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Therapeutic Potential for CFTR Correctors in Autosomal Recessive Polycystic Kidney Disease
Murali K Yanda1, Vartika Tomar1, Liudmila Cebotaru1
1Division of Gastroenterology and Hepatology, Department of Medicine, Johns Hopkins University School of Medicine, Baltimore, Maryland.
Insights
Autosomal recessive polycystic kidney disease (ARPKD) involves fibrocystin/polyductin (FPC) mutations. Targeting heat shock proteins (HSPs) and cystic fibrosis transmembrane conductance regulator (CFTR) correctors may offer new therapeutic strategies for ARPKD.
Area of Science:
- Cell Biology
- Genetics
- Medical Research
Background:
- Autosomal recessive polycystic kidney disease (ARPKD) stems from mutations in the PKHD1 gene, which encodes fibrocystin/polyductin (FPC).
- Severe ARPKD manifests in neonates, with survivors facing significant comorbidities like portal hypertension and liver fibrosis.
- Identifying novel therapeutic strategies for ARPKD is a critical unmet need.
Purpose of the Study:
- To investigate the molecular mechanisms underlying ARPKD pathogenesis.
- To explore potential therapeutic interventions for ARPKD by examining the roles of heat shock proteins (HSPs) and the cystic fibrosis transmembrane conductance regulator (CFTR).
Main Methods:
- Utilized wild-type and FPC-mutant cholangiocyte cell lines in 3D cyst and monolayer cultures.
- Evaluated protein expression via western blotting and protein trafficking using confocal microscopy.
Main Results:
- Downregulation of CFTR and altered HSP levels (HSP27 downregulated; HSP90 and HSP70 upregulated) were observed in FPC-mutant cholangiocytes.
- FPC malfunction led to aberrant CFTR localization in cell membranes.
- Cyst formation was mitigated by increasing HSP27, inhibiting HSP90/HSP70, or treating with the CFTR corrector VX-809, which also restored CFTR localization.
Conclusions:
- FPC malfunction drives ARPKD cyst formation through alterations in HSPs and CFTR protein levels and localization.
- CFTR correctors, successfully used in cystic fibrosis treatment, show promise as a therapeutic approach for ARPKD.
Background & Aims:
Autosomal recessive polycystic kidney disease (ARPKD) is caused by mutations in PKHD1, encoding fibrocystin/polyductin (FPC). Severe disease occurs in perinates. Those who survive the neonatal period face a myriad of comorbidities, including systemic and portal hypertension, liver fibrosis, and hepatosplenomegaly. The goal here was to uncover therapeutic strategies for ARPKD.
Methods:
We used wild-type and an FPC-mutant cholangiocyte cell line in 3-dimenional cysts and in confluent monolayers to evaluate protein expression using western blotting and protein trafficking using confocal microscopy.
Results:
We found that the protein level of the cystic fibrosis transmembrane conductance regulator (CFTR) was downregulated. The levels of heat shock proteins (HSPs) were altered in the FPC-mutant cholangiocytes, with HSP27 being downregulated and HSP90 and HSP70 upregulated. FPC-mutant cholangiocytes formed cysts, but normal cells did not. Cyst growth could be reduced by increasing HSP27 protein levels, by HSP90 and HSP70 inhibitor treatments, by silencing HSP90 through messenger RNA inhibition, or by the novel approach of treating the cysts with the CFTR corrector VX-809. In wild-type cholangiocytes, CFTR is present in both apical and basolateral membranes. FPC malfunction resulted in altered colocalization of CFTR with both apical and basolateral membranes. Whereas, treatment with VX-809, increasing HSP27 or inhibiting HSP70 or HSP90 restored CFTR localization toward normal values.
Conclusions:
FPC malfunction induces the formation of cysts, which are fueled by alterations in HSPs and in CFTR protein levels and miss-localization. We suggest that CFTR correctors, already in clinical use to treat cystic fibrosis, could also be used as a treatment for ARPKD.
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