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Published on: September 1, 2015
Polyductin, the PKHD1 gene product, comprises isoforms expressed in plasma membrane, primary cilium, and cytoplasm
Luís F C Menezes1, Yiqiang Cai, Yasuyuki Nagasawa
1Department of Medicine, University of São Paulo School of Medicine, São Paulo, Brazil.
Insights
The polycystic kidney disease gene PKHD1 produces polyductin, a protein found in kidney cilia and other organs. This protein exists in membrane-bound and soluble forms, suggesting diverse cellular functions beyond cilia.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- The autosomal-recessive polycystic kidney disease (ARPKD) gene, PKHD1, encodes multiple protein isoforms.
- The longest transcript encodes polyductin (fibrocystin), a large protein with a single transmembrane domain.
Purpose of the Study:
- To characterize PKHD1 gene products and their expression patterns.
- To investigate the localization and potential functions of polyductin.
Main Methods:
- Polyclonal antibodies were raised against polyductin.
- Western blot, immunoprecipitation, and immunohistochemistry were used to analyze protein expression and localization in human and mouse tissues.
- Immunofluorescence and immunoelectron microscopy were employed for subcellular localization studies.
Main Results:
- Specific polyductin protein bands (>440 kD and ~230 kD) were detected in kidney, liver, and pancreas, primarily in membrane fractions.
- A ~140 kD soluble product was also identified.
- Immunohistochemistry revealed polyductin in kidney collecting ducts, biliary and pancreatic ducts, and salivary glands.
- Subcellular localization studies confirmed polyductin in primary cilia, apical membrane, and cytoplasm.
Conclusions:
- Polyductin is expressed in primary apical cilia, linking it to polycystic kidney disease (PKD) pathogenesis.
- The detection of multiple isoforms with distinct localizations suggests diverse roles for polyductin.
- PKHD1 likely encodes both membrane-bound and soluble protein variants with varied subcellular functions.
Background:
PKHD1, the autosomal-recessive polycystic kidney disease (ARPKD) gene, encodes multiple alternatively spliced transcripts predicted to generate membrane-bound and secreted proteins. The longest open reading frame encodes polyductin (fibrocystin), a putative 4074 amino acid protein with a single transmembrane domain and an intracellular C-terminus.
Methods:
To characterize the PKHD1 products and their expression profile, we raised polyclonal antibodies against different portions of polyductin and analyzed different organs using various methods.
Results:
Western blot analyses demonstrated specific bands of >440 kD in human adult kidney, liver, and pancreas and approximately 230 kD in kidney and liver, predominantly observed in membrane fractions. The >440-kD putative membrane protein was immunoprecipitated from kidney and subsequently detected by Western blotting using two distinct antisera. An additional product of approximately 140 kD was specifically recognized by affinity-purified antisera predominantly in soluble fractions. Immunohistochemistry studies revealed specific staining in cortical and medullary collecting ducts and thick ascending limbs of Henle (TALH). Serial sections were stained with antibodies against aquaporin-2 and Tamm-Horsfall protein to confirm the nephron segment localization. Positive staining was also detected in biliary and pancreatic duct epithelia. Analyses of mouse developing tissues showed specific staining in the ureteric bud branches, intra- and extrahepatic biliary ducts, pancreatic ducts, and salivary glands. Immunofluorescence studies in inner medullary collecting duct cultured cells and immunoelectron microscopy analysis of medullary collecting ducts demonstrated that the protein localizes to the primary cilium. Positive signal was also detected in the apical membrane and in cytoplasm.
Conclusion:
The results indicate that polyductin is part of the group of polycystic kidney disease (PKD)-related proteins expressed in primary apical cilia. Our data also suggest that, in addition to its likely involvement in cilia function, polyductin probably serves in other subcellular functional roles. The detection of three different products using two antisera, with evidence for distinct subcellular localizations, suggests that PKHD1 encodes membrane-bound and soluble isoforms.
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