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Increased FGF23 protects against detrimental cardio-renal consequences during elevated blood phosphate in CKD
Erica L Clinkenbeard1, Megan L Noonan1, Joseph C Thomas1
1Department of Medical and Molecular Genetics.
Insights
Fibroblast growth factor 23 (FGF23) protects against cardiovascular and kidney damage in chronic kidney disease (CKD). This study shows FGF23 is essential for mitigating CKD
Area of Science:
- Nephrology
- Endocrinology
- Cardiovascular Biology
Background:
- Fibroblast growth factor 23 (FGF23) is a phosphaturic hormone elevated in chronic kidney disease (CKD).
- High FGF23 levels in CKD correlate with increased mortality, but its adaptive role remains unclear.
- Cardiovascular disease (CVD) is the primary cause of death in CKD patients.
Purpose of the Study:
- To investigate the role of FGF23 in CKD phenotypes.
- To determine if FGF23 protects against cardio-renal consequences in CKD.
Main Methods:
- A conditional knockout mouse model (Fgf23fl/fl/Dmp1-Cre+/-) was used to induce CKD via an adenine-containing diet.
- Serum phosphate, blood urea nitrogen (BUN), and intact FGF23 levels were measured.
- Bone Fgf23 mRNA, parathyroid hormone, aortic calcification, and cardiac hypertrophy were assessed.
Main Results:
- Adenine-induced CKD increased serum phosphate and BUN.
- Mice with reduced bone FGF23 (Cre+) showed significantly lower serum and bone FGF23 levels.
- Reduced FGF23 in CKD mice exacerbated aortic calcification and cardiac hypertrophy.
Conclusions:
- Bone-derived FGF23 is crucial for protecting against cardio-renal damage in CKD.
- Despite associations with poor outcomes, FGF23 plays a protective role in mitigating CKD complications.
- Targeting FGF23 may offer therapeutic benefits for CKD patients.
Abstract:
The phosphaturic hormone FGF23 is elevated in chronic kidney disease (CKD). The risk of premature death is substantially higher in the CKD patient population, with cardiovascular disease (CVD) as the leading mortality cause at all stages of CKD. Elevated FGF23 in CKD has been associated with increased odds for all-cause mortality; however, whether FGF23 is associated with positive adaptation in CKD is unknown. To test the role of FGF23 in CKD phenotypes, a late osteoblast/osteocyte conditional flox-Fgf23 mouse (Fgf23fl/fl/Dmp1-Cre+/-) was placed on an adenine-containing diet to induce CKD. Serum analysis showed casein-fed Cre+ mice had significantly higher serum phosphate and blood urea nitrogen (BUN) versus casein diet and Cre- genotype controls. Adenine significantly induced serum intact FGF23 in the Cre- mice over casein-fed mice, whereas Cre+ mice on adenine had 90% reduction in serum intact FGF23 and C-terminal FGF23 as well as bone Fgf23 mRNA. Parathyroid hormone was significantly elevated in mice fed adenine diet regardless of genotype, which significantly enhanced midshaft cortical porosity. Echocardiographs of the adenine-fed Cre+ hearts revealed profound aortic calcification and cardiac hypertrophy versus diet and genotype controls. Thus, these studies demonstrate that increased bone FGF23, although associated with poor outcomes in CKD, is necessary to protect against the cardio-renal consequences of elevated tissue phosphate.
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