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Fibrocystin/polyductin (FPC): new functional insights into ARPKD pathogenesis revealed by informatics, comparative
Ashima Gulati1,2, Ljubica Caldovic1,2, Lisa M Guay-Woodford3,4
1Center for Precision Medicine and Genomics Research, Children's National Research Institute, Children's National Hospital, Washington, DC, USA.
Insights
Autosomal recessive polycystic kidney disease (ARPKD) is a ciliopathy causing kidney and liver issues. This review explores the fibrocystin/polyductin (FPC) protein
Area of Science:
- Nephrology
- Genetics
- Molecular Biology
Background:
- Autosomal recessive polycystic kidney disease (ARPKD) is a severe ciliopathy affecting the kidneys and liver.
- Congenital hepatic fibrosis is a consistent feature of ARPKD.
- PKHD1 gene mutations leading to fibrocystin/polyductin (FPC) dysfunction cause ARPKD.
Purpose of the Study:
- To review recent experimental data on the PKHD1/FPC protein.
- To provide a current functional perspective on FPC.
- To discuss the clinical relevance of FPC function in ARPKD pathogenesis and kidney health.
Main Methods:
- Literature review of experimental data on PKHD1/FPC.
- Analysis of FPC protein structure and evolutionary conservation.
- Synthesis of functional insights into ARPKD.
Main Results:
- FPC is a large glycoprotein crucial for renal tubular epithelium differentiation.
- FPC possesses a conserved N-terminal region, transmembrane domain, and a C-terminal tail with localization signals.
- Emerging data shed light on FPC's role in ARPKD.
Conclusions:
- Understanding FPC's molecular mechanisms is key to elucidating ARPKD pathogenesis.
- FPC's function has significant implications for kidney health and ARPKD treatment strategies.
- Further research into FPC's role in ciliopathies is warranted.
Abstract:
Autosomal recessive polycystic kidney disease (ARPKD) is the prototype of the hepato-renal fibrocystic diseases, a subset of the broader ciliopathy disorders. As a severe form of PKD, ARPKD typically manifests in utero with 21% perinatal mortality and progressive loss of kidney function in most post-natal survivors. Congenital hepatic fibrosis is an invariant feature of ARPKD. PKHD1-encoded fibrocystin/polyductin (FPC) is a large 4074 amino acid glycoprotein that likely functions as a receptor molecule and appears to play a key role in maintaining differentiated renal tubular epithelium. The molecular mechanisms by which defects in FPC contribute to ARPKD pathogenesis are just beginning to be elucidated. FPC is a novel protein that likely evolved as vertebrates transitioned from aquatic to semi-terrestrial ecosystems. Full-length human FPC shares a phylogenetically conserved, multi-motif N-terminal region with its ancestral homolog, PKHD1L1, and contains a single-pass transmembrane domain and a novel C-terminal tail that harbors a ciliary targeting motif as well as mitochondrial and nuclear localization sequences. This review synthesizes the full range of recent experimental data about PKHD1/FPC to provide a current functional perspective about this complex protein. We also discuss the clinical relevance of these emerging functional insights for both kidney health and ARPKD pathogenesis.
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