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Published on: June 23, 2015
Protein Kinase A Downregulation Delays the Development and Progression of Polycystic Kidney Disease
Xiaofang Wang1, Li Jiang1, Ka Thao1
1Division of Nephrology and Hypertension and Robert M. and Billie Kelley Pirnie Translational PKD Center, Mayo Clinic, Rochester, Minnesota.
Background:
Upregulation of cAMP-dependent and cAMP-independent PKA signaling is thought to promote cystogenesis in polycystic kidney disease (PKD). PKA-I regulatory subunit RIα is increased in kidneys of orthologous mouse models. Kidney-specific knockout of RIα upregulates PKA activity, induces cystic disease in wild-type mice, and aggravates it in Pkd1RC/RC mice.
Methods:
PKA-I activation or inhibition was compared with EPAC activation or PKA-II inhibition using Pkd1RC/RC metanephric organ cultures. The effect of constitutive PKA (preferentially PKA-I) downregulation in vivo was ascertained by kidney-specific expression of a dominant negative RIαB allele in Pkd1RC/RC mice obtained by crossing Prkar1αR1αB/WT, Pkd1RC/RC , and Pkhd1-Cre mice (C57BL/6 background). The effect of pharmacologic PKA inhibition using a novel, selective PRKACA inhibitor (BLU2864) was tested in mIMCD3 3D cultures, metanephric organ cultures, and Pkd1RC/RC mice on a C57BL/6 × 129S6/Sv F1 background. Mice were sacrificed at 16 weeks of age.
Results:
PKA-I activation promoted and inhibition prevented ex vivo P-Ser133 CREB expression and cystogenesis. EPAC activation or PKA-II inhibition had no or only minor effects. BLU2864 inhibited in vitro mIMCD3 cystogenesis and ex vivo P-Ser133 CREB expression and cystogenesis. Genetic downregulation of PKA activity and BLU2864 directly and/or indirectly inhibited many pro-proliferative pathways and were both protective in vivo. BLU2864 had no detectable on- or off-target adverse effects.
Conclusions:
PKA-I is the main PKA isozyme promoting cystogenesis. Direct PKA inhibition may be an effective strategy to treat PKD and other conditions where PKA signaling is upregulated. By acting directly on PKA, the inhibition may be more effective than or substantially increase the efficacy of treatments that only affect PKA activity by lowering cAMP.
Insights
Polycystic kidney disease (PKD) cyst formation is driven by PKA-I signaling. Inhibiting this pathway, particularly with the drug BLU2864, shows promise for treating PKD.
Area of Science:
- Nephrology
- Molecular Biology
- Genetics
Background:
- Polycystic kidney disease (PKD) pathogenesis involves cAMP-dependent and independent PKA signaling.
- Increased PKA-I regulatory subunit alpha (RIα) is observed in PKD models.
- Kidney-specific RIα knockout exacerbates PKD in mouse models.
Purpose of the Study:
- To investigate the role of PKA isozymes in PKD cystogenesis.
- To evaluate the therapeutic potential of PKA inhibition in PKD.
Main Methods:
- Comparison of PKA-I, EPAC, and PKA-II modulation in PKD organ cultures.
- Genetic downregulation of PKA activity in mouse models.
- Pharmacologic inhibition of PKA using BLU2864 in cell cultures and mouse models.
Main Results:
- PKA-I activation promoted cystogenesis; PKA-I inhibition prevented it.
- BLU2864 inhibited cystogenesis in vitro and ex vivo, and protected against PKD in vivo.
- Genetic and pharmacologic PKA inhibition reduced pro-proliferative pathways with no adverse effects.
Conclusions:
- PKA-I is the primary PKA isozyme driving PKD cystogenesis.
- Direct PKA inhibition is a potential therapeutic strategy for PKD.
- PKA inhibition may offer superior efficacy compared to treatments targeting cAMP levels.
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