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Implementing Patch Clamp and Live Fluorescence Microscopy to Monitor Functional Properties of Freshly Isolated PKD Epithelium
Published on: September 1, 2015
Loss of PKD1/polycystin-1 impairs lysosomal activity in a CAPN (calpain)-dependent manner
Lukas Peintner1, Anusha Venkatraman1,2,3, Astrid Waeldin1
1Institute of Molecular Medicine and Cell Research, Faculty of Medicine, Albert Ludwigs University of Freiburg, Freiburg, Germany.
Insights
Polycystin-1 (PKD1) deficiency impairs lysosomal function and autophagy by increasing calpain activity. Restoring calpain activity with inhibitors corrects these defects, revealing PKD1’s role in maintaining lysosomal integrity and autophagic flux.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is a common genetic disorder caused by mutations in the PKD1 gene.
- PKD1 and PKD2 are suggested to form a receptor-cation channel complex involved in various signaling pathways.
- The precise molecular functions of PKD1 and PKD2 remain largely unknown.
Purpose of the Study:
- To elucidate the molecular function of PKD1 in cellular processes.
- To investigate the impact of PKD1 deficiency on lysosomal function and autophagy.
- To identify potential therapeutic targets for PKD1-related disorders.
Main Methods:
- Utilized Pkd1-deficient mouse inner medullary collecting duct cells (mIMCD3).
- Employed doxycycline-inducible conditional pkd1 knockout mice.
- Assessed lysosomal acidification, LAMP degradation, cathepsin B processing, and autophagosomal-lysosomal fusion.
Main Results:
- PKD1 deficiency led to reduced lysosomal acidification, LAMP degradation, and cathepsin B activity.
- Impaired autophagosomal-lysosomal fusion and increased secretion of unprocessed cathepsin B were observed.
- PKD1 deficiency increased calpain activity, which was reversed by calpain inhibitors, restoring lysosomal function.
Conclusions:
- PKD1 plays a crucial role in maintaining lysosomal integrity and autophagic flux.
- PKD1 functions by inhibiting calpain activity, preventing lysosomal dysfunction.
- Targeting calpain activity may offer a therapeutic strategy for PKD1-related diseases.
Abstract:
Mutations in the PKD1 gene result in autosomal dominant polycystic kidney disease (ADPKD), the most common monogenetic cause of end-stage renal disease (ESRD) in humans. Previous reports suggested that PKD1, together with PKD2/polycystin-2, may function as a receptor-cation channel complex at cilia and on intracellular membranes and participate in various signaling pathways to regulate cell survival, proliferation and macroautophagy/autophagy. However, the exact molecular function of PKD1 and PKD2 has remained enigmatic. Here we used Pkd1-deficient mouse inner medullary collecting duct cells (mIMCD3) genetically deleted for Pkd1, and tubular epithelial cells isolated from nephrons of doxycycline-inducible conditional pkd1 knockout mice to show that the lack of Pkd1 caused diminished lysosomal acidification, LAMP degradation and reduced CTSB/cathepsin B processing and activity. This led to an impairment of autophagosomal-lysosomal fusion, a lower delivery of ubiquitinated cargo from multivesicular bodies (MVB)/exosomes to lysosomes and an enhanced secretion of unprocessed CTSB into the extracellular space. The TFEB-dependent lysosomal biogenesis pathway was however unaffected. Pkd1-deficient cells exhibited increased activity of the calcium-dependent CAPN (calpain) proteases, probably due to a higher calcium influx. Consistent with this notion CAPN inhibitors restored lysosomal function, CTSB processing/activity and autophagosomal-lysosomal fusion, and blocked CTSB secretion and LAMP degradation in pkd1 knockout cells. Our data reveal for the first time a lysosomal function of PKD1 which keeps CAPN activity in check and ensures lysosomal integrity and a correct autophagic flux.Abbreviations: acCal: acetyl-calpastatin peptide; ADPKD: autosomal dominant polycystic kidney disease; CI-1: calpain inhibitor-1; CQ: chloroquine; Dox: doxycycline; EV: extracellular vesicles; EXO: exosomes; LAMP1/2: lysosomal-associated membrane protein 1/2; LGALS1/GAL1/galectin-1: lectin, galactose binding, soluble 1; LMP: lysosomal membrane permeabilization; mIMCD3: mouse inner medullary collecting duct cells; MV: microvesicles; MVB: multivesicular bodies; PAX8: paired box 8; PKD1/polycystin-1: polycystin 1, transient receptor potential channel interacting; PKD2/polycystin-2: polycystin 2, transient receptor potential cation channel; Tet: tetracycline; TFEB: transcription factor EB; VFM: vesicle-free medium; WT: wild-type.
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