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Published on: June 23, 2015
Emerging Therapies in Autosomal Dominant Polycystic Kidney Disease
Christopher Y Chen1, Mohamad Hadla2, Ibrahim Khambati2
1PKD Foundation, Kansas City, Missouri.
Abstract:
Autosomal dominant polycystic kidney disease is the most common inherited kidney disorder and a leading monogenic cause of kidney failure. Reduction or loss of polycystin-1 and polycystin-2 function disrupts ciliary calcium signaling, elevates cyclic AMP (cAMP), reprograms cellular metabolism, and activates proliferative cascades that drive cyst expansion. Tolvaptan, a vasopressin V2 receptor antagonist, established cAMP modulation as a disease-modifying strategy but is limited by aquaretic effects and hepatotoxicity risk. This review highlights emerging therapeutic strategies in clinical trial development that extend beyond vasopressin antagonism. Gene-directed therapies aim to restore polycystin dosage, including anti-miR-17 oligonucleotides ( e.g ., farabursen) and pharmacochaperones that rescue misfolded polycystin-1 and restore trafficking in select PKD1 missense variants ( e.g ., VX-407). Paracrine signaling can be modulated with anti-pregnancy-associated plasma protein A antibodies that reduce insulin-like growth factor-1 bioavailability in cystic microenvironments. Metabolic reprogramming is targeted by agents such as metformin, bempedoic acid, glucagon-like peptide-1 receptor agonists, and structured dietary interventions. Sodium-glucose cotransporter 2 inhibitors hold theoretical promise but await definitive results from ongoing trials. A novel cAMP-lowering strategy through phosphodiesterase-4 activation is advancing toward clinical testing. Looking ahead, gene therapy, and genome editing offer the potential to raise polycystin levels above the threshold for cystogenesis, although challenges in vector capacity, kidney-specific delivery, and durability remain. Artificial intelligence-guided discovery, coupled with human organoid platforms, is accelerating therapeutic repurposing and rational combination design. Collectively, these advances signal a transition toward a layered, mechanism-guided framework in which vasopressin blockade is integrated with metabolic, other signaling, and genotype-specific therapies. As biomarkers and risk stratification tools mature, autosomal dominant polycystic kidney disease management is poised to become increasingly precise, tolerable, and effective.
Insights
Emerging therapies for autosomal dominant polycystic kidney disease (ADPKD) move beyond vasopressin antagonism. New strategies include gene therapy, metabolic interventions, and signaling pathway modulation for improved ADPKD management.
Area of Science:
- Nephrology
- Genetics
- Pharmacology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is a leading inherited kidney disorder causing kidney failure.
- Defective polycystin-1 (PC1) and polycystin-2 (PC2) function disrupts cellular signaling, metabolism, and promotes cyst growth.
- Current treatments like tolvaptan target cyclic AMP (cAMP) but have limitations.
Purpose of the Study:
- To review emerging therapeutic strategies for ADPKD currently in clinical development.
- To highlight approaches beyond vasopressin antagonism.
- To discuss the future of precision medicine in ADPKD.
Main Methods:
- Review of clinical trial data and scientific literature on novel ADPKD therapies.
- Analysis of gene-directed therapies, paracrine signaling modulators, and metabolic interventions.
- Exploration of advanced techniques like AI and organoid platforms.
Main Results:
- Gene therapies (e.g., anti-miR-17, pharmacochaperones) aim to restore polycystin levels.
- Modulation of paracrine signaling (e.g., anti-PAPP-A) and metabolism (e.g., metformin, SGLT2 inhibitors) are under investigation.
- Novel cAMP-lowering strategies (PDE4 activation) and gene editing show future promise.
Conclusions:
- ADPKD treatment is evolving towards a layered, mechanism-guided approach.
- Integration of vasopressin blockade with metabolic and genotype-specific therapies is key.
- Advancements in biomarkers and AI will enable more precise and effective ADPKD management.
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