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Published on: June 2, 2022
Chronic Hyperphosphatemia and Vascular Calcification Are Reduced by Stable Delivery of Soluble Klotho
Julia M Hum1, Linda M O'Bryan2, Arun K Tatiparthi3
1Department of Medical and Molecular Genetics, Division of Molecular Genetics and Gene Therapy, Indiana University School of Medicine, Indianapolis, Indiana.
Insights
Soluble alphaKlotho (cKL) reduces high phosphate levels and prevents vascular calcification in mice. This soluble form acts independently of membrane-bound alphaKlotho, offering potential therapeutic benefits for related diseases.
Area of Science:
- Endocrinology
- Nephrology
- Mineral Metabolism
Background:
- AlphaKlotho (αKL) regulates mineral metabolism, with deficiency causing hyperphosphatemia and vascular calcification (VC).
- AlphaKlotho exists as membrane-bound (mKL) and soluble (cKL) forms; cKL's role in phosphate homeostasis is unclear.
- Existing research highlights mKL's function as a co-receptor for FGF23.
Purpose of the Study:
- To investigate the function of soluble alphaKlotho (cKL) in regulating phosphate metabolism and preventing vascular calcification.
- To determine if cKL can exert therapeutic effects independently of membrane-bound alphaKlotho (mKL).
Main Methods:
- Adeno-associated virus (AAV) mediated delivery of cKL in mouse models of CKD-mineral bone disorder and αKL-null mice.
- Acute administration of recombinant cKL to assess direct effects on renal phosphate transporters.
- In vitro studies using osteoblastic cells treated with cKL and FGF23, with genetic or pharmacological inhibition of FGFR1/MAPK pathways.
Main Results:
- Sustained cKL delivery via AAV reduced serum phosphate levels and significantly decreased aorta mineral content and volume in αKL-null mice.
- Acute cKL injection downregulated the renal sodium-phosphate cotransporter Npt2a, indicating direct action.
- cKL treatment, combined with FGF23, stimulated Fgf23 expression in osteoblastic cells via an FGFR1-dependent pathway.
Conclusions:
- Soluble alphaKlotho (cKL) effectively reduces hyperphosphatemia and prevents vascular calcification, even in the absence of membrane-bound alphaKlotho (mKL).
- cKL demonstrates mKL-independent activity, acting directly on renal phosphate transport and stimulating Fgf23 production in bone cells.
- These findings support the potential of cKL as a therapeutic agent for diseases characterized by hyperphosphatemia and vascular calcification.
Abstract:
αKlotho (αKL) regulates mineral metabolism, and diseases associated with αKL deficiency are characterized by hyperphosphatemia and vascular calcification (VC). αKL is expressed as a membrane-bound protein (mKL) and recognized as the coreceptor for fibroblast growth factor-23 (FGF23) and a circulating soluble form (cKL) created by endoproteolytic cleavage of mKL. The functions of cKL with regard to phosphate metabolism are unclear. We tested the ability of cKL to regulate pathways and phenotypes associated with hyperphosphatemia in a mouse model of CKD-mineral bone disorder and αKL-null mice. Stable delivery of adeno-associated virus (AAV) expressing cKL to diabetic endothelial nitric oxide synthase-deficient mice or αKL-null mice reduced serum phosphate levels. Acute injection of recombinant cKL downregulated the renal sodium-phosphate cotransporter Npt2a in αKL-null mice supporting direct actions of cKL in the absence of mKL. αKL-null mice with sustained AAV-cKL expression had a 74%-78% reduction in aorta mineral content and a 72%-77% reduction in mineral volume compared with control-treated counterparts (P<0.01). Treatment of UMR-106 osteoblastic cells with cKL + FGF23 increased the phosphorylation of extracellular signal-regulated kinase 1/2 and induced Fgf23 expression. CRISPR/Cas9-mediated deletion of fibroblast growth factor receptor 1 (FGFR1) or pretreatment with inhibitors of mitogen-activated kinase kinase 1 or FGFR ablated these responses. In summary, sustained cKL treatment reduced hyperphosphatemia in a mouse model of CKD-mineral bone disorder, and it reduced hyperphosphatemia and prevented VC in mice without endogenous αKL. Furthermore, cKL stimulated Fgf23 in an FGFR1-dependent manner in bone cells. Collectively, these findings indicate that cKL has mKL-independent activity and suggest the potential for enhancing cKL activity in diseases of hyperphosphatemia with associated VC.
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