track endogenous PC1.

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References
1.
Liu X, Salokas K, Weldatsadik R, Gawriyski L, Varjosalo M . Combined proximity labeling and affinity purification-mass spectrometry workflow for mapping and visualizing protein interaction networks. Nat Protoc. 2020; 15(10):3182-3211. DOI: 10.1038/s41596-020-0365-x. View

2.
Ibraghimov-Beskrovnaya O, Dackowski W, Foggensteiner L, Coleman N, Thiru S, Petry L . Polycystin: in vitro synthesis, in vivo tissue expression, and subcellular localization identifies a large membrane-associated protein. Proc Natl Acad Sci U S A. 1997; 94(12):6397-402. PMC: 21061. DOI: 10.1073/pnas.94.12.6397. View

3.
Lin Y, Huo L, Liu Z, Li J, Liu Y, He Q . Sodium laurate, a novel protease- and mass spectrometry-compatible detergent for mass spectrometry-based membrane proteomics. PLoS One. 2013; 8(3):e59779. PMC: 3610932. DOI: 10.1371/journal.pone.0059779. View

4.
Wodarczyk C, Rowe I, Chiaravalli M, Pema M, Qian F, Boletta A . A novel mouse model reveals that polycystin-1 deficiency in ependyma and choroid plexus results in dysfunctional cilia and hydrocephalus. PLoS One. 2009; 4(9):e7137. PMC: 2743994. DOI: 10.1371/journal.pone.0007137. View

5.
Qian F, Boletta A, Bhunia A, Xu H, Liu L, Ahrabi A . Cleavage of polycystin-1 requires the receptor for egg jelly domain and is disrupted by human autosomal-dominant polycystic kidney disease 1-associated mutations. Proc Natl Acad Sci U S A. 2002; 99(26):16981-6. PMC: 139255. DOI: 10.1073/pnas.252484899. View