Augmented Fibroblast Growth Factor-23 Secretion in Bone Locally Contributes to Impaired Bone Mineralization in Chronic Kidney Disease in Mice

被引:21
作者
Andrukhova, Olena [1 ]
Schueler, Christiane [1 ]
Bergow, Claudia [1 ]
Petric, Alexandra [1 ]
Erben, Reinhold G. [1 ]
机构
[1] Univ Vet Med Vienna, Dept Biomed Sci, Vienna, Austria
基金
奥地利科学基金会;
关键词
fibroblast growth factor-23; chronic kidney disease; bone mineralization; osteocytes; pyrophosphate; alkaline phosphatase; VITAMIN-D METABOLISM; GLUCOSE-HOMEOSTASIS; DEFICIENT MICE; MOUSE MODEL; D-RECEPTOR; FGF23; PHOSPHATE; TURNOVER; HISTOMORPHOMETRY; ABLATION;
D O I
10.3389/fendo.2018.00311
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Chronic kidney disease-mineral and bone disorder (CKD-MBD) is a systemic disorder of mineral and bone metabolism caused by CKD. Impaired bone mineralization together with increased bony secretion of fibroblast growth factor-23 (FGF23) are hallmarks of CKD-MBD. We recently showed that FGF23 suppresses the expression of tissue nonspecific alkaline phosphatase (TNAP) in bone cells by a Kiotho-independent, FGF receptor-3-mediated signaling axis, leading to the accumulation of the mineralization inhibitor pyrophosphate. Therefore, we hypothesized that excessive FGF23 secretion may locally impair bone mineralization in CKD-MBD. To test this hypothesis, we induced CKD by 5/6 nephrectomy in 3-month-old wild-type (WT) mice and Fgf23(-/)(-)/VDR Delta/Delta (Fgf23/VDR) compound mutant mice maintained on a diet enriched with calcium, phosphate, and lactose. Eight weeks postsurgery, WT CKD mice were characterized by reduced bone mineral density at the axial and appendicular skeleton, hyperphosphatemia, secondary hyperparathyroidism, increased serum intact Fgf23, and impaired bone mineralization as evidenced by bone histomorphometry. Laser capture microdissection in bone cryosections showed that both osteoblasts and osteocytes contributed to the CKD-induced increase in Fgf23 mRNA abundance. In line with our hypothesis, osteoblastic and osteocytic activity of alkaline phosphatase was reduced, and bone pyrophosphate concentration was similar to 2.5-fold higher in CKD mice, relative to Sham controls. In Fgf23/VDR compound mice lacking Fgf23, 5/6-Nx induced secondary hyperparathyroidism and bone loss. However, 5/6-Nx failed to suppress TNAP activity, and bone pyrophosphate concentrations remained unchanged in Fgf23/VDR CKD mice. Collectively, our data suggest that elevated Fgf23 production in bone contributes to the mineralization defect in CKD-MBD by auto-/paracrine suppression of TNAP and subsequent accumulation of pyrophosphate in bone. Hence, our study has identified a novel mechanism involved in the pathogenesis of CKD-MBD.
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页数:12
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共 47 条
[1]   Pyrophosphate inhibits mineralization of osteoblast cultures by binding to mineral, up-regulating osteopontin, and inhibiting alkaline phosphatase activity [J].
Addison, William N. ;
Azari, Fereshteh ;
Sorensen, Esben S. ;
Kaartinen, Mari T. ;
McKee, Marc D. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (21) :15872-15883
[2]   FGF23 regulates renal sodium handling and blood pressure [J].
Andrukhova, Olena ;
Slavic, Svetlana ;
Smorodchenko, Alina ;
Zeitz, Ute ;
Shalhoub, Victoria ;
Lanske, Beate ;
Pohl, Elena E. ;
Erben, Reinhold G. .
EMBO MOLECULAR MEDICINE, 2014, 6 (06) :744-759
[3]   FGF23 promotes renal calcium reabsorption through the TRPV5 channel [J].
Andrukhova, Olena ;
Smorodchenko, Alina ;
Egerbacher, Monika ;
Streicher, Carmen ;
Zeitz, Ute ;
Goetz, Regina ;
Shalhoub, Victoria ;
Mohammadi, Moosa ;
Pohl, Elena E. ;
Lanske, Beate ;
Erben, Reinhold G. .
EMBO JOURNAL, 2014, 33 (03) :229-246
[4]   FGF23 acts directly on renal proximal tubules to induce phosphaturia through activation of the ERK1/2-SGK1 signaling pathway [J].
Andrukhova, Olena ;
Zeitz, Ute ;
Goetz, Regina ;
Mohammadi, Moosa ;
Lanske, Beate ;
Erben, Reinhold G. .
BONE, 2012, 51 (03) :621-628
[5]   Klotho Lacks a Vitamin D Independent Physiological Role in Glucose Homeostasis, Bone Turnover, and Steady-State PTH Secretion In Vivo [J].
Anour, Rene ;
Andrukhova, Olena ;
Ritter, Eva ;
Zeitz, Ute ;
Erben, Reinhold G. .
PLOS ONE, 2012, 7 (02)
[6]   Direct inhibition of osteoblastic Wnt pathway by fibroblast growth factor 23 contributes to bone loss in chronic kidney disease [J].
Carrillo-Lopez, Natalia ;
Panizo, Sara ;
Alonso-Montes, Cristina ;
Roman-Garcia, Pablo ;
Rodriguez, Isabel ;
Martinez-Salgado, Carlos ;
Dusso, Adriana S. ;
Naves, Manuel ;
Cannata-Andia, Jorge B. .
KIDNEY INTERNATIONAL, 2016, 90 (01) :77-89
[7]   α-Klotho is a non-enzymatic molecular scaffold for FGF23 hormone signalling [J].
Chen, Gaozhi ;
Liu, Yang ;
Goetz, Regina ;
Fu, Lili ;
Jayaraman, Seetharaman ;
Hu, Ming-Chang ;
Moe, Orson W. ;
Liang, Guang ;
Li, Xiaokun ;
Mohammadi, Moosa .
NATURE, 2018, 553 (7689) :461-+
[8]   Inflammation and functional iron deficiency regulate fibroblast growth factor 23 production [J].
David, Valentin ;
Martin, Aline ;
Isakova, Tamara ;
Spaulding, Christina ;
Qi, Lixin ;
Ramirez, Veronica ;
Zumbrennen-Bullough, Kimberly B. ;
Sun, Chia Chi ;
Lin, Herbert Y. ;
Babitt, Jodie L. ;
Wolf, Myles .
KIDNEY INTERNATIONAL, 2016, 89 (01) :135-146
[9]   Standardized Nomenclature, Symbols, and Units for Bone Histomorphometry: A 2012 Update of the Report of the ASBMR Histomorphometry Nomenclature Committee [J].
Dempster, David W. ;
Compston, Juliet E. ;
Drezner, Marc K. ;
Glorieux, Francis H. ;
Kanis, John A. ;
Malluche, Hartmut ;
Meunier, Pierre J. ;
Ott, Susan M. ;
Recker, Robert R. ;
Parfitt, A. Michael .
JOURNAL OF BONE AND MINERAL RESEARCH, 2013, 28 (01) :1-16
[10]   Chronic metabolic acidosis alters osteoblast differentiation from human mesenchymal stem cells [J].
Disthabanchong, S. ;
Radinahamed, P. ;
Stitchantrakul, W. ;
Hongeng, S. ;
Rajatanavin, R. .
KIDNEY INTERNATIONAL, 2007, 71 (03) :201-209